[0001] The present invention relates to hot isostatic pressing apparatus in which a material
to be processed such as preliminarily shaped metal powder or the like is charged into
a high pressure vessel provided with a heater, and the material is pressed and molded
by superhigh boosted pressure of fluid or gas medium sealed into the vessel and heating
by a heater, making it possible to attain high efficiency of actual production equipment.
[0002] The present invention further relates to apparatus in which in stepwise execution
0f processing operation as required with respect to various materials to be processed
including metal material, successive transfer of the material to be processed from
one station to the other is automatically performed within a closed operating space.
[0003] The present invention still further relates to apparatus for detection of seal leakage
in continuous hot isostatic pressing apparatus.
[0004] A hot isostatic pressing apparatus is known as one of superhigh press molding technologies
without particularly illustrating it as a so-called HIP apparatus, in which hot isostatic
pressing apparatus, a material to be processed such as preliminarily shaped metal
powder is charged into a high pressure vessel provided with a heater and the interior
of which vessel is in a vacuum state or in an active and inactive gas atmosphere,
and the material is pressed and molded into a block-like configuration by superhigh
boosted pressure of fluid or gas medium sealed into the vessel. Actual production
equipment of such apparatus principally comprises a high pressure vessel of a sealed
construction in which a part thereof is opened and closed by a cover and the vessel
is isolated from the outside by the closure of the cover, as is known. This vessel
is merely accompanied by means for opening and closing a cover and means for carrying
a material to be processed in and out of the vessel, which means are both exposed
to the outside of the vessel, and considerable handling operation is required.
[0005] As a heater heretofore used-in a high pressure vessel, a heater using an energizing
heat generating wire formed of molybdenum group or graphite group material is ordinarily
used in a relatively high temperature area. However, such a heater is oxidized (consumed)
when it is exposed to the air, and therefore, in removal of a material to be processed,
from the high pressure vessel, which is pressed and molded under the sealed condition
in the vessel, it is necessary to wait its removal until the heater has been cooled
to some degree after high temperature and high pressure have been released. This naturally
involves a longer press cycle time and impairs an increase in productivity. Further,
in the antestep of HIP processing, it is necessary to attach a material to be processed
to the apparatus at normal temperature and normal pressure and thereafter increase
temperature and pressure. This also involves a longer press cycle and impairs a productivity.
[0006] Furthermore, since the molybdenum group or graphite group heater is oxidized in a
high temperature atmosphere, there are one which requires a nonoxidized atmosphere
and the other which requires a special atmosphere where a material to be processed
cannot be removed at a high temperature in the atmosphere.
[0007] In most case, one step of operation is not enough to form a material to be processed
of metal from a blank to a finished product but stepwise processing after preliminary
molding is required, and in case hot treatment is applied thereto, heat treatment
such as heating is also required. These operations are mostly carried out at respective
separate positions and separate places, and therefore, transfer means for blanks and
half-finished products for transferring them from one station to the other have to
be provided. In the past, in transfer of these materials, conveyors and other transfer
means are merely generally used under atmospheric environment.
[0008] For materials to be processed for which specific thermo-environment or atmospheric
environment is required, special consideration has to be naturally attended to the
transfer means therefor. For example, in the hot isostatic pressing apparatus known
as HIP apparatus which is one of superhigh presses, a preliminarily shaped material
to be treated such as metal powder is charged into a high pressure vessel provided
with a heater and the interior of which vessel is in a vacuum state or in an active
and inactive gas atmosphere, and the material to be processed is pressed and formed
into a block-like configuration by superhigh boosted pressure of fluid (liquid, gas)
sealed into the vessel. However, this apparatus principally comprises a high pressure
vessel which is isolated from the outside by an openable cover. Means for opening
and closing the cover and means for carrying the material to be processed in and out
of the vessel are merely provided in a state exposed to the outside of the vessel.
As a heater used in the high pressure vessel, a heater using an energizing heat generating
wire formed of molybdenum group or graphite group material is ordinarily used. However,
the heater of this kind is oxidized (consumed) when it is exposed to the air, and
therefore, in removal of a material to be processed, from the high pressure vessel,
which is pressed and molded under the sealed condition in the vessel, it is necessary
to wait its removal until the heater has been cooled to some degree after high temperature
and high pressure have been released. Further, a material to be processed is set in
the vessel at noraml temperature and normal pressure and thereafter temperature and
pressure are increased. Therefore, this involves a longer press cycle and impairs
a productivity. In heating a material to be processed in a separate ante-processing,
complicated equipment and cumbersome operation are brought fourth in terms of time
as well as place according to conventional transfer means. Of course, in not only
the HIP apparatus but apparatus which performs operating steps at separate places
and requires a transfer between the respective steps, transfer means have to be provided
therefor. In materials to be processed in which material need to be placed under specific
thermo-condition and atmospheric environment and members constituting apparatus which
require the aforesaid conditions, conventional transfer means often give rise to inconveniences.
[0009] The present applicant is desirous of developing a so-called continuous hot isostatic
pressing apparatus which is designed so that a hot isostatic forming high pressure
vessel and an operating chamber for inserting or removing a material to be processed
are brought into communication with each other by a sealed tank, and the material
to be processed is transferred within the sealed tank.
[0010] Incidentally, in the continuous hot isostatic pressing equipment as described above,
it is extremely difficult for the operating chambers, the high pressure vessel and
the sealed tank to be placed under the same pressure and same atmosphere. If the balance
of atmosphers is not secured, for example, if when a material to be processed is charged
into a sealed tank and transferred, pressure balance between the high pressure vessel,
operating chambers and sealed tank is lost, the material to be processed becomes fallen
or air pressure possibly blowing away a seal material sometimes occurs.
[0011] In hot isostatic pressing apparatus for pressing and molding a material to be processed
such as metal powder by hot isostatic pressure, apparatus has been proposed in which
operation from insertion to removal of a material to be processed is continuously
carried out while being moved from one station to the other.
[0012] In the apparatus of this kind, for example, in a main station where a material to
be processed is directly pressed and molded, a movable cover with a material to be
processed placed thereon is detachably fitted, from the lower side, into a high pressure
vessel a lower end of which is open into a sealed tank, and the sealed tank has pressure
of vacuum = 2 kg f/cm
2 under the atmosphere of vacuum, active and inert gas whereas the interior of the
high pressure vessel increases in pressure to ≒ 200 to ≒ 2000 kgf/cm
2. A seal material on the side where the movable cover is fitted is repeatedly fitted
and unfitted, and as a result, it is liable to be damaged and there is a great possibility
of occurrence of a seal leakage.
[0013] However, in the past, there is not provided a device for detecting a breakage of
the seal material, and accordingly, if such a breakage should occur, high pressure
flows towards the sealed tank which has a fine pressure, leading to a breakage of
the sealed tank. Because of this, it is necessary to provide a construction in which
a sealed tank is increased in plate thickness so as not to break the sealed tank even
when a seal leakage occurs. This arrangement results in an increase in weight of the
sealed tank into a larger-size.
[0014] Conversely, if any trouble occurs in a high pressure gas generator for supplying
high pressure gas to a high pressure vessel, the high pressure gas back-flows towards
the high pressure vessel from the sealed tank to make it impossible to maintain the
atmosphere of the sealed tank.
SUMMARY OF THE INVENTION
[0015] In accordance with the present invention, a material to be processed can be attached
in an elevated temperature state at a high temperature in an energized state of a
heater irrespective of opening and closing operation of one end of the HIP apparatus,
and in addition the material to be processedalready subjected to HIP processing can
be removed outside the vessel immediately without waiting until the heater is lowered
in temperature to a level of prevention of oxidization, thus shortening the press
cycle time and materially enhancing a productivity in the hot isostatic pressing apparatus
by the high pressure vessel of this kind.
[0016] According to a first invention, there is provided a hot isostatic pressing apparatus
which comprises a main station comprising a hot isostatic pressing and forming high
pressure vessel one end of which is open, a movable cover member for opening and closing
said open one end, a member attached to said movable cover member to move a material
to be treated in and out of the vessel and the like; an auxiliary station for inserting
and removing a material to be processed comprising an operating chamber one end of
which is open and inserting and/or removing a material to be processed, a movable
cover member for opening and closing said open one end, a member attached to said
movable cover member to move a material to be processed in and out of the chamber
and the like, said auxiliary chamber being arranged adjacent to said main station;
a sealed tank in which internal spaces of said main and auxiliary stations are interrupted
in common from outside and placed in a vacuum state or in a required gas atmosphere,
said sealed tank surrounding said internal spaces in a state of communication; and
a transfer device comprising a movable transfer member mounted on said sealed tank
and movable between said spaces and a support member for supporting a material to
be processed, said support member being retained disengageably relative to said transfer
member.
[0017] According to a second invention, there is a rotary type provided type continuous
hot isostatic pressing equipment which comprises a main station on which are provided
a hot isostatic pressing and forming high pressure vessel at least one end of which
can be opened in terms of function, a movable cover member for opening and closing
said open one end of the vessel, and a member for moving a material to be processed
in and out of the vessel, said member being attached to said vessel; an auxiliary
station for inserting and removing a material to be processed on which are provided
an operating chamber one end of which is open and which inserts and/or removes a material
to be processed, a movable cover member for opening and closing said open one end
of said operating chamber, and a member for moving a material to be processed in and
out of the chamber, said member being attached to said movable cover member; said
main and auxiliary stations being arranged on one and the same circumferential surface,
a loop-shaped sealed tank in which internal spaces of both said stations are interrupted
in common from outside and placed in a vacuum state or in a required gas atmosphere,
said sealed tank surrounding said internal spaces in a state of communication; a rotational
table provided internally of the loop of said sealed tank, said rotational table being
freely rotated and driven on a horizontal surface; said movable members being placed
on the rotational table in said both stations, an elevating device for moving up and
down said movable cover members from said rotational table; and a detachable hole
for said elevating device formed in said rotational table.
[0018] In a third invention, in transfer of a material to be transfered as described above,
particularly, a material to be processed subjected to thermo-processing or atmospheric
processing, from one station to the other accoring to the operating step, operating
stations are disposed collectively in a closed space isolated from outside, and the
material to be processed is automatically transferred within the closed space to make
the distance of transfer short and make it compact, and to avoid occurrence of external
and internal change in the material to be processed to enhance a productivity. There
is provided an apparatus for transferring a material to be processed in a closed operating
space which comprises a plurality of operating stations for applying operating steps
to a material to be processed on one side of a sealed tank forming a closed operating
space, said operating stations being arrayed serially and in such a manner that both
inlet and outlet of the material to be processed are open to said operating space;
placing and opening and closing cover for a material to be processed provided in correspondence
to the inlet and outlet of the material to be treated in said operating stations on
the other side of the sealed tank, said cover being provided serially and movably
up and down and openably; a pair of transfer shafts extending through the sealed tank
above said placing and opening and closing cover of the material to be processed,
said transfer shafts being juxtaposed retractably along said covers and in a spaced
relation so as not to interfere with said covers; gripping disengageable pawls for
a material to be processed provided at a position opposed to the placing and opening
and closing covers in the operating stations except the final operating station in
both the transfer shafts; and axially retractable means for said transfer shafts and
rotatable means provided externally of the sealed tank.
[0019] According to a fourth invention, there is provided a continuous hot isostatic pressing
equipment which comprises a main station on which are provided at least a hot isostatic
pressing and forming high pressure vessel at least one end of which can be opened
in terms of fuction, and a movable cover member for opening and closing said open
one end of the vessel; an inserting station and a removing station for a material
to be processed on which are provided at least operating chambers each one end of
which is open and which inserts or removes a material to be processed, and a movable
cover member for opening and closing each one end of the operating chambers; a sealed
tank in which internal spaces of said stations are interrupted in common from outside
and placed in a vacuum state or in a required gas atmosphere and which has a communication
chamber surrounding each internal space in a communicating fashion; a tunnel-like
preheating furnace provided in the communication chamber of the sealed tank between
the inserting station and the main station, said furanace having transfer means capable
of accommodating a plurality of materials to be processed and transferring the material
to be processed from the inserting station to the main station; transfer means for
successively transferring the material to be processed from the inserting station
to the preheating furnace, from the preheating furnace to the main station and from
the main station to the removing station; and openable door means provided on communicating
portions between the inserting station and the main station of the preheating furnace.
[0020] In the fourth invention there is further provided a cooling furnace having transfer
means between the main station and the removing station, whereby optimum cooling time
period may be selected according to the character, quality, shape and the like of
a material to be processed.
[0021] Further to the foregoing, in a fifth invention, atmosphers between the operating
chamber and high pressure vessel and sealed tank can be balanced when the movable
cover is moved in and out to thereby provide high efficiency of actual operation,
to prevent falling of a material to be processed and prevent peeling of a seal material,
etc.
[0022] According to the fifth invention, there is provided a continuous hot isostatic pressing
equipment which comprises a main station on which are provided at least a hot isostatic
pressing and forming high pressure vessel at least one end of which is open in terms
of function, and a movable cover member for opening and closing said open one end
of the vessel; auxiliary stations such as an inserting station and a removing station
for a material to be processed on which are provided at least operating chambers each
one end of which is open and which insert or remove a material to be processed, and
a movable cover member for opening and closing one end of said operating chamber;
a sealed tank in which internal spaces of said stations are interrupted in common
from outside and in a vacuum state or in a required gas atmosphere, said sealed tank
having a communication chamber surrounding said internal spaces in a communicating
fashion, said sealed tank being interiorly provided with means for transferring a
material to be processed between said auxiliary station and main station; and passages
to provide communication between the sealed tank and said high pressure vessel and
said operating chambers, said passages each being provided with an opening and closing
valve.
[0023] In addition to the foregoing, in a sixth invention, a seal leakage resulting from
a breakage of a seal material can be detected simply and positively.
[0024] According to the sixth invention, there is provided a seal leakage detecting apparatus
in a continuous hot isostatic pressing apparatus, which apparatus comprises a vessel
at least one end of which is open into a sealed tank, and a movable cover capable
of placing a material to be processed thereon and detachably fitted into the vessel
from the sealed tank side, said detector comprising at least two seal elements provided,
in a fitted portion between the vessel and the movable cover, in an axially spaced
relation, a bore formed in the vessel, said bore extending from an intermediate portion
of said seal elements to the air, and a sensor provided in said bore in a communicating
fashion.
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
Fig. 1 to Fig. 7 are views in connection with a first invention (herinafter referred
to "the invention (I)"), in which: Fig. 1 (A) is a longitudinal sectional front view
of a first embodiment of apparatus in accordance with the invention (I), Fig. 1 (B)
is a cross sectional plan view of transfer, Fig. 1 (C) is a longitudinal sectional
side view, Fig. 2 (A) is a longitudinal sectional front view of a second embodiment,
Fig. 2 (B) is a cross sectional plan view of transfer, Fig. 3 (A) is a longitudinal
sectional front view of a third embodiment, Fig. 3 (B) is a cross sectional plan view
of transfer, Fig. 4 (A) is a longitudinal sectional front view of a fourth embodiment,
Fig. 4 (B) is a cross sectional plan view of transfer, Fig. 5 (A) is a longitudinal
sectional front view of a fifth embodiment, Fig. 5 (B) is a cross sectional plan view
of transfer, Fig. 6 (la) and (lb) illustrate operation of the first embodiment, Fig.
6 (IIa) (IIb) illustrate operation of the first and second embodiments, Fig. 6 (III)
illustrates operation of the fourth and fifth embodiments, and Fig. 7 illustrates
operation of prior art;
Fig. 8 to Fig. 24 are views in connection with a second invention (hereinafter referred
to "the invention (II)"), in which: Fig. 8 is a schematic plan view of a first embodiment,
Fig. 9 is a sectional view taken on line A-A of Fig. 8, Fig. 10 is a sectional view
takne on line B-B of Fig. 8, Fig. 11 is a sectional view taken on line E-E of Fig.
8, Fig. 12 is a sectional view taken on line F-F of Fig. 8, Fig. 13 is a schematic
plan view of a second embodiment, Fig. 14 is a schematic plan view of a third embodiment,
Fig. 15 is a schematic plan view of a fourth embodiment, Fig. 16 is a schematic plan
view of a fifth embodiment, Fig. 17 is a sectional view taken on line C-C of Figs.
15 and 16, Fig. 18 is a sectional view taken on line D-D of Figs. 14 and 16, Figs.
19 - 22 are developed sectional views for explaining the operating step of the fifth
embodiment, Fig. 23 (a) to (e) illustrate operation of the embodiments of the invention
(II), and Fig. 24 illustrates operation of prior art;
Figs. 25 to 35 are views in connection with a third invention (hereinafter referred
to as "the invention (III)"), in which: Fig. 25 is a longitudinal sectional front
view of a first embodiment, Fig. 26 is a sectional view taken on line A-A of Fig.
25, Fig. 27 is a side view of an embodiment of a transfer shaft rotational mechanism,
Fig. 28 is a sectional view taken on line D-D of Fig. 26, Fig. 29 is a longitudinal
sectional side view of an opening and closing cover above the operating chamber, Fig.
30 is a plan view of the same, Fig. 31 is a longitudinal sectional front view showing
essential parts of a second embodiment of apparatus, Fig. 32 is a cross sectional
plan view the same, Fig. 33 is a longitudinal sectional front view showing essential
parts of a third embodiment, Fig. 34 is a longitudinal sectional front view showing
essential parts of a fourth embodiment, and Fig. 35 is a longitudinal sectional front
view of a fifth embodiment;
Figs. 36 to 48 are views in connection with a fourth invention (hereinafter referred
to as "the invention (IV)"), in which: Fig. 36 is a schematic plan view of a first
embodiment, Fig.37 (a) is a sectional view taken on line A-A of Fig. 36, Fig. 37 (b)
is a view taken on line a - a of Fig. 37 (a), Fig. 38 is a sectional view taken on
line B-B of Fig. 36, Fig. 39 is a sectional view taken on line C-C of Fig. 36, Fig.
40 is a sectional view taken on line D-D of Fig. 36, Fig. 41 is a sectional view taken
on line E-E of Fig. 36, Fig. 42 is a sectional view showing a driving section of Fig.
41, Fig. 8 is a schematic plan view of a second embodiment, Fig. 44 is a schematic
plan view of a third embodiment, Fig. 45 is a schematic plan view showing an embodiment
of the second technical means of the invention, Fig. 46 is a sectional view taken
on line C-C of Fig. 45, Fig. 47 is a sectional view taken on line F-F of Fig. 45,
and Fig. 48 is a sectional view taken on line G-G of Fig. 45;
Figs. 49 to 59 are views in connection with a fifth invention (hereinafter referred
to as "the invention (V)", in which: Figs. 49 to 54 show a first embodiment, Fig.
49 is a sectional view in which a material to be processed is inserted and removed,
Fig. 54 is a sectional view in which an operating chamber and a communication chamber
are in the same atmosphere, Fig. 51 is a sectional view in which a material to be
processed is moved down to the communication chamber, Fig. 52 is a cross sectional
plan view of Fig. 51, Fig. 53 is a sectional view taken on line A-A of Fig. 52, Fig.
54 is a sectional view taken on line B-B of Fig. 52, and Figs. 55 to 59 show a second
embodiment, Fig. 55 is a plan view, Fig. 56 is a sectional view taken on line C-C
of Fig. 55, Fig. 57 is a sectional view taken on line D-D of Fig. 55, Fig. 58 is a
sectional view taken on line E-E of Fig. 55, and Fig. 59 is a sectional view taken
on line F-F of Fig. 55; and
Figs. 60 to 65 are views in connection with a six invention (hereinafter referred
to as "the invention (VI)"), in which Figs. 60 to 63 show a first embodiment of the
invention, Fig. 60 is a structural view of essential parts, Fig. 61 is a schematic
plan view showing the arrangement of the whole structure, Fig. 62 is a developed sectional
view of the same, Fig. 63 is an enlarged view taken on line IV-IV of Fig. 61, and
Figs. 64 and 65 are structural views showing another embodiment.
DETAILED DESCRIPTION OF THE INVENTION AND PREFERRED EMBODIMENTS
Invention (I)
[0026] As shown in Fig. 1 (A), Fig. 1 (B), and Fig. 1 (C), the apparatus comprises a main
station 31 and an auxiliary station 32, in which main station 31, a high pressure
vessel 2 one end (a lower end, in the illustrated embodiment) of which is open is
fixedly mounted at an upper portion of a press frame 1, a movable cover member 8a
for openably closing an open one end, that is, an opening 2a for moving a material
to be processed 5 in and out of the vessel 2 is disposed at a lower portion of the
press frame 1 through an elevating device 9, said cover member 8a being moved up and
down towards the opening 2a, and a member 7a for moving the material to be processed
5 in and out of the vessel 2 is integrally provided on the upper surface of the movable
cover member 8a, and in which auxiliary station 32 which is positioned adjacent to
the main station 31, an operating chamber 11 one end (a lower end, in the illustrated
embodiment) is open as an opening lla and the other end (an upper end, in the illustrated
embodiment) of which serves as an opening and closing cover 10 (an opening and closing
means for the cover is either manually or automatically operated) is provided, a movable
cover member 8b for openably closing the opening lla is provided movably up and down
towards the opening lla by an elevating device 13, and a member 7b for moving the
material to be processed 5 in and out of the operating chamber 11 is integrally provided
on the upper surface of the movable cover member 8b. With this arrangement, the material
to be processed 5 can be charged into the vessel 2 through the member 7a provided
on the upper surface of the movable cover member 8a simultaneously with the closure
of the movable cover member 8a with respect to the opening 2a of the high pressure
vessel 2. Accordingly, under this condition, the material to be processed 5 can be
subjected to molding operation by hot isostatic pressing by heating by a heater 4
provided with within the vessel 2 through a heat insulating layer 3, by superhigh
boosted pressure of fluid or gas medium sealed into the vessel 2 as is known though
not shown, and under the vacuum state or active or inert gas atmosphere state within
the vessel.
[0027] As in prior art, attached to the HIP apparatus body are a high pressure gas generator,
a vacuum device, a vessel cooler, a heater energizing device and the like.
[0028] On the other hand, in the auxiliary station 32, the movable cover member 8b with
the member 7b for moving the material to be processed 5 provided on the upper surface
thereof is made openable relative to the opening lla ci the operating chamber 11,
whereby the operating chamber 11 can be utilized to apply necessary processing operation
to the material to be processed 5 prior to or posterior to pressing. For example,
the movable cover member 8b is closed over the opening lla to thereby open the opening
and closing cover 10 of the operating chamber 11 to communicate into the air, the
material to be processed 5 prior to pressing is charged into the chamber, and the
material to be processed is set on the member 7b. The opening and closing cover 10
is closed to thereby independently seal the operating chamber 11 so as to be placed
in the same atmosphere as that of the sealed tank, after which the movable cover member
8b is moved down for the preparation to carry the material to be processed 5 towards
the main station 31. Conversely, under the state that the already pressed material
to be processed 5 is placed on the member 7b of the movable cover member 8b through
a support member 6, the movable cover member 8b is moved up and closed over the opening
lla, the material to be processed 5 is fed into the operating chamber 11 to form the
atmosphere which is the same as that of the sealed tank into an atmospheric pressure,
and thereafter the opening and closing cover 10 is opened. Thus, in the auxiliary
station, attaching and removing of a material to be processed, and other various operations
such as ante-processing, and post-processing required before and after a material
to be processed has been pressed, can be independently carried out, and in addition,
these operations can be carried out in a manner in cooperation with the pressing operation
in the main station 31.
[0029] Sealed tanks 12a and 12b for interrupting internal spaces 31a, 32a in the main and
auxiliary stations 31, 32 from outside and surrounding them in a communicating state
are airtightly externally fitted whereby both the spaces 31a, 32a are interrupted
from outside. Integral spaces communicated each other are formed, and thus, a gas
cylinder 51 and a vacuum pump 53 are communicatingly provided on either side of the
sealed tanks 12a or 12b, whereby the internal spaces 31a, 32a can be placed in the
same environment as the vacuum state or active or inert gas atmosphere in the high
pressure vessel 2. The object of the present invention may be easily achieved by the
provision of a transfer device 14 comprising a transfer member 14a provided movably
between the internal spaces 31a, 32a and a support member 6 for the material to be
processed 5 disengageably held on the transfer member 14a. While in the illustrated
embodiment, the transfer device is extended externally, but it can be housed within
the tank. More specifically, in Fig. 1 (A), where the material to be processed 5 is
placed on the support member 6 in engagement with the transfer member 14a and the
support member 6 is overlapped on the member 7
.a on the movable cover member 8a, if the material to be processed 5 is not yet pressed,
the engagement between the transfer member 14a and support member 6 is released, after
which the movable cover member 8a is moved up to be closed over the opening 2a of
the high pressure vessel 2 whereby the material to be processed 5 is charged into
the vessel 5 through the support member 6 and the member 7a, thus applying the hot
isostatic pressing to the material to be processed 5 under predetermined high pressure
and high temperature processing conditions. Further, if the material to be treated
5 has already been pressed, after the support member 6 has been brought into engagement
with the transfer member 14a, the transfer member 14a is moved rightwards as viewed
in the drawing whereby the support member 6 and already processed material to be processed
5 are transferred towards the auxiliary station 32, and when the support member 6
arrives at a positon where it is overlapped with the member 7b on the movable cover
member 8b of the station 32, the transfer member 14a is stopped and the engagement
between the member 14a and support member 6 is released. Next, when the movable cover
member 8b is moved up, the movable cover member 8b is closed over the opening lla
of the operating chamber 11, and at the same time, the material to be processed
5 and support member 6 are fed into the operating chamber 11 to form only the interior
of the operating chamber into atmospheric pressure while maintaining the interior
of the sealed tank under the vacuum, active or inert gas atmosphere. Accordingly,
the material to be processed 5 can be removed outside through the opening and closing
cover 10 irrespective of the sealed tank. Particularly, in inserting a material to
be processed prior to processing into the high pressure vessel, since the sealed tank
is in the atmosphere in which a heater is not oxidized, the heater can be inserted
while maintaining the high temperature. On the other hand, in removing the already
pressed material to be processed 5 from the high pressure vessel 2, since the internal
spaces 31a, 32a can be brought into the same atmosphere as the environmental atmosphere
within the vessel 2 through the sealed tanks 12a, 12b, the movable cover member 8a
is moved down and opened immediately after termination of molding, without waiting
until the temperature is lowered to a heater oxidizing preventive temperature after
completion of molding in the vessel 2, to remove the material to be processed 5, thus
considerably shorten the cycle time. Furthermore, movement and elevating of the material
to be processed 5 can be all effected automatically in the shortest course by the
transfer device 14 and movable cover members 8a, 8b provided on the respective stations
31, 32. Moreover, since the auxiliary station 32 can be increased in number as necessary
with respect to a single unit of main station 31, it is possible to materially enhance
the shortening, efficiency and productivity of the press cycle as the actual production
equipment including all the ante- and post processings required for the material to
be processed 5.
Embodiments of the Invention (I)
Embodiment 1
[0030] In the embodiment shown in Fig. 1 (A), Fig. 1 (B) and Fig. 1 (C), one unit of auxiliary
station 32 is used with respect to the main station 31, the auxiliary station 32 serving
as an inserting and removing station of the material to be processed 5. In the main
station 31, a known high pressure vessel 2 which houses a heat insulating layer 5
and a heater 4 and having an opening 2a provided at a lower end thereof is installed
at the upper portion of a press frame 1 having an internal space 31a, and an elevating
device 9 comprising a movable cylinder 9a and a fixed piston rod 9b is installed at
a lower portion of the press frame 1 sufficiently withstanding an axial force, th
movable cylinder 9a having a movable cover member 8a mounted thereon, the movable
cover member 8a having a moving member 7a for the material to be processed 5 provided
on the upper surface of the movable cover member 8a. In the movable cover member 8a,
an engaging portion 9c is formed at a part of the movable cylinder 9a as one member
of the high pressure vessel 2 to close the opening 2a in a sealing fashion to receive
a forming reaction by superhigh pressure, and a clamp 15a of a clamping device 15
for receiving the reaction positioned on the press frame 1 is clamped during presssing
operation. The press frame is not limited to one shown in this embodiment but other
type of the press frame can be used. In the auxiliary station 32, at an upper level
on the line of the high pressure vessel 2, an opening and closing cover 10 is openably
provided on the upper end thereof, and a cylindrical operating chamber 1 having an
opening lla formed at the lower end thereof is arranged, whereas at a lower level
on the line of the elevating device 9, an elevating device 13 comprising a cylinder
13a and a piston rod 13b is disposed, the piston rod 13b having a movable cover member
8b for openably closing the opening lla provided thereon, the movable cover member
8b having a moving member 7b for the material to be processed 5 provided on the upper
surface thereof,.and an internal space 32a in communication with an internal space
31a of the main station 31 is provided between the operating chamber 11 and the elevating
device 13. This sealed tank can be of an integral body.
[0031] Sealed tanks 12a, 12b are integrally fixed to surround in common internal spaces
31a, 32s of the main sttion 31 and auxiliary station 32 to interrupt them from outside.
Active or inert gas is supplied through a gas cylinder 51, a reducing valve 52 and
a pipe line 54 to either of the sealed tanks 12a or 12b whereby the required gas atmosphere
can be created over the whole area within the tank, and vacuum pumps 53a, 53b likewise
cause to create a vacuum state individually in the whole area in the tank and in the
operating chamber 11 through a pipe line 55. Within the sealed tanks 12a, 12b, a pair
of transfer members 14a, 14a constituting the transfer device 14 are mounted so that
they may be retractably and rotatably over the overall length of the tank, and a support
member 6 for the material to be processed 5 is held by clamp holders 14b, 14b provided
in a symmetrical position of the transfer members 14a, 14a. The pair of transfer members
14a, 14a have their each end projected externally of the tank 12a and held on a bracket
33, and the bracket 33 is connected to a piston rod 34a of a movable cylinder 34 for
forward and backward movement. Gears 35, 35 are mounted on one ends of the transfer
members 14a, 14a, respectively, and rack gears 37a, 37a of a rack rod 37 held on a
piston rod 36a of a driving cylinder 36 provided on the bracket 33 are meshed with
the gears 35, 35, respectively, and the transfer members 14a, 14a are rotated normally
and reversely through the vertical movement of the rack rod 37 and through the rotation
of the gears 35, 35 whereby the. clamp holders 14b, 14b may be engaged with and disengaged
from the support member 6.
[0032] According to the above-described embodiment, the interior of the sealed tanks 12a,
lb is made under the same vacuum state or, active or inert gas atmosphere as that
of the high pressure vessel 2, and the movable cover member 8b on the side of the
auxiliary station 32 is moved up to close the opening lla of the operating chamber
11 to interrupt the operating chamber 11 from the internal space 32a. The movable
cover member 8b is positioned within the operating chamber, and the opening and closing
cover 10 is opened to place the material to be processed 5 on the moving member 7a
together with the support member 6, whereas the opening and closing cover 10 is closed
to form the interior of the operating chamber 11 into the same atmosphere as that
of the internal space 32a, after which the movable cover member 8b, moving member
7b, support member 6 and material to be processed 5 are all moved down. Next, the
transfer members 14a, 14a are moved to advance the clamp holders 14b, 14b to a position
corresponding to the periperal side of the support member 6, and the clamp holders
14b, 14b are turned through the rotation of the transfer members 14a, 14a into engagement
on the peripheral side of the support member 5 as shown in Fig. 1 (C), after which
the transfer members 14a, 14a are moved towards the main station 31 through the cylinder
24. The transfer members 14a, 14a are stopped at a position where the support member
6 is overlapped on the moving member 7a of the movable cover member 8a, and the clamp
holders 14b, 14b are turned to release the engagement between the transfer members
14a, 14a and the support member 6, after which the movable cover member 8a is moved
up to close the opening 2a of the high pressure vessel 2 whereby the material to be
processed 5 is charged into the vessel 2 through the moving member 7a and support
member 6 to apply the hot isostatic pressing to the material to be processed 5 in
a known manner. Upon completion of pressing, the movable cover member 8a is immediately
moved down to remove the material to be processed 5 from the vessel 2, and in the
state shown in Fig. 1 (A), the clamp holders 14b, 14b of the transfer members 14a,
14a are again brought into engagement with the support member 6 to move the support
member 6 and material to be processed 5 towards the auxiliary station 32 to disengage
the clamp holders 14b, 14b from the support member 6. The movable cover member 8b
is moved up, and the suppot member 6 and material to be processed 5 are fed into the
operating chamber 11 through the moving member 7b. In the state where the opening
lla of the movable cover member 8b is closed, the operating chamber is formed into
atmospheric pressure and thereafter the opening and closing cover 10 is opened to
remove the material to be processed 5, and a new material to be processed 5 is placed
on the support member 6 for repetition of press cycle. That is, the press cycle can
be progressed in a fully automatic manner. And, attaching and removing of a material
to be processed from the high pressure vessel can be carried out irrespective of the
heater oxidizing preventive temperature since the heater is interrupted from the air
and in a non-oxidized state even if the heater is in a high temperature energized
state, thus materially enhancing the productivity and further obtaining uniform and
stabilized operations.
Embodiment 2
[0033] In a second embodiment shown in Fig. 2 (A) and Fig. 2 (B), two auxiliary stations
32A and 32B are arranged adjacent to each other and with a main station 31 sandwiched
therebetween. The auxiliary station 3aA serves as an inserting station for a material
to be processed 5, and the auxiliary station 32B serves as a removing station for
the material to be processed 5. This station can be of a combined station incorporating
therein cooling and preheating members which will be described later. The same reference
numerals as those used in the first embodiment indicate the same members as those
of the first embodiment, the difference therebetween being described in the following.
In the inserting auxiliary station 32A, a gas supply line 54a, a vacuum pump 53b and
a pipe line 55 are provided in an operating chamber 11A provided with an opening and
closing cover 10a, whereas in the removing auxiliary station 32B, a gas cylinder 51,
and vacuum pumps 53a, 53c as well as pipe lines 54, 55 are provided on the side of
an operating chamber 11B provided with an opening and closing cover 10b and a sealed
tank 12b. In the inserting auxiliary station 32A, a moving member 7b, a movable cover
member 8b and an elevating device 13A are provided, whereas in the removing auxiliary
station 32B, a moving member 7c, a movable cover member 8c and an elevating device
13B are provided. Needless to say, the sealed tanks 12a, 12b cover in common internal
spaces 31a, 32a, and 32a of the stations 31, 32A and 32B. In a transfer device 14,
as shown in Fig. 2 (B), in a pair of parallel transfer members 14a, 14a, the stations
31, 32A and 32B are positioned at regular intervals of equal pitch, and in correspondence
thereto, two sects of clamp holders 14b, 14b and clamp holders 14b, 14b are provided
in a spaced relation of the same pitch as the former.
[0034] In this embodiment, the hot isostatic pressing with respect to the material to be
processed 5 and the insertion and removal of the material to be processed 5 are carried
out in the following procedure. Suppose that the state shown in Fig. 2 (A) is a state
wherein the material to be processed 5 has already undergone the pressing in the central
main station 31 and the movable cover member 8a has been moved down to remove the
material to be processed 5 together with the moving member 7a and support member 6b
from the high pressure vessel 2, operation is such that during the pressing operation
in the main station 31, on the side of the inserting auxiliary station 32A, the movable
cover member 8b is moved up to close the opening lla of the operating chamber 11A,
open the opening and closing cover 10a, insert and set a new material to be processed
5a together with the support member 6a on the moving member 7b, close the opening
and closing cover, and form the interior of the operating chamber into the same atmosphere
as that of the internal space, after which the movable cover member 8b is moved down
to pull the material to be processed 5 together with the support member 6a and moving
member 7b into the internal space 32a as shown, thus appearing the state shown in
Fig. 2 (A). From the illustrated state, two sets of clamp holders 14b, 14b in the
transfer members 14a, 14a are brought into engagement with the support members 6a,
6b in the stations 32A, 31 and the transfer members 14a, 14a are moved rightwards
as viewed in the drawing whereby the already pressed material to be processed 5b is
directed opposite to the moving member 7c of the movable cover member 8c in the removing
auxiliary statio 32B through the support member 6b whereas a new material to be processed
5a is directed opposite to the moving member 7a of the movable cover member 8a in
the main station 31 through the support member 6a. The transfer members 14a, 14a are
stopped and two sets of clamp holders 14b, 14b are disengaged from the support members
6b, 6a, respectively. The movable cover members 8a, 8c are moved up by the elevating
devices 9, 13B in the main station 31 and removing auxiliary station, respectively,
whereby in the main station 31, a new material to be processed 5a is charged into
the high pressure vessel 2 for the hot isostatic pressing whereas in the removing
auxiliary station 32B, the already pressed material to be processed 5b is charged
into the operating chamber 11B, and the operating chamber is made the same atmosphere
as that of the sealed tank, after which the opening and closing cover lOb is opened
to remove the material to be processed 5b. During both the operations, in the inserting
auxiliary station 32A, the inserting operation for a new material to be processed
5 within the operating chamber 11A is carried out. In this manner, the operation of
the Fig. 2 (A) state is repeatedly produced to obtain a continuous operation of insertion,
pressing and removal of the material to be processed 5. In this case, the inserting
and removing positions are independent, and therefore, the productivity is further
enhanced over the first embodiment, and attaching and removal of the material to be
processed can be made simultaneously. Since the heater can be held at an energizing
condition continuously, it is possible to extremely shorten the press cycle time as
a whole and to facilitate a flow operation.
Embodiment 3
[0035] In a third embodiment shown in Fig. 3 (A) and Fig. 3 (B), three auxiliary statios
32A, 32B and 32C are disposed adjacent to a main station 31, and in addition to an
inserting auxiliary station 32A and a removing auxiliary station 32B, a cooling auxiliary
station 32C for applying a cooling processing as a post-processing to an already pressed
material to be processed 5. Thus, these stations 32A, 31, 32C and 32B are arrayed
in said order. The same.reference numerals as those used in the second embodiment
indicate the same members as those shown therein. Since the main station 31, inserting
auxiliary station 32A and removing auxiliary station 32B are the same as those described
in the second embodiment, the construction of the cooling auxiliary station 32C will
be described. An operating chamber 11C in the station 32C is merely provided to cool
the already pressed material to be processed 5, and therefore, the top of the operating
chamber 11C is closed and a movable cover member 8d for openably closing an opening
lla at the lower end of the operating chamber 11C by an elevating device 13C and a
moving member 7d provided on the upper surface of the movable member 8d are provided,
and a cooling medium supply and discharge pipe line 56 is communicatingly provided
in the operating chamber 11C to forcibly cool the material to be processed 5, the
cooling medium being supplied thereto. Further, since one station is added herein,
in a pair of transfer members 14a, 14a in a transfer device 14, three sets of clamp
holders 14b, 14b engageable with a support member 6 are provided at the same pitch
as that of the station center, and sealed tanks 12a, 12b are provided to interrupt
in common internal spaces 32a, 31a, 32a, and 32a of the stations 32A, 31, 32C and
32B, respectively, from outside, and to surround the spaces in a communicating fashion.
[0036] The press cycle of the third embodiment is a cycle of insertion, pressing, cooling
and removal, which is merely different from that of the second embodiment, which is
a cycle of insertion, pressing and removal. Therefore, such a difference therebetween
will be mainly described. Where the state shown in Fig. 3 (A) is a state wherein in
the main station 31, a material to be processed 5b has already been pressed, and a
movable cover member 8a is moved down to remove the material to be processed 5b from
the vessel 2, in the inserting auxiliary station 32A, inserting operation of a new
material to be processed 5a for next pressing has been completed, whereas in the cooling
auxiliary station 32C, an already pressed material to be processed 5c having been
forcibly cooled within the operating chamber 11C is removed from the operating chamber
llc to assume the illustrated position by the downward movement of the movable cover
member 8d. Thus, from this state, three sets of clamp holders 14b, 14b in the transfer
members 14a, 14a are made in correspondence to support members 6a, 6b, 6c for the
materials to be processed 5a, 5b, 5c in the stations 32A, 31, 32C, respectively, through
the movement of the transfer members 14a, 14a, the clamp holders 14b, 14b are brought
into engagement with the support members 6a, 6b, 6c through the rotation of the transfer
members 14a, 4a, and the transfer members 14a, 14a are moved by one pitch rightwards
as viewed in the drawing. Thereby, the already cooled material to be processed 5c
is moved onto the movable cover member 8c of the removing auxiliary station 32B, the
already pressed material to be processed 5b onto the movable cover member 8d of the
cooling auxiliary station 32C, and a new material to be processed 5a onto the movable
cover member 8a of the main station 31. Subsequently, the movable cover members 8a,
8d, 8c of the main station 31, cooling auxiliary station 32C and removing auxiliary
station 32B are moved up, whereby in the main station, a new material to be processed
5a is subjected to pressing, and in the removing auxiliary station 32B, an already
pressed and cooled material to be processed 5c is subjected to removal. On the other
hand, in the cooling auxiliary station 32C, the movable cover member 8d is moved up
and closed in the operating chamber lla, the operating chamber llc is interrupted
and independent from the internal space 32a, and the already pressed material to be
processed 5b is held within the chamber through the moving member 7d and support member
6c. Accordingly, cooling air or other coolant is continuously fed into the chamber
through the cooling medium supply and discharge pipe line 56 to thereby positively
and easily cool the material to be processed 5b to a predetermined temperature. The
cooling system can be of a circulation type or a shelf type, either of which can be
used. (The detailed construction is not shown) During that period, in the inserting
auxiliary station 32A, inserting operation of a new material to be processed 5 is
carried out to again produce the Fig. 3 (A) state.
[0037] According to the third embodiment, it is possible to incorporate not only hot isostatic
pressing for a material to be processed 5 but cooling operation for a material to
be processed required later according to the characteristic of material of a material
to be processed into the press cycle and to complete the same. Thus, a separate cooling
device need not be provided externally of the high pressure vessel 2, and a series
of cycles can be progressed with high efficiency to further enhance the productivity.
Also, cooling processing is made by movement of material within the sealed tanks 12a,
12b and within the operating chamber llc, and therefore, the quality can be maintained
stably and evenly, and the whole apparatus including cooling can be designed in compact.
Embodiment 4
[0038] In a fourth embodiment shown in Fig. 4 (A) and Fig. 4 (B), three auxiliary stations
32A, 32B and 32D are disposed adjacent to a main station 31, and in addition to an
inserting auxiliary station 32A and a removing auxiliary station 32B, a preheating
auxiliary station 32D for applying preheating processing as ante-processing to a material
to be processed 5 prior to pressing is added. Thus, the stations 32A, 32D, 31 and
32B are arrayed in said order. The same reference numerals as those used in the third
embodiment indicate the same members as those shown in the third embodiment. The main
station 31, inserting auxiliary station 32A and removing auxiliary station 32B are
the same as those of the third embodiment, and therefore, the construction of the
preheating auxiliary station 32D will be explained. Since an operating chamber 11D
in the preheating auxiliary station is provided to preheat a material to be processed
5 prior to pressing, the top of the operating chamber 11D is closed, and a preheater
4a is housed therein through a heat insulating layer 3a, which is about the same kind
as the heat insulating layer 3 and heater 4 in the high pressure vessel 2 of the main
station 31. Other construction of the fourth embodiment are similar to those of the
third embodiment except that a movable cover member 8e for openably closing an opening
lla at the lower end of the operating chamber 11D by an elevating device 13D and a
moving member 7e provided on the upper surface of the movable cover member 8e are
provided.
[0039] The press cycle of the fourth embodiment is a cycle of insertion, preheating, pressing
and removal which is merely different from that of the third embodiment, which is
a cycle of insertion, pressing, cooling and removal. Therefore, such a difference
therebetween will be mainly described. Where the state shown in Fig. 4 (A) is a state
wherein in the main station 31, a material to be processed 5c has already been pressed,
and a movable cover member 8a is moved down to remove the material to be processed5c
from the vessel 2, in the inserting auxiliary station 32A, inserting operation of
a new material to be processed 5a for next pressing has been completed, whereas in
the preheating auxiliary station 32D (there is provided an energizing device though
not shown), a material to be processed 5b to be pressed next which has already been
preheated in the operating chamber 11D is removed from the operating chamber 11D to
assume the illustrated position by the downward movement of the movable cover member
8e. Thus, from this state, three sets of clamp holders 14b, 14b in the transfer members
14a, 14a are made in correspondence to support members 6a, 6b, 6c for the materials
to be processed 5a, 5b, 5c in the stations 32A, 32D, 31, respectively, through the
movement of the transfer members 14a, 14a, the clamp holders 14a, 14b are brought
into engagement with the support members 6a, 6b, 6c through the rotation of the transfer
members 14a, 14a, and the transfer members 14a, 14a are moved by one pitch rightwards
as viewed in the drawing. Thereby, the already pressed material to be processed 5c
is fed onto the movable cover member 8c of the removing auxiliary station 32B, the
already preheated material to be processed onto the movable cover member 8a of the
main station 31, and a material to be processed 5a to be pressed next onto the movable
cover member 8e of the preheating auxiliary station 32D.
[0040] Subsequently, the movable cover members 8e, 8a, 8c of the preheating auxiliary station
32D, main station 3land removing auxiliary station 32B are moved up, whereby in the
main station 31, the preheated material to be processed 5b is subjected to pressing,
and in the removing auxiliary station 32B, an already pressed material to be processed
5c is subjected to removal via the operating chamber 11B. In the preheating station
32D, the movable cover member 8e is moved up and closed in the opening lla of the
operating chamber 11D, the operating chamber 11D is interrupted and independent from
the internal space 32a, and required preheating of a material to be processed 5a is
carried out through the preheater 4a. Also in this case, an atmosphere as a preheater
is protected, and therefore, even a preheater which is promoted in oxidization at
a high temperature can be used. During that period, in the inserting auxiliary station
32A, inserting operation of a new material to be processed is carried out. Accordingly,
After completion of pressing in the main station 31, completion of preheating in the
preheating auxiliary station 32D and completion of inserting operation in the inserting
auxiliary statio 32A, the movable cover members 8a, 8b, 8e are moved down to again
produce the Fig. á (A) state.
[0041] According to the fourth embodiment, it is possible to incorporate not only hot isostatic
pressing for a material to be processed 5 but preheating operation for a material
to be processed required in advance into the press cycle and to complete the same.
Thus, a separate preheating device need not be provided externally of the high pressure
vessel, and a series of cycles can be progressed with high efficiency to further enhance
the productivity. Moreover, the preheating is carried out under the same circumstance
as that within the high pressure vessel and the movement thereof is carried out within
the sealed tank, and therefore, efficient, uniform and stabilized preheating is assured,
heating time in the high presure vessel 2 can be reduced, and the whole apparatus
including preheating can be designed in compact.
Embodiment 5
[0042] In a fifth embodiment shown in Fig. 5 (A) and Fig. 5 (B), four auxiliary stations
32A, 32B, 32C and 32D are disposed adjacent to a main station 31, and the cooling
auxiliary station 32C in the third embodiment and the preheating auxiliary station
32D in the fourth embodiment are serially incorporated into a press cycle. Thus, the
inserting auxiliary station 32A, preheating auxiliary station 32D, main station 31,
cooling auxiliary station 32C and removing auxiliary station 32B are arrayed in said
order. The same reference numerals as those used in th previous embodiments indicate
teh same members as those shown therein. Since the construction of the stations 31,
32A, 32B, 32C and 32D is exactly the same as that of the previous embodiments, the
description therefor will not be made. Needless to say, the sealed tanks 12a, 12b
interrupt in common all the stations from outside, and internal spaces thereof are
communicatingly covered and four sets of clamp holders 14b, 14b engageable with the
support member 6 of the material to be processed 5 in the transfer members 14a, 4b
are provided as shown in Fig. 5 (B).
[0043] The press cycle of the fifth embodiment is a , cycle of insertion, preheating, pressing,
cooling and removal. Since the operating contents in the preheating and cooling stations
are obvious in the fourth embodiment, only the essential portions of a series of cycles
will be described in connection with Fig. 5 (A). In Fig. 5 (A), in a state wherein
in the main station 31, a material to be processed 5c has already been pressed and
then removed from the vessel 2, the material being moved down to the illustrated position,
in the cooling auxiliary station 32C cooling of a material to be processed 5d pressed
prior to a material to be processed 5c has been completed, in the preheating auxiliary
station 32D preheating of a material to be processed 5b to be pressed next has been
completed, and in the inserting auxiliary station 32A inserting operation of a material
to be processed 5a to be molded next to next has been completed. Accordingly, if in
this state, four sets of clamp holders 14b, 14b of the transfer members 14a, 14a are
brought into engagement with the support members 6a, 6b, 6c, 6d, of the materials
to be processed 5a, 5b, 5c, 5d, respectively, to move rightwards as viewed in the
drawing by one pitch by the transfer members 14a, 14a, the already cooled material
to be processed 5d is transferred to the removing auxiliary station 32B, the already
pressed material to be processed 5c to the cooling auxiliary station 32C, the material
to be processed 5b preheated for pressing next to the main station 31, and the material
to be processed 5a newly inserted for pressing next to next to the preheating auxiliary
station 32D, respectively. Therefore, a series of press cycles of insertion, preheating,
pressing, cooling and removal are repeated in a fully automated manner so that removal
of the already cooled material to be processed 5d in the station 32B, cooling of the
already pressed material to be processed 5c in the station 32C, pressing of the already
preheated material to be processed 5b in the statio 31, preheating of the newly inserted
material to be processed 5a in the station, and insertion of a new material to be
processed 5 in the station 32A may be carried out.
[0044] In accordance with the fifth embodiment, in the hot isostatic pressing operation
with respect to the material to be processed 5, a series of operations including insertion
and preheating required prior to pressing and cooling and removal required after pressing
are carried out in a fully automated manner with extreme high efficiency and without
dead time and loss time principally in terms of the fact that the already pressed
material to be processed 5 can be discharged outside the vessel immediately after
completion of pressing in the high pressure vessel 2. In addition, in the all steps,
movement.of the material to be processed 5 is made within the sealed tanks 12a, 12b,
and therefore, processing operation can be performed under the uniform and stabilized
environment to expect enhancement of productivity and enhancement of quality, and
moreover, compact design of the apparatus can be easily achieved.
[0045] While in the above-described embodiments, the openings 2a and lla of the high pressure
vessel 2 and operating chamber 11 are positioned at the lower end, it should be noted
that these openings can be revesed in position so that the openings 2a and lla are
positioned at the upper end
Lo provide the same effecL. Furthermore, while in the embodiments, a vertical type
is used, it will be noted that a lateral type can be used. While in the embodiments,
a serial arrangement is used, it will be noted that a circular loop arrangement can
be used. Moreover, prior processing and posterior processing to be applied to the
material to be processed 5 prior to or posterior to pressing comprise preheating and
cooling, and in addition, heating and cooling can be also carried out stepwise by
the serial juxtaposition of a plurality of the same auxiliary stations.
[0046] The hot isostatic pressing apparatus by the high pressure vessel in accordance with
the present invention is excellent which enables to provide industrial mass production
for the first time. Figs. 6 and 7 are graphic representations in which necessary operating
time of prior art and the present invention is shown in a process manner. In Fig.
7 which shows the prior art, the axis of ordinate indicates the pressure and temperature,
the axis of abscissa indicates the time, the solid line indicates the pressure curve,
and the dotted line indicates the temperature curve. According to the prior art, in
the high pressure vessel 2, it takes about three hours to increase pressure and temperature
to a predetermined level. The retaining time for pressing at said pressure and temperature
is about one hour. in removal from the vessel, it takes about ten hours to lower the
temperature to an oxidizing preventive temperature (about 300°C) of the heater as
previously mentioned. The pressed article is removed from the container 2 after a
lapse of said period of time, and therefore, the productivity is extremely low, and
the time occupied by the same vessel is extended and repetitive use thereof is impossible.
[0047] On the other hand, in the present invention, Fig. 6 Ia shows the state where the
heater is OFF after processing in the above-described first embodiment, Fig. 6 Ib
the state where the heater is ON, Fig. 6 IIa shows the state where the heater is OFF
after processing in the above-described embodiments 2 and 3, Fig. 6 IIb the state
where the heater remains ON, and Fig. 6 III shows those in the above-described embodiments
4 and 5. In Figs. 6 Ia, Ib, IIa, IIb and III, the left half shows the required time
for the first time, and the right half shows the required time thereafter. In the
first embodiment, it takes about three hours for increasing the temperature and pressure
for the first time, and it takes about one hour for retaining pressing. However, in
removal of a pressed article from the vessel when the heater is OFF, it can be removed
immediately merely by lowering pressure, and therefore, the time is reduced to about
one hour. it requires two hours to insert and remove a material to be processed since
one auxiliary station is used jointly. In the case where rapid increase in temperature
is allowed, when the heater remains ON continuously in Fig. 6 lb, time for increasing
temperature and pressure is reduced to about one hour, depending on the properties
of a material to be processed. In the above-described embodiments 2 to 5, the exclusive-use
auxiliary station is used, and therefore, the time required for insertion and removal
of the material to be process is reduced to about half-hour, and after the second
time, the time for increasing temperature and pressure in the high pressure vessel
2 is reduced to about two hours depending on the remaining temperature when the heater
is OFF, and to about one hour when the heater is ON continuously. In Fig. 6 III, since
a material to be processed is preheated, pressing time of about one half hour will
suffice. It will be apparent that when the already pressed material to be treated
5 is removed from the higii pressure vessel 2, waiting time is not required as so
required in the past, and so, progress of the press cycle with high efficiency and
repetitive use of the high pressure vessel 2 for a short period of time are made possible
to considerably enhance the productivity. This effect results from the fact that the
internal spaces of the stations are interrupted from outside by the common sealed
tank and the same environmental atmosphere as that of the interior of the high pressure
vessel 2 is formed. At the same time, the material to be processed 5 can be transferred
and processed inside, and therefore, there occurs no change in quality and damage
of material to be processed, thus being effective in maintaining a stabilized and
highly reliable quality. Moreover, since the interior of the operating chamber in
the auxiliary station is in communication with the interior of the tank and isolated
by the movable cover, the ante- and post-processings can be independently easily carried
out under the environment suitable therefor, which can be said advantageous.
[0048] Moreover, unlike the prior art apparatus which lacks in unity including many handling
operations such as that inserting means and removing means are exposed to outside
in the vicinity of the high pressure vessel, and cooling and preheating devices are
remotely located, the present invention provides an arrangement wherein the main and
auxiliary stations are adjacently arranged as short distance as possible, the internal
spaces are covered by the sealed tanks, drive means are collectively disposed and
the like, whereby the apparatus of the present invention can be designed in compact.
The present invention is greatly advantageous in that hot isostatic pressed products
by the high pressure vessel can be industrially produced in volume.
Invention (II)
[0049] In the invention (II), a main station 431 (Fig. 10) and an auxiliary station 432
(Fig. 9) are the same in construction as those of the invention (I) described above,
which will not be therefore described further.
[0050] The stations 431 and 432 are arranged on the same circumference as shown in Fig.
8.
[0051] In the auxiliary station 432, a rotatable table 415 is provided for the preparation
to carry a material to be processed 405 towards the main station 431.
[0052] A loop-shaped sealed tank 412, which is composed of an upper tank 412a and a lower
tank 412b, is provided to interrupt internal spaces in the main and auxiliary stations
431 and 432 from outside and surround them in a commnucating manner.
[0053] Movable cover members 408a, 408b are placed on the rotatable table 415 and overlapped
on the member 406a, in which case, if the material to be processed 405 is not yet
pressed, the elevating device 409 is extended through a hole 415a formed in the rotatable
table 415 to move upwardly the movable cover member 408a which is then closed over
the opening 402a of the high presure vessel 402. Whereby, the material to be processed
405 is charged into the vessel 402 through the support and moving member 406a and
the material to be processed 405 is subjected to hot isostatic pressing under the
predetermined conditions of high presure and high temperature. If the material to
be processed 405 has already been pressed, the rotatable table 405 is rotated to transfer
the already processed material to be processed 405 towards the auxiliary station 432.
Embodiments of the Invention (II)
Embodiment 1
[0054] Figs. 8 to 12 illustrate a first embodiment of the invention (II), which is similar
to that of the invention (I), and therefore, only a difference therebetween will be
described. The movable cover member 408a is placed on the rotatable table 415, and
the support and moving member 406a of a material to be processed 405 is provided on
the upper surface of the movable cover member 408a.
[0055] As shown in Fig. 8, the main station 431 and auxiliary station 432 are arranged on
the same circumference. A movable cover member 408b is placed on the rotatable table
415 corresponding to the auxiliary station 432, the movable cover member 408b having
a moving member 406b of the materil to be processed 405 provided on the upper surface
thereof, and an internal space in communication with an internal space of the main
station 431 is provided between the operating chamber 411 and the elevating device
the internal space being brought into communication through the loop-like sealed tank
412.
[0056] The sealed tank 412 for surrounding in common internal spaces of the main station
431 and auxiliary station 432 to interrupt them from outside is of a loop-like configuration
in the form of a combination of upper and lower tanks 412a and 412b. ACtive or inert
gas is supplied through a gas cylinder 451, a reducing valve 452 and a pipe line 454,
as shown in Fig. 11, to the sealed tank 412 whereby the required gas atmosphere can
be created over the whole area within the tank, and vacuum pump likewise causes to
create a vacuum state individually in the whole area in the tank and in the operating
chamber 411 through a pipe line 455.
[0057] Within the sealed tank 412, the rotatable table 415 is rotatably provided on the
horizontal surface through inner and outer bearings 416a, 416b, the rotatable table
415 being formed with holes 415a, 415b for the elvating devices 409, 413.
[0058] The rotatable table 415 is formed with a tooth portion 415A in an outer peripheral
surface thereof, the tooth portion 15A being meshed with a pinion gear 417A, which
is in turn driven by a motor 417 shown in Fig. 12.
[0059] Accordingly, when the motor 417 is stopped, the rotatable table 415 is rotated on
the horizontal surface by means of the bearings 416a, 416b, and the table 415 is stopped
at a position where the holes 415a, 415b are faced to the elevating devices 409, 413,
respectively.
[0060] It is noted that the drive means for the rotatable table 415 can be of the chain
transmission system other than the motor and gear.
Embodiment 2
[0061] Referring to Fig. 13, two auxiliary stations 432 are arranged in an equally spaced
relation on the same circumference with respect to the main station 431. The HIP apparatus,
which has been described in detail referring to Fig. 10, is provided on the main station
431. One of the auxiliary stations 432 serves as an inserting station 432 for a material
to be processed 405, whereas the other serves as a removing station 432 for the processed
material to be processed 405. That is, in the first embodiment of the invention (II),
the auxiliary station was in the orm of an inserting and removing station, but in
the second invention, it is separated individually. The construction of the inserting
station 432 and removing station 432 is the same as that described in detail referring
to Fig. 9.
[0062] In parts other than those described above, in the second embodiment, members common
to those of the aforementioned first embodiment have the same construction, which
are therefore omitted from description to avoid a duplicate, indicating such members
at the common reference numerals.
[0063] Accordingly, in the second embodiment, movable cover members are respectively plaed
on rotatable tables 415 corresponding to the stations 431, 432, 433. Upward and downward
movement of a material to be processed by expansion of an elevating device through
a moving member attached to the movable cover member causes synchronously continuous
operation of insertion of a material to be processed, HIP processing, and removal
of an already processed material.
Embodiment 3
[0064] Referring to Fig. 14, three auxiliary stations 432, which comprises an inserting
station 432, a cooling station 632 and a removing station 532, are arranged on the
same circumference at intervals of 90°. In the third embodiment, a material to be
processed charged through a movable cover member or the like onto a rotatable table
415 within a sealed tank 412 from the inserting station 432 is transferred to the
main station 431 by the turning of the rotatable table 415, where it is usbjected
to HIP processing, after which the material to be processed is turned and transferred
to the cooling station 532 and then removed from the removing station 532. This operation
is continuously carried out by the repetitive operation of rotatio and stoppage of
the rotatable table 415 and by the repetitive elevating operation of elevating devices
provided corresponding to the stations 431, 432, 532, 632.
Embodiment 4
[0065] An arrangment shown in Fig. 15 is the same as that of the third embodiment shown
in Fig. 14 in that three auxiliary stations 432 are arranged at intervals of 90° on
the same circumference but is different therefrom in that the auxiliary station 432
comprises an inserting station 432, a preheating station 732 and a removing station
532.
[0066] More specifically, the preheating station 732 is provided between the inserting station
132 and the main station 431. an operating chamber 111 of the preheating station 732
is provided with a heat insulating layer 403 and a heater 404 and the like as shown
in Fig. 17, and the material to be processed 405 is preheated prior to the HIP processing.
Embodiment 5
[0067] Referring to Fig. 16, four auxiliary stations 432 are arranged in an equally spaced
relation at intervals of 72° on the same circumference with respect to a main station
431. The auxiliary stations 432 comprise an inserting station 432, a preheating station
732, a cooling station 632 and a removing station 532. The preheating station 732
is equidistantly provided on the same circumference between the inserting station
432 and the main station 431 for the HIP processing, and the cooling station 632 between
the removing station 532 and the main station 431 for the HIP processing, respectively.
The steps of inserting, HIP-processing and cooling a material to be processed are
continuously carried out by the repetitive operation of turning and stoppage of the
rotatable table 415 and by the elevating operation of elevating devices provided on
the respective stations.
[0068] A series of operations from insertion to removal of a material to be processed are
basically the same as those of the above-described embodiments 1 to 5. To make assurance
doubly sure, a series of operations by way of the fifth embodiment as a typical example
will be described hereinafter with reference to Figs. 19 to 22.
[0069] Figs. 19 to 22 show in a developed form a loop-like sealed tank 412 and a rotatable
table 415 rotatably provided in a horizontal plane within the tank. Fig. 19 shows
the step before a material to be processed (the fifth material to be processed in
the illustrated embodiment; and a material to be processed in the removing station
has already been processed) is inserted into the inserting station 432.
[0070] As may be apparent from Fig. 19, holes 415a - 415e are respectively formed as positions
corresponding to the stations 431, 432, 532, 632, 732 of the rotatable table 415.
Movable cover members 408a - 408e are placed on the table corresponding to the holes
415a - 415e, the movable cover members being moved up and down by the elevating devices
409 and 413, and an end of the elevating device is positioned at the lower portion
of the holes 415a - 415e through a clearance (a) in order to avoid an interference
with the table 415 and the elevating devices 409, 413 to secure the turning of the
table 415.
[0071] In insertion of a material to be processed, the elevating devices 409, 413 of the
stations 431, 432, 532, 632, 732 are moved up, as shown in Fig. 20, to close openings
of the operating chamber 411 and high pressure vessel 402 corresponding to the movable
cover members 408a - 408e. In the inserting station 532, a material to be processed
is supplied to the operating chamber 411, and during that period, various operations
are carried out at the same time which operations are preheating of a material to
be processed in the preheating station 732, pressing of the preheated material to
be processed in the HIP station 431, cooling of the already pressed material to be
processed in the cooling station 632, and removal of the already cooled material to
be processed (product) in the removing station 532.
[0072] Next, as shown in Fig. 21, the elevating devices 409, 413 in the respective stations
are all moved down to return to and place the movable cover members 408a - 408e together
with the moving members 406a - 406e on the rotatable table 415, after which the rotatable
table 415 is rotated to transfer at the same time all the materials to be processed
to the respective stations for next steps as shown in Fig. 22, thus assuming the same
state as that of Fig. 19.
[0073] The effects obtained by the invention (II) are as graphically illustrated in Figs.
23 a - d as compared with those of prior art shown in Fig. 24. However, these effects
are the same as described in the invention (I) in connection with Figs. 6 and 7, and
therefore, detailed description thereof will be omitted.
[0074] In the invention (II), however, since the sealed tank is in the form of a loop, within
which the rotatable table is provided and a material to be processed or the like is
transferred for each station, the transfer thereof is smooth and stabilized to prevent
a material to be processed from being fallen.
Invention (III)
[0075] According to the invention (III), as shown in Figs. 25, 26, 27 and 28, a plurality
of operating stations according to operating steps applied to a marerial to be processed
805, that is, a first station I, a second station II and a third station III in Fig.
25, are serially juxaposed on one side (upper side in Fig. 25) of a sealed tank 815
forming a closed operating space 815a. The first station I comprises a station for
inserting a material to be processed, said station I being a station body composed
of an operating chamber 811 provided at the upper end thereof with an opening and
closing upper cover 812, the operating chamber 811 having an in- and outlet 811a for
a material to be processed 805 provided at the lower end thereof, said in- and outlet
811a being open to an operating space 815a. The second station II serves as a forming
station for applying hot isostatic pressing to a material to be processed 805, said
second station II being a station body composed of a known high pressure vessel 802
in the HIP apparatus. The vessel 802 is interiorly provided with a heater 804 through
a heat insulating layer 803a in a known manner, and to which vessel are attached a
high pressure gas generatore, a vacuum device, a vessel cooler, a heater energizing
device and the like though not shown. An upper cover 809 is provided on the upper
end of the vessel 802 through a press frame 801, and at the lower end of the vessel
802, and in- and outlet 802a for a material to be processed 805 is open in communication
with the operating space 815a likewise the operating chamber 811 of the first station
I. The third station III serves as a removing station for removing outside a material
to be processed 805 heated and pressed within the high pressure vessel 802 of the
second station II, said removing statio being a station body composed of an operating
chamber 811 provided at the upper end with an opening and closing upper cover 812,
the operating chamber 811 likewise having an in- and outlet 811a for a material to
be processed 805 at the lower end therof, the in- and outlet 811a being open in communication
with the operating chamber 815a. In this manner, a plurality of operating stations
I, II, III (three stations in the illustrated embodiment, but more than two stations
can be provided as necessary) are serially juxaposed in order of operating steps to
be applied to a material to be procesed 805 on one side of the sealed tank 815 forming
a closed space 815a, and the in- and outlets 811a, 802a, and 811a for the material
to be processed of the above stations are directed at the closed space 815a and open
in communication therewith, whereby operating spaces to be transferred for next steps
can be obtained at every termination of each step in a manner isolated from outside
and in extreme compact under collective conditios of operating steps, thus obtaining
the shortest transfer route of a material to be processed formed of blank sensitive
to atmospheric environment and temperature environment. Accordingly, time and labor
required for the purpose of transfer can be materially shortened and saved. In addition,
opening and closing covers 808 capable of completely closing the in- and outlets 811a,
802a, 811a, respectively, are supported on a base seat 807 or the like capable of
placing and supporting the material to be processed 805 through a receiving base 806
as shown, at positions whose centers are the same as those of said in- and outlets,
as shown in Fig. 25, on the other side (lower side in Fig. 25) of the sealed tank
815 corresponding to the side where said stations are installed. Said covers disposed
movably up and down and openably by the elevating device 810. A pair of transfer shafts
823, 823 which extend through the sealed tank 815 along the group of the opening and
closing covers 808 are axially retractably provided, as shown in Figs. 25, 26 and
28, directly above the opening and closing covers 808. Said transfer shafts 823 are
provided rotatably about an axis. Gripping disengageable pawls 826, 826 capable of
gripping and releasing, by normal and reverse rotation about an axis, the receiving
base 806 of the material to be processed 805 on each base seat 807 of said opening
and closing covers 808 are provided at positios opposed to the opening and closing
covers 808 in the first and second stations I and II except the third station III,
which is the removing station of the material to be processed 805, as may be apparent
from Figs. 25 and 28, on the transfer shafts 823. Thereby, the automatic transfer
of the material to be processed 805 between the statios I, II and III can be carried
out within the closed operating space 815a. More specifically,_in the state shown
in Figs. 25 and 26, pressing operation of the material to be processed 805 within
the high pressure vessel 802 in the second station II is terminated, the in- and outlet
802a of the vessel 802 is closed during the pressing, the opening and closing cover
8 supporting the material to be processed 805 through the base seat 807 and receiving
base 806 is moved down by the elevating device 810, and at the same time, even in
the first station, the opening and closing upper cover 812 is opened to insert a new
material to be processed 805 onto the base seat 807 together with the receiving base
806 and the opening and closing cover 808 is likewise moved down by the elevating
device 810. In this state, the shaft 823 on the righthand in Fig. 28 is rotated clockwise
whereas the lefthand shaft 823 rotated counterclockwise whereby the paired set of
opposed disengageable pawls 826, 826 and 826, 826 are turned on the moved-down opening
and closing covers 808, to engage and hold the receiving bases 806 of the materials
to be processed 805, 805 at their symmetrical position. Accordingly, the receiving
bases 806 can be also held so that the lower surfaces thereof may leave a slight gap
than the upper surface of the base seats 707. Next, both the transfer shafts 823 are
moved straight toward the third station III on the righthand in the figure by one
pitch in the illustrated state whereby the previously already pressed material to
be processed 805 is moved opposite the opening and closing cover 808 in the third
station III together with the receiving base 806, and a new material to be processed
805 inserted and set in the first station I is moved to a position opposite the opening
and closing cover 808 in the second station II. At this position, both the transfer
shafts 823, 823 stop, and if both the shafts 823 are turned in a direction opposite
to that of the previous case, the set of disengageable pawls 826, 826 and 826, 826
are all disengaged from the receiving bases 806, 806, and the materials to be processed
805, 805 are supported on the base seats 807, 807 of the opening and closing covers
808, 808 in the stations II and set free. Thus, if the opening and closing covers
808 are then elevated and closed over the in- and outlet 802a of the second station
II and in- and outlet 811a of the third station III by the elevating devices 810,
810, respectively, the previously already pressed materials to be processed 805 are
carried into the operating chamber 8911 isolated from the closed space 815a, a next
new material to be processed 805 is sealed and set into the high pressure vessel 802,
and in the third station III, the already pressed materaial to be processed 805 is
removed outside whereas in the second station II, pressing under superhigh pressure
is performed. At that time, both the transfer shafts 823, 823 are returned to the
position shown in Fig. 25 during the period of the above-described operations to wait
for removal of a next already pressed material to be processed 805 and for the receiving
of a new material to be processed 805. As described above, the operations in the operating
stations I, II and III, movement of materials to be processed 805 in and out of the
stations and movement thereof between the stations are repeated within the operating
space 815a closed by the sealed tank 815 in a fully automated manner by the vertically
movable opening and closing covers 808 and transfer shafts 823. In addition, sicne
the operations are carried out in the closed operating space 815a, if said space is
maintained under the required atmospheric environment, those elements which are liable
to be oxidized under the atmospheric environment or to be changed in quality or the
like, materials to be processed 805 possibly sensitive to variation in thermocondition
and other members of the apparatus can be handled without any inconvenience, and quick,
easy and safe operations are made possible by the shortest transfer route isolated
from outside.
Embodiments of the Invention (III)
Embodiment 1
[0076] Embodiments shown in Figs. 25 to 30 show a three-station type example in which transfer
device of the invention (III) is applied to HIP apparatus. Here, a first station I
serves as an inserting station for a material to be processed 805, a second station
II as a forming station for pressing a material to be processed 805 into a block by
superhigh pressure of hot isostatic pressure, and a third station III as a removing
station for an already pressed material to be processed 805. The first and third stations
I and III comprise a cylindrical operating chamber 811 upper and lower portions of
which are open, the upper opening being opened and closed by an opening and closing
cover 812. The opening and closing construction can be designed freely. In the illustrated
embodiment, there is provided an opening and closing device 813 as shown in Fig.s.
25, 29 and 30, in a sealed tank 815 r operating chamber 811, a pivotal shaft 818 supporting
one end of the opening and closing cover 812 is inserted rotatably and vertically
movably into a guide sleeve 817 held through a mounting member 816, a piston rod 819a
of a drive cylinder 819 is connected to the lower end of the pivotal shaft 818, and
a slide pin 820 provided on a part in the periphery of the pivotal shaft 818 is slidably
brought into engagement with a cam groove 817a formed in the periphery of the guide
sleeve 817 whereby the piston rod 819a of the drive cylinder 819 is moved up and down
to rotate and vertically move the pivotal shaft 818 through the slide pin 820 and
cam groove 817a for automatic opening and closing. Both the stations I and II are
designed so that a pipe line 855 is connected from a vacuum pump 851' as shown in
Fig. 25 to provide suction and vacuum in order that the atmosphere within the operating
chamber 811 is placed under the vacuum atmosphere or active or inert gas atmosphere
as necessary. Necessary gas is supplied from a gas cylinder 852 through a reducing
valve 853 and a pipe line 854. The sealed tank 815 comprises a rectangular tank formed
of an airtight material. Above the sealed tank 815, a first station I, A SECOND STATION
II and a third station III are arrayed, in said order, serially and in a manner such
that centers thereof are at the same intervals, as shown. The opening chamber 811,
high pressure vessel 802 and operating chamber 811 in the stations I, II and II have
their lower portions secured to the upper surface of the tank 815. In- and outlets
811a, 802a, 811a at the lower end are all open in communicatio with a closed operating
spce 815a of the tank 815. also in the operating space 815a of the tank 815, a pipe
line 855 from a separate vacuum pump 851 is connected and a reducing valve 853 and
a pipe line 856 are connected from a gas cylinder 852 in order to provide a vacuum
atmosphere or active or inert gas atmosphere as necesssary. At positions corresponding
to the in- and outlets 811a, 802a, 811a for the material to be processed 805 in ions
I, II, III, base seats 830 are installed on the underside of the tank 815, a drive
cylinder 810a as an elevating device 810 and a piston rod 810b are installed on the
underface of the base seat 830, the opening and closing covers 808 connectd to the
rod 810b are disposed movably up and down on the upper surface of the base seats 810,
and a base seat 807 on which a receiving base 806 supporting a material to be processed
805 is placed and supported is formed on the top surface of the cover 808. In the
elevating device 810 in the second station II, the drive cylinder 810a is connected
to the opening and closing cover 808, and the piston rod 810b is made as the fixed
side to cope with superhigh pressure in the high pressure vessel 802. A pair of transfer
shafts 823, 823 for transfer of a material to be processed between the stations are
juxtaposed parallel to each other through bearings 831, 831 so that the transfer shafts
extend through the tank 815 in a spaced relation so as not to interfere with the opening
and closing covers 808 may be provided retractably in an axial direction along the
group of the opening and closing covers 808 and rotatably about an axis. In the transfer
shafts 823, gripping disengageable pawls 826 that may be engaged or disengaged by
rotation are fixedly mounted with respect to a flange 806a of the receiving base 806
of a material to be processed 805 at positions opposed to the opening and closing
covers 808 of the first and second stations I, II except the final station III, whereby
the material to be processed 805 is supported through the receiving base 806 so that
it may be transferred. A mechanism to provide axial retractable motion of the transfer
shafts 823 and rotational motion about an axis and in a direction opposite each other
can be designed freely. In the illustrated embodiment, each end of the transfer shafts
823 which extend externally of the tank is formed with a spline portion 823a, as shown
in Figs. 25 to 28, said one end having an end rotatably connected to and supported
on a cross head 822 supported on a piston rod 821a of a transporting cylinder 821
mounted on a base 832, and a spline sleeve 829 movably retained on the base 832 through
bearings 828, 828 is fitted in the spline portion 823a of the shaft 823. A pinion
825 is mounted on the sleeve 829, and rack portions 824a, 824a formed on both sides
of a rack 824 supported on a piston rod 827a of a turning cylinder 827 mounted on
the base 823 are meshed with the pinions 825, whereby both the trnsfer shafts 823
may be synchronously retractably moved in an axial direction by the transporting cylinder
821; the pair of pinions 825, 825 are rotated in a direction opposite each other through
the'upward and downward movement of the rack 824 by the turning cylinder 827, and
at the same time, the shafts 823 may be rotated about the axis. It is noted that the
illustrated spline fit can be replaced by the key fit construction. In Fig. 25, an
engaging portion 810c is provided in the periphery of the drive cylinder 810a of the
elevating device 810 of th opening and closing cover 808 for opening and closing the
in- and outlet 802a of the high pressure vessel 802 in the second station II bcause
when the cylinder move upwards so that the cover 808 assumes its closed position,
a clamp device 814 disposed at right angles to the engaging portion 810c engages the
press frame 801 to secure the closed position.
[0077] According to the above-described embodiment, the interior of the operating space
815a of the sealed tank 815 is placed in the same vacuum state or active or inert
gas atmosphere as that of the high pressure vessel 802 in the second station II, and
the opening and closing cover 808 in the first station I is moved up to interrupt
the operating chamber 11 from the operating spce 815a to open the opening and closing
cover 812 and to place and set the material to be processed 805 together with the
receiving base 806 on the base seat 807 of the opening and closing cover 808. Thereafter,
the opening and closing cover 808 is mvoed down together with the material to be processed
805 to rotate the disengageable pawls 826 in the pair of transfer shafts 823 to grip
the flange 806a of the receiving base 806. Movement of the transfer shafts 823 by
one pitch cause to transfer the former to the position of the opening and closing
cover 8 in the second station II. Then, the disengageable pawls 826 are released from
their gripping to suppot the material to be processed 805 and receiving base 806 on
the base seat 807 of the opening and closing cover 808 of the second station II. Next,
the opening and closing cover 808 is moved up to close the in- and outlet 802a of
the high pressure vessel 802 and the material to be processed 805 can be charged and
set in the vessel 802 together with the receiving base 806. Accordingly, while the
hot isostatic pressing is applied to the material to be processed 805 in the second
station II, the transfer shafts 823 are withdrawn, and in the first station, the opening
and closing cover 808 is moved up to close the in- and outlet 811a of the operating
chamber 811 and open the opening and closing cover 812 whereby a new material to be
processed 805 can be inserted and set. When the pressing operation is completed in
the second station II, the opening and closing cover 808 is immediately moved down
to carry the already pressed material to be processed 805 to the position of the transfer
shaft as shown in Fig. 25. Similarly, in the first station I, the opening and closing
cover 808 is moved down to carry a new material to be processed 5 to the position
of the transfer shaft, and subsequently, the disengageable pawls 826 of the transfer
shafts 823 are rotated to grip the receiving bases 606 of the materials to be processed
805. Then, the transfer shafts 823 can be moved by one pitch to move the material
to be processed 805 to the position of the opening and closing cover 808 of the second
station II and to move the already pressed material to be processed 805 to the position
of the opening and closing cover 808 of the third station III. Accordingly, at this
position, the disengageable pawls 826 are released from their gripping, and in the
second station II, charging and setting operation of a new material to be processed
805 into the high pressure vessel 802 is carried out, and in the third station III,
movement of the already pressed material to be processed 805 into the operating chamber
811 is carried out, which operations are both carried out together with the closure
of the in- and outlets 802a, 811a by the upward movement of the opening and closing
covers 808. In the third station III, th already pressed material to be processed
805 moved into the operating chamber 811 isolated from the operating space 815a is
removed by the opening of the upper opening and closing cover 812. During that period,
the pair of the transfer shafts 823 are withdrawn to their original position, and
inserting operation of a new material to be processed 805 in the first station I can
be carried out in a simultaneously progressing manner. A series of transfer motion
can be carried out automatically by the motion of the disengageable pawls 826 through
the upward motion of the opening and closing covers 808 in the stations I, II, III,
the retractable motion of the pair of transfer shafts 823 in an axial direction, and
the turning motion ebout the axis of the opening and closing covers 808 at the down
position. In addition, such operation can be rapidly attained within the operating
space 815a not affected by the external atmospheric pressure by the vertical movement
in the shortest transfer route, horizontal movement and small turning motion about
the axis. Only in the case of the HIP apparatus, in insertion and removal of a material
to be processed into the high pressure vessel, even if the heater 804 is in an energized
state and in a high temperature state, it is possible to form a non-oxidized atmosphere
isolated from outside, and therefore, the already pressed material to be processed
805 can be immediately removed without waiting cooling the already pressed material
to be processed 805. At the same time, it is possible to extremely shorten the press
cycle and to transfer a material to be processed in a safe manner, thus facilitating
enhancement of productivity as a whole.
Embodiment 2
[0078] A second embodiment of the invention (III) shown in Figs. 31 and 32 is of a two-station
type. This second embodiment is similar to the above-described first embodiment, and
therefore, only a difference therebetween will be described. A first station I serves
as an inserting and removing station for a material to be processed 805, and a second
station II serves as a pressing station by way of a high pressure vessel 802. Thus,
the first station I also serves as a final station, which therefore comprises only
one set of disengageable pawls 826 in a pair of transfer shafts 823. In this embodiment,
an opening and closing cover 812 at the upper portion of an operating chamber 811
in the first station I is not of an automatic opening and closing ty pe but can be
opened and closed manually. In a mechanism for axial movement and rotation for the
pair of transfer shafts 823, a turning cylinder 827 of a rack 824 is supported on
a cross head 822 by a supporting member 833. Further, pinions 825, 826 are directly
mounted on the shafts 823 without provision of a sprocket on the transfer shafts 823
to mesh with the rack 824. In this case, the transfer motion is similar to that of
the first embodiment except that in the first station I, the already pressed material
to be processed 805 is removed, after which a new material to be processed 805 is
inserted. It will be noted that the type of the first embodiment can be easily modified
into the type of two-station without need of explanation. This will be all true for
a multiple type station which ill be described hereinafter.
Embodiment 3
[0079] A third embodiment shown in Fig. 33 is of a four-station type, in which a first station
I serves as an inserting station for a new material to be processed 805, a second
station II as a pressing station by way of a high pressure vessel 802, and a third
station III as a station in which the material to be processed 805 pressed in the
second station is immediately cooled to facilitate post-handling. An operating chamber
811 in the station III has a top closed with only a lower end formed with an in- and
outlet 811a, and a coolant supply and discharge line 857 is in communication with
the operating chamber 811. Accordingly, the already pressed material to be processed
805 is removed from the second station II and then carried to the position of the
opening and closing cover 808 of the-third station III by the transfer shafts 823
and the cover 808 is moved up to isolate the operating chamber 811 from an operating
space 815a and retain the material to be processed within said chamber to cool the
material to be processed quickly and positively. Thus cooled material to be processed
is transferred to the next fourth station IV, namely, the removing station for removal
thereof. By the employment of this type, cooling processing required later for a material
to be processed 805 can be incorporated into a series of transfer cycle, and external
cooling equipment need not be provided, cooling effect is stabilized and made even,
adn further the productivity of press cycle can be increased. In this case, three
sets of disengageable pawls 826, which are provided on the pair of transfer shafts
823 are provided opposedly to the positions of the opening and closing covers 808
of the stations I, II, III except the position of the opening and closing cover 808
of the final fourth station IV.
Embodiment 4
[0080] An embodiment shown in Fig. 34 is also of a four-station type, in which there is
provided a station for applying preheating, as processing prior to pressing, to a
material to be processed. A first station I serves as an inserting station for a material
to be processed 805, a second station II as a preheating station, a third station
III as a.pressing station, and a fourth station IV as a removing station. In the second
station II for preheating, an operating chamber 11 has an upper portion closed with
only a lower end formd with an outlet 811a, and the operating chamber 811 is interiorly
prvided with a preheater 804a through a heat insulating layer 80
3a. This preheating construction is about the same as that of the high pressure vessel
802. A material to be processed 805 inserted in the inserting station I is moved to
the second station II by transfer shafts 823 and disengageable pawls 826 and transferred
to an opening and closing cover 808 of the station II, after which the opening and
closing cover 808 is moved up to close an in- and outlet 811a of the operating chamber
811 and the material to be processed 805 prior to pressing charged into the chamber
is subjected to preheating and thereafter transferred to the pressing third station
III. According to this embodiment, preheating required for a a material to be processed
805 is incorporated into a series of transfer cycle, and external preheating equipment
need not be provided. The preheating can be carried out easily under the same environment
as that of the inerior of the hgh pressure vessel. A preheater 804a, which is possible
oxidized at a high temperature, can be used under the environmental atmosphere without
any inconvenience, and uniform and stabilized preheating can be obtained. Also, heating
time in the high pressure vessel in the third station III is shortened, and a series
of press cycle is shortened and the productivity is enhanced.
Embodiment 5
[0081] An embodiment shown in Fig. 35 is of a five-station type, in which a first station
I serves as an inserting statio for a new material to be processed 805, a second station
II as a preheating station for applying preheating to the material to be processed
805, a third station III asa pressing station by way of a high pressure vessel 802
for a preheated material to be processed 805, a fourth station IV as a cooling station
for immediately cooling the material to be processsed 805 pressed in the third station
III, and a fifth station V as a removing station for a material to be processed 805
cooled in the fourth station IV. The construction of a preheating chamber 811 and
a coolig operating chamber 811 in the second and fourth stations II and IV is the
same as that of the third and fourth embodiments previously described. Needless to
say, also in this embodiment, a press cycle of insertion, preheating, pressing, cooling
and removal of a material to be processed 805 are progressed smoothly, accurately
and efficiently by a pair of transfer shafts 823 and disengageable pawls 826 and vertically
movable opening and closing covers 808.
[0082] While in the above-described embodiments, the in- and outlets 802a, 811a for the
material to be processed 805 in the stations I to IV are all open downwardly, it shouwld
be noted that these can be reversed in direction so that the transfer equipment is
positioned at the upper portion.
[0083] According to the invention (III), in pressing as well as other operations required
for material to be processed 805 of metal as well as various other materials to be
processed, the pair of transfer shafts 823 provided within the operating space 815a
closed by the sealed tank 815, the disengageable pawls 826 arrayed in a fixed spaced
relation with the transfer shafts, the plurality of operating stations I - IV by operating
steps positioned with the transfer shafts 823 placed therebetween, and the in-and
outlets 802a, 811a for the material to be processed in said stations I -IV are used,
and the group of opening and closing covers 808 provided with supporting construction
(such as base seats 807) for the material to be processed are provided, whereby the
successive automatic transfer of the material to be processed between the stations
can be accomplished extremely effectively. Moreover, such transfer is carried out
withinthe closed operating space 815a which is isolated from outside and under the
vacuum, active or inert gas atmosphere, as necesssary, and therefore, material to
be processed 805 formed of material which is laibale to be changed in surface or quality
by the temperature and environmental atmosphere can be transferred under the safe
and stabilized conditions. In this case, the supporting constrcution of a material
to be processed 805 is added to the opening and closing cover 808 itself to impart
axial movement and rotation to the pair of transfer shafts 823 whereby the transfer
route is made to be the shortest route between the stations by their vertical movement
and horizontal movement, and the automatic transfer thereof is effected with extreme
high efficiency for obtainment of quick processing without dead time. Vertical movement
and opening and closing of the opening and closing covers 808 within the operating
chamber 811 in the stations are extremely advantageous in various operations because
of the isolation under the atmosphere and thermoconditions which are the same as or
different from that of the closed space 815a. Furthermore, the station equipment can
be collectively provided in the sealed tank 15 according to the operating steps, and
therefore, a series of necessary operations can be advantageously collected in compact.
The scope of use of the apparatus is extremely great for those other than the hot
isostatic pressing apparatus shown in the embodiments, and particularly, the apparatus
is excellent as the transfer equipment for a material to be processed of material
which is liable to be affected by thermo-environment and atmospherice environment.
Invention (IV)
[0084] According to the invention (IV), in an inserting station 901, an opening of an operating
chamber 931 is closed by a movable cover member 919, and under this state, a material
to be processed 921 prior to processing carried by a mnipulator 941 is inserted into
the operating chamber 931 under the state in communication with the air.
[0085] Thereafter, an opening and closing cover 932 is closed as shown in Fig. 37 to thereby
independently seal the operating chamber 931 to place it under the same atmosphere
as that of a communication chamber 906 of a sealed tank 907, after which the movable
cover member 919 is mvoed down by an elevating device 920 to be positioned within
the communication chamber 906 of the sealed tank 907 for preparation of transfer with
respect to a preheating furnace 944.
[0086] Then, a material to be processed 921 together with a supporting base 922 is fed to
transfer means 950 of the preheating furnace 944 through the extending operation of
transfer means 945 indicated as a manipulator, as shown in Fig. 38. This operation
is repeatedly carried out whereby a plurality of materials to be processed 921 are
placed on the transfer means 950 of the preheating furnace 944 for required preheating
prior to pressing through energization of a heater 948.
[0087] In this preheating, radiant heat or the like is diffused into the communication chamber
906 of the sealed tank 907, and such heat is prevented from being filled in the operating
chambers 931, 931' and high pressure vessel 915 by door means 956, 957 provided on
communication portions between a main station 902 and the inserting station 901 of
the preheating furnace 944.
[0088] When the preheating operation of the materials to be processed 921 in the preheating
furnace 944 is completed, the door means 957 is opened as shown in Fig. 39 and the
materials to be processed 921 within the preheating furnace 44 together with the supporting
base 922 are transferred by transfer means 958 indicated as a manipulator onto a movable
cover member 919 placed corresponding to the lower portion of the high pressure vessel
915 in the main station 902, and the materials to be processed 921 is charged into
the vessel 915 by the raising by the elevating device 920 at the same time the opening
of the high pressure vessel 915 of the movable cover member 919 is closed.
[0089] Accordingly, under this state, the materials to be processed 921 are subjected to
pressing by hot isostatic pressing by the heating of a heater 917 provided within
the high pressure vessel 915 through a heat insulating layer, superhigh boosted pressure
of fluid or gas medium sealed into the high pressure vessel 915 as is known, though
not shown, and under the vacuum or, active or inert gas atmosphere withinthe high
pressure vessel 915.
[0090] At this time, the communicatio chamber 906 of the sealed tank 907 can be placed under
the same atmosphere as the environmentl atmosphere within the high pressure vessel
915, whereby the cycle time can be considerably shortened without waiting unitl a
temperature is lowered to a heater oxidizing preventive temperature after termination
of pressing in the vessel 915.
[0091] The already processed materials to be processed 921 transported (delivered) to the
removing station 903 are charged into the independent operating chamber 931' at the
same time the operating chamber 931' of the movable cover member 919' is closed by
the raising thereof by the elevating device 920', and the opening and closing cover
932' is opened to remove the materials to be processed under the atmospheric state.
In this case, a plurality of materials to be processed 921 are prepared and stored
in the preheating furnace 944, and the preheated materials to be processed 921 are
continuously transferred to the main station 902 provided with the high pressure vessel
915 for pressing and cooling after pressing, and the materials are finally removed.
[0092] In an arrangement wherein a cooling furnace 960 is provided within the seled tank
907between the main station 902 and the removing station 903, the speeds of transfer
means 959 of the cooling furnace 960 and transfer means 950 of the preheating furnace
944 are adjusted to provide preheating time and cooling time most suitable for material
and shape and the like of materials to be processed 921.
Embodiments of the Invention (IV)
Embodiment 1
[0093] Figs. 36 to 42 show a first embodiment according to a first aspect of the invention
(IV).
[0094] Hereinafter, a series of operations in the first embodiment will be schematically
described.
[0095] Materials to be processed 921 are inserted into the operating chamber 931 in the
inserting station 901; the opening and closing cover 932 of the operating chamber
931 is closed to exchange of the atmosphere thereof into the same atmosphere as that
of the communication chamber 906 of the sealed tank 907; the materials to be processed
921 are held through the downward movement of the movable cover member 919; the materials
to be processed 921 are transferred to the preheating furnace 944 by the transfer
means 945; the door means 956, 957 are closed; the preheating furnace is preheated
by the heat generated by the heater 948; the materials to be processed 921 are transferred
to the main station; the materials to be processed are inserted into the high pressure
vessel 915 through the movable cover member 919; the press axial force is clamped
by the press frame 923 or the like; the materials to be processed 921 are subjected
to hot isostatic pressing within the high pressure vessel 915; the materials to be
processed 921 are moved down through the movable cover member 919; the materials to
be processed are transferred to the removing stations 903; the materials to be processed
921 are inserted through the movable cover member 919 into the operating chamber 931';
the operating chamber 931' are brought into communication with the atmosphere to remove
materials to be processed 921; the operating chamber 931' is closed by the opening
and closing cover 932' to exchange the atmospheric gas into the same atmosphere as
that of the sealed tank 907; and the movable cover member 919' is moved down.
Embodiment 2
[0096] Fig. 43 shows a second embodiment, in which a sealed tank 907 between an inserting
station 901 and a main station 902 is of a straight passage type, and a preheating
furnace 944 having transfer means 950 such as a coveyor is housed in the straight
passage 907A, and other constructions are the same as those of the above-mentioned
first embodiment.
Embodiment 3
[0097] Fig. 44 shows a third embodiment, in which a sealed tank 907 between an inserting
station 901 and a main station 902 is of a so-called L-shaped curved passage type
907B, and a preheating furnace having transfer means such as a conveyor is housed
in the curve passage portion 907B, and other constructions are the same as those of
the first and second embodiments as described above.
[0098] It will be once again noted that the above-described Embodiments 2 and 3 are also
in accordance with the first aspect of the invention (IV).
Embodiment 4
[0099] Figs. 45 to 48 show embodiments according to a second aspect of the invention (IV),
which is different from the above-described first embodiment in that a plurality of
materials to be processed are accommodated within a communication chamber 906 of a
sealed tank 907 between a main station 902 and a removing station 903, and a cooling
furnace 960 having transfer means 959 for transferring them towards the inserting
station 903 is additionally provided. Other basical structures are the same as those
of the embodiments according to the first aspect of the invention (IV), and only a
difference therebetween will be described hereinafter.
[0100] In Fig. 45, in a rotary type preheating furnace 944, rotary type cooling furnaces
960 are juxtaposed with HIP apparatus sandwiched therebetween, and transfer means
963 comprising an openable chuck element 961 and a drive portion 962 for forward and
backward movement thereof to trnsfer materials to be processed 921 from the preheating
furnace 944 to the main station 902 and from the main station 902 to an inlet of the
cooling furnace 960.
[0101] In the cooling furnace 960, a ring gear 966 is provided on a support base 965 rotatably
mounted through a ring-like bearing 964 on the lower tank of the seled tank 907 as
shown in Figs. 46 to 48, and a rotatable table 967 is mounted on the support base
965. With this, in the illustrated embodiment, transfer means 959 of the same construction
as that of the transfer means 950 of the preheating furnace 944 described above is
formed, and a pinion gear 967' is meshed with the ring gear 966.
[0102] Further, a plurality of materials to be processed 921 can be placed on the cooling
furnace 960, the materials to be processed 921 are cooled within the sealed tank 907
during the transfer, and the materials to be processed 921 already cooled are transferred
to the removing station 903 through the transfer means 958.
[0103] Accordingly, in the embodiment shown in Fig. 45, the steps of supplying the already
preheated materials to be processed 921 to the main station 902 to pressing the same
are the same as those of the aforementioned first embodiment. This embodiment is different
from the aforementioned first embodiment in that the step is incorporated to transfer
the materials to be processed 921 to the cooling furnace 960 by the transfer means
959 between the main station 902 and the removing station 903 and cool the materials
to be processed 921 during the delivery thereof to the removing station 903.
[0104] It will be noted that the cooling furnace 960 is not limited to the rotary type as
shown but can be of the straight passage type or curved passage type, as in the preheating
furnace in the second and third embodiments.
[0105] According to the first aspect of the invention (IV), the internal spaces of the inserting
station, main station and removing station are isolated from outside by the sealed
tank having common communication portions and are brought into communication with
each other, the operating chambers and high pressure vessels in the stations are closed
and opened by the removable cover members, and the removal of the pressed materials
to be processed may be effected without waiting time as encountered heretofore by
the vacuum or necessary gas atmospheric conditions of the sealed tank. Therefore,
it is natural that the effects similar to those obtained by the invention (I) can
be obtained.
[0106] In addition, the preheating furnace is provided on the so-called front surface of
the main station, and the preheating furnace is capable of performing the anre- processing
of pressing in the main station, which can shorten the HIP processing cycle.
[0107] Particularly, in the preheating furnace, the materials to be processed can be gradually
increased in temperature, and for example, in pressing ceramics which requires a long
period of time for HIP processing prior to HIP processing, the cycle time can be shortened
in the ante-preheating.
[0108] Moreover, according to the second aspect of the invention (IV), in addition to the
various advantages noted above, the cooling furnace is provided on the sealed tank
between the main station and the removing station whereby processing suitable for
the kind, shape and the like of materials to e processed by the adjustment of time
period of the preheating furnace and cooling furnace can be made.
[0109] The aforesaid arrangement is suitable for pressing, for example, ceramics, ziroconia,
high-speed steel, etc. which need be gradually cooled.
Invention (V)
Embodiments of the Invention (V)
Embodiment 1
[0110] Operation of a first embodiment of the invention (V) is carried out in manner similar
ro that of the inventions (I) and (II), and details thereof will not be made.
[0111] In the first embodiment of the invention (V), an inserting station, a preheating
station, a pressing station and a removing station are serially arranged in said order.
[0112] It will be noted that a cooling station can be provided between the pressing station
and the removing station.
[0113] Figs. 49 to 54 show a first embodiment of the invention (V), in which a sealed tank
is composed of an upper tank 1002 and a lower tank 1003, and an internal communication
chamber 1004 is isolated from outside.
[0114] An auxiliary station indicated at 1005 serves as an inserting and removing station.
An operating chamber 1006 is airtightly provided in the upper tank 1002 of the sealed
tank 1001, a cylinder type elevating device 1008 for moving up and down a movable
cover member 1007 is provided, directly below the operating chamber 1006, on the lower
tank 1003, and a moving member 1010 is placed on the movable cover member 1007 through
a support base 1009.
[0115] A.n opening and closing cover indicated at 1011 is provided to open and close an
upper opening of the operating chamber 1006. In this embodiment, a cylindrical member
1014 having a cam portion 1013 is mounted through a bracket 1012, a rod 1016 having
a roller 1015 fitted in the cam portion 1013 is inserted into the cylindrical member
1014, and an opening and closing cover 1011 is mounted on the rod 1016 through an
arm 1017. The rod 1016 is moved up and down by means of a turning cylinder 1018, and
the arm 1017 is turned by the cam portion 1013 and roller 1015.
[0116] Accordingly, the operating chamber 1006 has its lower opening airtightly opened and
closed by the movable cover member 1007 through the extension of the elevating device
1008, and the operating chamber 1006 has its upper opening airtightly opened and closed
by the opening and closing cover 1011 through the extension of the turning cylinder
1018.
[0117] Gas from a gas cylinder 1019 can be supplied to the operating chamber 1006 through
a passage 1022 via a reducing valve 1020, a stop valve 1021, and the like, and a passage
1025 having a stop valve 1024 is connected thereto through a vacuum pump 1023.
[0118] In a main station indicated at 1026, a high pressure vessel 1027 for hot isostatic
pressing is airtightly mounted on the upper tank 1002 of the sealed tank 1001.
[0119] The vessel 1027 is interiorly provided with a heater 1029 through an inverted-cup
shaped heat insulating member 1028, and upper and lower openings of the vessel 1027
are covered with cover members.
[0120] In this embodiment, an upper cover 1030 is supported on a press frame 1031 having
a square opening, and a lower cover comprises a movable cover member 1033 which is
mounted on the elevating device 1032 of the extension cylinder type so that it may
be moved up and down.
[0121] Reference numeral 1034 designates a cooling chamber, and 1035 is a lock mechanism
which is engageable with an engaging portion 1036 formed in a tube of the elevating
device 1032. That is, when the lower opening of the vessel 1027 is airtightly covered
by the movable cover member 1033 through the extension of the elevating device 1032,
the rod 1037 of the lock mechanism 1035 is extended and engaged with the engaging
portion 1036, whereby high preessure acting on the upper and lower cover members during
pressing can be clamped through the press frame 1031.
[0122] Active or inert gas from the gas cylinder 1019 can be supplied to the high pressure
vessel 1027 through the upper cover 1030 from a passage 1040 having a stop valve 1039
under the pressing at high pressure by a compressore 1038.
[0123] Gas from the gas cylinder 1019 can be supplied to the sealed tank 1001 through a
passage 1042 having a stop valve 1041 and can also be supplied thereto even udner
the vacuum state bythe vacuum pump 1045 through a passage 1044 having a stop valve
1043. The sealed tank 1001 and high pressure vessel 1027 are short-circuited by a
passage 1047 having an opening and closing valve 1046. The operating chamber 1006
and the sealed tank 1001 are likewise short- ccircuited and communicated through a
passage 1049 having an opening and closing valve 1048.
[0124] A transfer mechanism indicated at 1050 is cosntructed as follows: A pair of rods
1052 are horizontally slidably mounted on the sealed tank 1001 through bearings 1051,
and pawls 1053 are provided on the rods 1052.
[0125] The rod 52 is formed with a spline 1054, and a pinion gear 1055 is placed on the
spline 1054, each rod 1052 being slidably and rotatably supported on a mount base
1056 through a bearing 1057.
[0126] Further, a rack meshed with the pair of left and right pinion gears
l055is provided movably up and down by a cylinder 1059, and a cylinder 1061 is mounted
on an end plate 1060 of the rod 1052.
[0127] Accordingly, the pawls 1053 can be swung through the rack 1058 and pinio gears 1055
by the extension of the cylinder 1059, the moving member 1010 can be floated and placed
on the support base 1009, and the pawls 1053 may be moved between the stations 1005
and 1026 by the extension of the cylinder 1061.
Embodiment 2
[0128] In a second embodiment, the aforementioned four stations are arranged on the same
circumference. Figs. 55 to 59 show the second embodiment of the invention (V). This
second embodiment is different from the above-described first embodiment in that the
sealed tank 1001 is annular and that the transfer means for a material to be processed
Q s of a rotary type of a rotatable table. Therefore, only a difference between the
first and second embodiments will be described.
[0129] Interiorly of the annular-shaped sealed tank 1001 there is rotatably supported a
ring-type rotatable tabnle 1063 through inner and outer ring bearings 1062, and a
gear 1064 is formed in the outer periphery of the rotatable table 1063.
[0130] A pinion gear 1065 is meshed with the gear 1064, the pinion gear 1065 being driven
through a normal and reveerse motor 1066 mounted on the upper tank 1002.
[0131] The rotatable table 1063 is formed with holes 1067 arranged corresponding to the
stations 1005, 1026 to allow upward and downward movement of the elevating devices
1008, 1032.
[0132] As illustrated in Fig. 55, an inserting station 1005A, a preheating station 1005B,
a cooling station 1005C and a rermoving station 1005D, which constitute the auxiliary
station 1005, can be arranged radially at equal pictch together with the main station
1026, as previously mentioned. In this case, particularly, the operating chamber of
the preheating station 1005B and the sealed tank 1001 are communicated with each other
by the short-circuit passage 1049 having the opening and closing valve 1048.
[0133] According to the first and second embodiments of the invention (V), the aforementioned
effects can be obtained.
Invention (VI)
Embodiments of the Invention (VI)
Embodiment 1
[0134] The embodiments of the invention (VI) are applied to a rotary type continuous hot
isostatic pressing apparatus.
[0135] Figs. 60 to 63 show a first embodiment of the invention (VI).
[0136] In Figs. 61 and 62, reference numeral 2001 designates an annular sealed tank. An
inserting station 2002, a preheating station 2003, a presing station 2004, a cooling
station 2005 and a removing station 2006 are arranged on the sealed tank 2001 in a
peripherally equally spaced relation. Vertically corresponding to the sealed tank
2001 are provided an inserting vessel 2007 and an elevating device 2008 in the inserting
station 2002; a preheating vessel 2009 and an elevating device 2010 in the pressing
station 2003; a high pressure vessel 2011 and an elevating device 2012 in the pressing
station 2004; a cooling vessel 2013 and an elevating device 2014 in the cooling station
2005; and a removing vessel 2015 and an elevating device 2016 in the removing station
2006, respectively. Lower ends of the vessels 2007, 2009, 2011, 2013 and 2015 are
brought into communication with the sealed tank 2001, and the inserting vessel 2007
and removing vessel 2015 have opening and closing covers 2018, 2019 mounted thereon
so that a material to be processed 2017 may be inserted and removed from the top.
[0137] An annular totatable table indicated at 2020 is rotatably supported within the sealed
tank 2001 through a bearing 2021, as shown in Fig. 63, and is intermittently rotated
by a motor 2023 through a pinion meshed with a ring gear 2022 formed in the outer
circumference thereof. The rotatable table 2020 is formed with holes 2024 corresponding
to the pitch of each station 2002 - 2006, and movable covers 2025 are placed over
the holes 2024, respectiely, said movable covers 2025 each being fitted in lower openings
of vessels 2007, 2009, 2011, 2013 and 2015.
[0138] The high pressure vessel 2011 of the pressing station 2004 has a fixed upper cover
2026 as shown in Fig. 63, and has a heat insulating layer 2027, a heater 2028 and
the like therein, said upper cover 2026 being placed in contact with a rectangular
frame-like press frame 2029. The elevating device 2012 comprises a cylinder 2030 vertically
slidably provided on the press frame 2029, and a piston rod 2032 slidably fitted in
the cylinder 2030 and secured to the press frame 2029 through a bracket 2031. The
cylinder 2030 is clamped by a pair of clamp pins 2034 engaged with and disengaged
from an engaging groove 2033 in the form of a peripheral groove. The crank pins 2034
are driven forward and backward by a fluid cylinder 2035.
[0139] In each of the movable covers 2026, as shown in Fig. 60, a fitting portion 2036 is
formed stepwise which fits into a lower opening of each of the vessels 2007, 2009,
2011, 2013, 2015 from the bottom, and two seal members 2037, 2038 are fitted in the
outer periphery of the fitting portion 2036 in a vertically spaced relation. The seal
members can be provided more than three in number. On the other hand, the high pressure
vessel 2011 is formed at the lower end with a communication hole 2039 so as to be
communicated with the exterior from a middle portion of two seal members 2037, 2038,
and a pressure switch 2042 is connected in a communicating fashion to the communication
hole 2039 through a pipe 2040 and a stop valve 2041. If pressure, for example. of
0.3 kgf/cm
2 or so acts on the pressure switch 2042 as a result of a gas leakage caused by a damage
of seal members 2037, 2038, such a leakage is detected as being abnormal. The stop
valve 2041 is designed to be opened only in the state wherein the movable cover 2025
is mounted on the vessel since a detector is actuated due to internal pressure of
the sealed tank 2001 under the state wherein the movable cover 2025 is moved down
as shown. Alternatively, the normally open type stop valve 2041 can be used to indicate
"detection" only when the movable cover 2025 is mounted on the vessel through the
electric interlocking. A safety valve 2043 for protection of the pressure switch 2042
is mounted on the pipe 2040.
[0140] A heat insulating layer 2044 and a heater 2045 are provided also within the preheating
vessel 2009. a reference numeral 2046 designates a receiving base for a material to
be processed 2017.
Embodiment 2
[0141] Figs. 64 and 65 show a second embodiment of the invention (VI).
[0142] In Fig. 64, a cylinder 2047 and a limit switch 2048 are used as a sensor to make
detection by making use of a pressure difference resulting from a difference of area
of the piston 2049. More specifically, in this case, suppose that if pressure in a
cylinder chamber 2050 of the cylinder 2047 is zero, it is considered to be normal,
and pressure of about 1 kgf/cm2 is maintained in the cylinder chamber 2051. If a gas
leakage should occur, the piston 2049 and piston rod 2052 are mvoed according to a
pressure difference and the limi switch 2048 is activated to detect a gas leakage.
[0143] If a differential transformer is used in place of the limit switch 2048, a continuous
signal is obtained and therefore, judgement of a leakage degree can also be judged.
Reference numeral 2053 designates a safety valve, and 54 a reducing valve.
[0144] Alternatively, even if a flat switch 55 as shown in Fig. 65 is used as a sensor,
it is possible to detect a gas leakage directly.
[0145] While in the above-described embodiment, the case in connection with the high pressure
vessel 2011 has been illustrated, it should be noted that operation can be practiced
similarly also in connection withthe inserting vessel 2007, preheating vessel 2009,
cooling vessel 2013 and removing vessel 2015. However, in this case, these vessels
2007, 2009, 2013 and 2015 are used under a fine pressure, and therefore, maintenance
of atmosphere of the sealed tank 2001 should be assured.
1. A hot isostatic pressing apparatus, said apparatus comprising a main station comprising
a hot isostatic pressing and forming high pressure vessel one end of which is open
in terms of function, a movable cover member for opening and closing said open one
end, a member attached to said movable cover member to move a material to be processed
in and out of the vessel and the like; an auxiliary station for inserting and removing
a material to be processed comprising an operating chamber one end of which is open
and inserting and/or removing a material to be processed, a movable cover member for
opening and closing said open one end, a member attached to said movable cover member
to move a material to be processed in and out of the chamber and the like, said auxiliary
camber being arranged adjacent to said main station; a sealed tank in which internal
spaces of said main and auxilary stations are isolated in common from outside and
placed in a vacuum state or in a required gas atmosphere, said sealed tank surrounding
said internal spaces in a state of communication; and a transfer device comprising
a movable trasfer member mounted on said sealed tank and movable between said spces
and a support member for supporting a material to be processed, said support member
being retained disengageably relative to said transfer member.
2. The apparatus according to Claim 1, further comprising an auxiliary station for
cooling or preheating a material to be processed arranged adjacent to said main station
and inserting and removing auxiliary station, said cooling or preheating auxiliary
station comprising an operating chamber one end of which is open and cooling or preheating
a material to be processed, a movable cover member for opening and closing said open
one end, a member attached to said movablve cover member to move in and out a material
to be processed.
3. The apparatus according to Claim 1, wherein two auxiliary stations are arranged
adjacent to each other and with the main station sandwiched therebetween.
4. The apparatus according to Claim 1, wherein three auxiliary stations are arranged
adjacent to the main station, and in addition to the inserting auxiliary station and
the removing auxiliary station, a cooling auxiliary station for applying a cooling
processing as a post-processing to an already pressed material to be processed is
added.
5. The apparatus according to Claim 1, wherein three auxiliary stations are arranged
adjacent to the main station, and in addition to the inserting auxiliary station and
the removing auxiliary station, a preheating auxiliary station for applying preheating
processing as ante-processing to a material to be processed prior to pressing is added.
6. The apparatus according to Claim 1, wherein four auxiliary stations are arranged
adjacent to the main station, and the cooling auxiliary station and the preheating
auxiliary station are serially incorporated into a press cycle.
7. A rotary type continuous hot isostatic pressing apparatus, said apparatus comprising
a main station on which are provided a hot isostatic pressing and forming high pressure
vessel at least one end of which can be opened in terms of function, a movable cover
member for opening and closing said open one end of the vessel, and a member for moving
a material to be processed in and out of the vessel, said member being attached to
said vessel; an auxiliary station for inserting and removing a material to be procesed
on which are provided an operating chamber one end of which is open and which inserts
and/or removes a material to be processed, a movable cover member for opening and
closing said open one end of said operating chamber, and a member for moving a material
to be processed in and out of the chamber, said member being attached to said movable
cover member; said main and auxiliary stations being arranged on one and the same
circumferential surface, a loop-shaped sealed tank in which internal spaces of both
said stations are isolated in common from outside and placed in a vacuum state or
in a required gas atmosphere, said sealed tank surrounding said internal spaces in
a state of communication; a rotatable table provided internally of the loop of said
sealed tank, said rotatable table being freely rotated and driven on a horizontal
surface; said movable members being placed on the rotatable table in both the stations,
an elevating device for moving up and down said movable cover members from said rotatable
table; and a hole for said elevating device formed in said rotatable table.
8. The apparatus according to Claim 7, further comprising a cooling or preheating
auxiliary station for a material to be processed on which are provided an operating
chamber one end of which is open and cooling or preheating a material to be processed,
a movable cover member for opening and closing said open one end of said operating
chamber, and a member attached to said movable cover member to move in and out a material
to be processed.
9. The apparatus according to Claim 7, wherein two auxiliary stations are arranged
in an equally spaced relation on the same circumference with respect to the main station.
10. The apparatus according to Claim 7, wherein three auxiliary stations, which comprises
an inserting station, a cooling station and a removing station, are arranged on the
same circumference at intervals of 90°.
11. The apparatus according to Claim 7, wherein the auxiliary station comprises an
inserting station, a preheating station and a removing station.
12. The apparatus according to Claim 7, wherein four auxiliary stations are arranged
in an equally spaced relation at invervals of 72° on the same circumference with respect
to the main station.
13. An apparatus for transferring a material to be processed in a closed operating
space which comprises a plurality of operating stations for applying operating steps
to a material to be processed on one side of a sealed tank forming a closed operating
space, said operating stations being arrayed serially and in such a manner that both
inlet and outlet of the material to be processed are open to said operating space;
placing and opening and closing cover for a material to be processed provided in correspondence
to the inlet and outlet of the material to be processed in said operating stations
on the other side of the sealed tank, said cover being provided serially and movably
up and down and openably; a pair of transfer shafts extending through the sealed tank
above said placing and opening and closing cover of the material to be processed,
said transfer shafts being juxaposed retractably along said covers and in a spaced
relationso as not to interfere with said covers; gripping disengageable pawls for
a material to be processed provided at a position opposed to the placing and opening
and closing covers in the operating stations except the final operating station in
both the transfer shafts; and axially retractable means for said transfer shafts and
rotatable means provided externally of the sealed tank.
14. The apparatus according to Claim 13, which employs a three-station type comprising
an inserting station, a pressing station and a removing station.
15. The apparatus according to Claim 13, which employs a two-station type comprising
an inserting and removing station, and a pressing station.
16. The apparatus according to Claim 13, which employs a four-station type comprising
an inserting station, a pressing station, a cooling station and a removing station.
17. The apparatus according to Claim 13, which employs a four-station type comprising
an inserting station, a preheating station, a pressing station and a removing station.
18. The apparatus according to Claim 13, which employs a five-station type comprising
an inserting station, a preheating station, a pressing station, a cooling station
and a removing station.
19. A continuous hot isostatic pressing apparatus comprising a main station on which
are provided at least a hot isostatic pressing and forming high pressure vessel at
least one end of which can be opened in terms of function, and a movable cover member
for opening and closing said open one end of the vessel; an inserting station and
a removing station for a material to be processed on which are provided at least operating
chambers each one end of whichis open and which inserts or removes a material to be
processed, and a movable cover member for opening and closing each one end of the
operating chambers; a sealed tank in which internal spaces of said stations are isolated
in common from outside and placed in a vacuum state or in a required gas atmosphere
and which has a communication chamber surrounding each internal space in a communicating
fashion; a tunnel-like preheating furnace provided in the communication chamber of
the sealed tank between the inserting station and the main station, said furnace having
transfer means capable of accommodating a plurality of materials to be processed and
transferring the materials to be processed from the inserting station to the main
station; transfer means for successively transferring the materials to be processed
from the inserting statio to the preheating furnace, from the preheating furnace to
the main statio and from the main station to the removing station; and openable door
means provided on communication portios between the inserting station and the main
station of the preheating furnace.
20. The apparatus according to Claim 19, further comprising a cooling furnace provided
in a communication chamber of the sealed tank between said main station and said removing
station, said furnace having transfer means capable of accommodating a plurality of
materials to be processed and transferring the materials to be processed from the
main station to the removing station; and transfer means for successively transferring
materials to be processed from the inserting station to the preheating furnace, from
the preheating furnace to the main station, from the main station to the cooling furnace,
and from the cooling furnace to the removing station.
21. The apparatus according to Claim 20, wherein a sealed tank between an inserting
station and a main station is of a straight passage type, and a preheating furnace
having transfer means such as a conveyor is housed in the straight passage.
22. The apparatus according to Claim 20, wherein a sealed tank between an inserting
station and a main station is of an L-shaped curved passage type and a preheating
furnace having transfer means such as a conveyor is housed in the curve passage.
23. A continuous hot isostatic pressing apparatus, comprising a main station on which
are provided at least a hot isostatic pressing and forming high pressure vessel at
least one end of which is open in terms of fucntion, and a movable cover member for
oening and closing said open one end of the vessel; auxiliary stations such as an
inserting station and a removing station for a material to be processed on which are
provided at least operating chambers each one end of which is open and which insert
or remove a material to be processed, and a movable cover member for opening and closing
one end of said operating chamber; a sealed tank in which internal spaces of said
stations are isolated in common from outside and in a vacuum stat or in a required
gas atmosphere, said sealed tank having a communication chamber surrounding said internal
spaces in a communicating fashion, said sealed tank being interiorly provided with
means for transferring a material to be processed between said auxiliary station and
said main station; and passages to provide communication between the sealed tank and
said high pressure vessel and said operating chambers, said passages each being provided
with an opening and closing valve.
24. The apparatus according to Claim 23, wherein the sealed tank is annular and the
transfer means is of a rotary type.
25. A seal leakage detecting apparatus in a continuous hot isostatic pressing apparatus,
which apparatus comprises a vessel at least one end of which is open into a sealed
tank, and a movable cover capable of placing a material to be processed thereon and
detachably fitted into the vessel from the sealed tank side, said detector comprising
at least two seal elements provided, in a fitted portion between the vessel and the
movable cover, in an axially spaced relation, a hole formed in the vessel, said hole
extending from an intermediate portion of said seal elements to the air, and a sensor
provided in said hole in a communication fashion.
26. The apparatus according to Claim 25, wherein the sensor comprises a cylinder and
a limit switch.
27. The apparatus according to Claim 25, wherein the sensor comprises a float switch.