BACKGROUND OF THE INVENTION
[0001] The present invention relates to a supply method and a supply apparatus for a semi-solid
metal.
[0002] EP Publication No. 0903193 discloses a method for preparing a semi-solid metal (slurry) in a solid-liquid coexisting
state by cooling a metal such as aluminum or magnesium in a molten state, or alloys
of these or the like , and producing a metal molded product by using the semi-solid
metal.
[0003] According to the method shown in
EP Publication No. 0903193 a molding apparatus including an injection sleeve formed with an opening portion,
and a plunger provided progressively/regressively at inside of the injection sleeve
is used. Specifically, first, a semi-solid metal is supplied from the opening portion
to the injection sleeve. Next, the semi-solid metal supplied to the injection sleeve
is extruded by the plunger to be injected into a die connected to the injection sleeve.
Next, the semi-solid metal injected into the die is cooled to solidify the semi-solid
metal. A metal molded product in accordance with a shape of an inner portion of the
die can be fabricated as described above.
[0004] Meanwhile, the viscosity of the above-described semi-solid metal is higher than that
of the metal in the molten state. Therefore, a large force is necessary to maintain
a current shape. Therefore, when a press force is applied in extruding the semi-solid
metal by the plunger, the semi-solid metal is applied a stress in a direction opposed
to a direction of the press force to maintain the current shape. Therefore, the semi-solid
metal is squeezed by the press force and the stress to considerably deform, and there
is a case of jumping out from the opening portion of the injection sleeve to outside.
[0005] EP Publication No. 1649951 discloses a method of preparing a map expressing a correlation between solid phase
percentage and viscosity of a slurry-form semi-solid metal for a given metal composition;
a step of setting a target viscosity corresponding to a target solid phase percentage
using this map; a viscosity measuring step of measuring the viscosity of a semi-solid
metal in a vessel while cooling it; and a step of carrying out cooling until this
viscosity reaches the target viscosity, by these steps being carried out in from the
preparation of the map expressing the correlation between solid phase percentage and
viscosity of the semi-solid metal to the end of cooling of the semi-solid metal the
solid phase percentage of the semi-solid metal is made to match the target solid phase
percentage. Because the viscosity is detected, the affects of cooling rate changes
and time can be eliminated, and it is possible to raise management accuracy of the
solid phase percentage of the semi-solid metal much further than with related art
management based on time.
[0006] WO Publication No. 2006/120980 discloses an apparatus by which a semisolidified metallic slurry material can be
fed without fail to the right position in a sleeve. A metallic material in a molten
state is poured into a vessel which has a bottom and is held upright. At the time
when the metallic material has become a semisolidified metallic slurry material, the
bottomed vessel is turned sideways with a support supporting the bottomed vessel.
The bottomed vessel in the lying state is divided and separated into a bottom part
and a barrel part. Simultaneously therewith, the barrel part having the semisolidified
metallic slurry material enclosed therein is held in the lying state with a supporting
arm and moved to a material setting position in the sleeve of an injection molding
machine.
[0007] As a result, a step of removing the jumped semi-solid metal is needed, and the additional
step leads to the problem that the production cannot be made efficient.
SUMMARY OF THE INVENTION
[0008] One or more embodiments of the present invention provide a supply method and a supply
apparatus for a semi-solid metal, capable of preventing the semi-solid metal from
jumping out.
[0009] In accordance with one or more embodiments of the present invention, in a supply
method of a semi-solid metal of the invention for supplying the semi-solid metal to
a molding apparatus having an injection sleeve formed with an opening portion, and
a plunger progressively/regressively provided at an inner portion of the injection
sleeve, the supply method is provided with a first step of producing the a semi-solid
metal from a molten metal at an inner portion of a vessel in a shape of a cylinder,
and a second step of supplying the semi-solid metal contained in the vessel to the
inner portion of the injection sleeve by inserting a front end of the vessel into
the opening portion of the injection sleeve by a predetermined angle. At the second
step, the semi-solid metal is injected to a side in a direction of advancing the plunger
more than at the opening portion.
[0010] According to this case, the front end of the crucible is inserted into the opening
portion of the injection sleeve by the predetermined angle and the semi-solid metal
is injected to the side in the direction of advancing the plunger more than the opening
portion by way of the front end of the crucible. Therefore, even when the semi-solid
metal is extruded by the plunger, the semi-solid metal can be prevented from jumping
out from the opening portion.
[0011] A gutter is provided on a front end side of the crucible, and at the second step,
a front end of the gutter is inserted into the opening portion by the predetermined
angle and the semi-solid metal may be injected from the front end of the gutter.
[0012] According to this case, the front end side of the crucible is provided with the gutter,
the semi-solid metal is injected from the front end of the gutter, and therefore,
the semi-solid metal can smoothly be supplied to the inner portion of the injection
sleeve by increasing a flow rate of the semi-solid metal.
[0013] The gutter may be configured to be attachable and detachable to and from the vessel.
[0014] When the semi-solid metal is produced from the molten metal at the inner portion
of the crucible, it is necessary to cast the molten metal to the crucible and stir
the molten metal. However, when the vessel is provided to the gutter, the molten metal
is stirred by inserting a stir rod from the front end of the gutter, and therefore,
it is difficult to uniformly stir the molten metal.
[0015] Hence, if the gutter is made to be attachable and detachable to and from the vessel,
the gutter does not constitute a hindrance when the molten metal is stirred and the
moltenmetal can uniformly be stirred.
[0016] In accordance with one or more embodiments of the present invention, in a supply
apparatus of a semi-solid metal of the invention for supplying the a semi-solid metal
to a molding apparatus having an injection sleeve formed with an opening portion,
and a plunger progressively/regressively provided at an inner portion of the injection
sleeve, the supply apparatus is provided with a crucible in a shape of a cylinder
containing the semi-solid metal, a carry arm for grabbing to move the vessel, and
a controlling apparatus for controlling the carry arm. The control apparatus inserts
a front end of the crucible into the opening portion of the injection sleeve by a
predetermined angle and injects the semi-solid metal contained in the crucible on
a side in a direction of advancing the plunger more than at the opening portion.
[0017] According to this case, an effect similar to the above-described effect for the method
is achieved.
[0018] The carry armmay include a gutter capable of being connected to the vessel, and the
controlling apparatus may connect the gutter to the crucible, insert a front end of
the gutter into the opening portion by a predetermined angle and inject the semi-solid
metal from the front end of the gutter.
[0019] According to this case, the gutter can be connected to the vessel by grabbing the
vessel by the carry arm, and therefore, an effect similar to the above-described effect
is achieved.
[0020] The gutter may be constituted by a shape of a groove.
[0021] According to this case, the gutter is constituted by the shape of the groove, and
therefore, in comparison with the case in which the gutter is constituted by a shape
of a cylinder, the atmosphere is easy to flow smoothly to the inner portion of the
vessel and the semi-solid metal can smoothly be injected from the crucible.
[0022] According to one or more embodiments of the present invention, the front end of the
crucible is inserted into the opening portion of the injection sleeve by the predetermined
angle and the semi-solid metal is injected to the side in the direction of advancing
the plunger more than at the opening portion by way of the front end of the crucible.
Therefore, even when the semi-solid metal is extruded by the plunger, the semi-solid
metal can be prevented from jumping out from the opening portion.
[0023] Other aspects and advantages of the invention will be apparent from the following
description and the appended claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0024]
Fig.1 is a perspective view showing a supply apparatus and a molding apparatus supplied
with a semi-solid metal by the supply apparatus acording to an exemplary embodiment
of the invention.
Fig.2 is a perspective view of a gutter provided at the supply apparatus.
Fig.3 is a perspective view of a crucible and a stirrer provided to the supply apparatus.
Fig.4 is a view for explaining a procedure of subjecting a semi-solid metal to injection
molding by using the supply apparatus.
Fig. 5 is a view for explaining a procedure of subjecting the semi-solid metal to
injection molding by using the supply apparatus.
Fig.6 is a perspective view of a crucible and a stirrer according to a modified example
of embodiments of the invention.
Fig.7 is a perspective view of a crucible and a stirrer according to a modified example
of the embodiments of the invention.
DETAILED DESCRIPTION OF THE EXEMPLARY EMBODIMENTS
[0025] An exemplary embodiment of the invention will be explained in referenced to the drawings
as follows.
[0026] Fig.1 is a perspective view showing a supply apparatus 10 and a molding apparatus
30 supplied with a semi-solid metal by the supply apparatus 10 acording to the exemplary
embodiment of the invention.
[0027] The molding apparatus 30 includes an injection sleeve 31 in a cylindrical shape,
and a plunger 32 provided progressively/regressively at inside of the injection sleeve
31.
[0028] The injection sleeve 31 is connected to a die, not illustrated. An upper face of
the injection sleeve 31 is formed with an opening portion 31A.
[0029] When the semi-solid metal is supplied from the opening portion, the molding apparatus
30 injects the semi-solid metal from a front end of the injection sleeve into the
die by making the plunger 32 progress.
[0030] The supply apparatus 10 includes a crucible 11 in a shape of a cylinder, a carry
arm 13 carrying to move the crucible 11, and a control apparatus 14 for controlling
the carry arm 13. Further, although in Fig. 1, the crucible 11 in the shape of the
circular cylinder is illustrated, a crucible in a shape of a square cylinder will
do. The circular cylinder shape is simply fabricated and easy to stir a molten metal
stored at inside of the crucible by a cooling block 121 (refer to Fig.3) to be along
an inner wall of the crucible 11.
[0031] The carry arm 13 is a movable arm of an articulated robot a whole content of which
is not illustrated, and the articulated robot includes 6 axes of movable shafts and
includes an arm 137 and a hand 136.
[0032] The hand 136 is pivoted centering on a rod 138 relative to the arm 137 by way of
a rod 138, or relatively rocked by constituting a base point by a base end side of
the rod 138. The hand 136 is provided with a gutter 131 an upper half of which is
opened.
[0033] Further, although an example of 6 axes of the articulated robot is shown as an example
as described above, there may be constituted moving means including a moving unit
moving in 3 axes orthogonal to each other, that is, X axis-Y axis-Z axis, including
the rod having the function of pivoting and rocking at a front end, and having the
hand 136 on a front end side of the rod.
[0034] Fig.2 is a perspective view of the gutter 131.
[0035] The gutter 131 includes a gutter main body 132 in a groove shape, and a front end
portion 134 in a groove shape provided at a front end of the gutter main body 132.
[0036] An inner diameter of the front end portion 134 is made to be smaller than an inner
diameter of the gutter main body 132. A taper portion 132 is constituted between the
gutter main body 132 and the front end portion 134.
[0037] The gutter 131 is made to be attachable and detachable to and from the crucible 11
and is mounted to the crucible 11 when the crucible 11 is grabbed by the hand 136.
[0038] The semi-solid metal is contained in the crucible 11. The semi-solid metal is produced
from a molten metal comprising a molten metal of aluminum or magnesium, or alloys
of these or the like by using a stirrer 12. Further, the crucible 11 provided to a
production line of fabricating the semi-solid metal is a bottomed heat insulating
crucible supplied with an amount of 1 shot of a molten metal of the molding apparatus
30.
[0039] Fig.3 is a perspective view of the stirrer 12.
[0040] The stirrer 12 is for cooling and stirring the molten metal at inside of the crucible
11 and includes the cooling block (cooling member) 121 at a previously set temperature,
a rotation drive source 122 for driving to rotate the cooling block 121, and a moving
mechanism 125 for moving the cooling block 121 and the rotation drive source 122 on
a horizontal face longitudinally and transversely, for example, moving in X, Y axis
directions. That is, the cooling block 121 and the rotation drive source 122 are moved
while being supported by a support member, not illustrated, specifically, a moving
unit moved in X, Y axis directions having support rails orthogonal to each other,
or an articulated robot of about 3 through 6 axes, not illustrated, or the like. The
moving mechanism 125 is a moving mechanism for horizontally moving the cooling block
121 and the rotation drive source 122.
[0041] The cooling block 121 is constituted by a shape of a square pillar and is provided
with a draft from a base end to a front end thereof. Further, an outer shape of the
cooling block 121 may be constituted by a polygonal shape having one or more of corners,
a faced polygonal shape having 3 or more of corners, a shape of an ellipse, or a shape
of a compounded ellipse, thereby, a vortex is easy to be generated in stirring the
molten metal, a stirring capacity can be promoted, and a crystal can be prevented
from being produced at the inner wall of the heat insulating crucible. The cooling
block 121 is constituted by a material which is not melted by the molten metal, and
a temperature thereof is controlled by a temperature control portion, not illustrated.
[0042] The rotation drive source 122 is connected to the base end of the cooling block 121
by way of a rotating shaft 123 and a coupler 124 made of a ceramic for driving to
rotate the cooling block 121 centering on the rotating shaft 123. The coupler 124
made of a ceramic is provided to the rotation drive source 122 to be able to remove
the cooling block 121.
[0043] The moving mechanism 125 moves the cooling block 121 and the rotation drive source
122 in a vertical direction and moves the cooling block 121 and the rotation drive
source 122 in a spiral shape in an arrow mark B direction in Fig. 3 on a horizontal
plane. That is, the molten metal stored at inside of the crucible is cooled by way
of the cooling block 121 cooled to a predetermined temperature equal to or lower than
a temperature of the molten metal, and an amount of 1 shot of the molten metal is
stirred in a horizontal direction to be along the crucible 11 and separated from the
crucible 11 by the cooling block 121 while rotating the cooling block 121. Further,
the cooling block 121 may be moved in a spiral shape in a horizontal direction. Thereby,
the molten metal can effectively be stirred by hampering a directionality of cooling
as less as possible. When moved in the spiral shape in the horizontal direction, the
directionality of cooling can further be hampered as less as possible and the molten
metal can swiftly be stirred.
[0044] An explanation will be given of a procedure of subjecting the semi-solid metal to
injection molding by using the supply apparatus 10.
[0045] First, the molten metal is supplied to the crucible 11, and the cooling block 121
is dipped into the molten metal at inside of the crucible 11 by moving the cooling
block 121 and the rotation drive source 122 in a vertical lower direction by rotating
the cooling block 121 at a previously set temperature by a comparatively low speed
centering on the rotating shaft 123 by the rotation drive source 122 of the stirrer
12. Next, a speed of rotating the cooling block 121 is increased by the rotation drive
source 122 and the cooling block 121 and the rotation drive source 122 are moved in
the spiral shape by the moving mechanism 125. Thereby, the molten metal is cooled
and stirred swiftly.
[0046] Next, after stirring the amount of 1 shot to be separated from the crucible 11 in
the horizontal direction to be along the crucible 11 by a previously determined time
period, the cooling block 121 is pulled up from the molten metal at inside of the
crucible 11 by moving the cooling block 121 and the rotation drive source 122 in a
vertical upper direction by the moving mechanism 125 while rotating the cooling block
121 by the rotation drive source 122. Thereby, the molten metal at inside of the crucible
11 becomes a semi-solidmetal maintained at a constant temperature as a whole.
[0047] Next, as shown by Fig.4, the semi-solid metal is supplied into the injection sleeve
31 by grabbing the crucible 11 containing the semi-solid metal by the hand 136 of
the carry arm 13 of an articulated robot or the like, not illustrated, and inserting
the front end portion 134 of the gutter 131 mounted to the crucible 11 into the opening
portion 31A of the injection sleeve 31 by a predetermined angle (arbitrary angle).
Thereby, as shown by Fig. 5, the semi-solid metal at inside of the crucible 11 is
injected from the front end portion 134 of the gutter 131 to a side in a direction
of advancing the plunger 32, that is, a side in an arrow mark A direction in Fig.5
more than at a position formed with the opening portion 31A at inside of the injection
sleeve 31.
[0048] Thereafter, the semi-solid metal supplied to inside of the injection sleeve 31 is
extruded in the arrow mark A direction in Fig.5 by the plunger 32 and is injected
to a die, not illustrated.
[0049] Further, the cooling block 121 after having been pulled up from the molten metal
is first dipped into a cooling layer, not illustrated, to carry out a cooling treatment.
Next, the cooling block 121 is subjected to an air blow treatment, removed of a solidified
object of the semi-solid metal adhered to a surface of the cooling block 121, thereafter,
coated with a ceramic material on the surface and is subjected to a drying treatment
by drying means, not illustrated. Thereby, the surface of the cooling block 121 is
prevented from reacting with the molten metal, and removal of the solidified object
of the adhered to the surface of the cooling block 121 is facilitated.
[0050] According to the exemplaryembodiment, the following effect is achieved.
- (1) The crucible 11 is grabbed by the carry arm 13 and the gutter 131 is mounted to
the crucible 11. Further, the front end portion 134 of the gutter 131 is inserted
into the opening portion 31A of the injection sleeve 31 by the predetermined angle,
and the semi-solid metal at inside of the crucible 11 is injected from the front end
portion 134 of the gutter 131 to the side in the direction of advancing the plunger
32 more than at the position formed with the opening portion 31A at inside of the
injection sleeve 31. Therefore, even when the semi-solid metal is extruded by the
plunger 32, the semi-solid metal can be prevented from jumping out from the opening
portion 31A.
- (2) The gutter 131 is made to be attachable and detachable to and from the crucible
11, the semi-solid metal is injected from the front end portion 134 of the gutter
131, and therefore, the semi-solid metal can smoothly be supplied to the inner portion
of the injection sleeve 31 by increasing a flow rate of the semi-solid metal.
- (3) The gutter 131 is attachable and detachable to and from the crucible 11, and the
gutter is mounted to a vessel by grabbing the vessel by the carry arm. Therefore,
when the molten metal at inside of the crucible 11 is stirred by the stirrer 12, the
gutter 131 does not constitute a hindrance by detaching the gutter 131 from the crucible
11, and the molten metal can uniformly be stirred. Further, when the moltenmetal is
supplied to the crucible 11, the gutter 131 does not constitute a hindrance by detaching
the gutter 131 from the crucible 11, and the molten metal can easily be supplied.
- (4) The gutter 131 is provided in the groove shape, and therefore, in comparison with
a case in which the gutter 131 is constituted by a shape of a cylinder, when the semi-solid
metal at inside of the crucible 11 is supplied to the injection sleeve 31 by way of
the gutter 131, the atmosphere smoothly flows to the inner portico of the crucible
11, and the semi-solid metal can smoothly be injected from the crucible 11.
[0051] Further, the invention is not limited to the above-described embodiment but the invention
includes a modification, an improvement or the like within a range of capable of achieving
the object of the invention.
[0052] Although according to the above-described exemplary embodiment, the molten metal
at inside of the crucible 11 is cooled and stirred by moving the cooling block 121
and the rotation drive source 122 of the stirrer 12 in the spiral shape by the moving
mechanism 125, the invention is not limited thereto. For example, as shown by Fig.6,
a crucible 11A is constituted by a shape of a parallelepiped, cooling blocks 121A
and 121B and rotation drive sources 122A and 122B of a stirrer 12A may reciprocally
be moved in a longitudinal direction (arrow mark C direction in Fig.6 of the crucible
11A by a moving mechanism 125A to thereby cool and stir the molten metal at inside
of the crucible 11A.
[0053] That is, the rotation drive source 122A is connected to a base end of the cooling
block 121A by way of a rotating shaft 123A and a coupler 124A to drive to rotate the
cooling block 121A centering on the rotating shaft 123A. The coupler 124A made of
a ceramic is provided to the rotation drive source 122A to be able to remove the cooling
block 121A.
[0054] On the other hand, the rotation drive source 122B is connected to a base end of the
cooling block 121B by way of a rotating shaft 123B and a coupler 124B made of a ceramic
to drive to rotate the cooling block 121B centering on the rotating shaft 123B. The
coupler 124B made of a ceramic is provided to the rotation drive source 122B to be
able to remove the cooling block 121B.
[0055] The moving mechanism 125A moves the cooling blocks 121A and 121B and the rotation
drive sources 122A and 122B in the vertical direction and reciprocally moves the cooling
blocks 121A and 121B and the rotation drive sources 122A and 122B in the arrow mark
C direction in Fig.6.
[0056] Further, as shown by Fig.7, a cooling block 121C and a rotation drive source 122C
of a stirrer 12B may reciprocally be moved in a vertical direction (arrow mark D direction
in Fig. 7) by a moving mechanism 125B and the molten metal at inside of the crucible
119 may be cooled and stirred.
[0057] That is, the rotation drive source 122C is connected to a base end of the cooling
block 121C by way of a rotating shaft 123C and a coupler 124C made of a ceramic to
drive to rotate the cooling block 121C centering on the shaft 123C. The coupler 124C
made of a ceramic is provided to the rotation drive source 122C to be able to remove
the cooling block 121C centering on the rotating shaft 123C.
[0058] The moving mechanism 125B reciprocally moves the cooling block 121C and the rotation
drive source 122C in the arrow mark D direction of Fig.7.
[Descriptions of Reference Numerals and Signs]
[0059]
- 10
- supply apparatus
- 11, 11A, 11B, 119
- crucibles
- 12, 12A, 12B
- stirrers
- 13
- carry arm
- 14
- control apparatus
- 30
- molding apparatus
- 31
- injection sleeve
- 31A
- opening portion
- 32
- plunger
- 131
- gutter
- 122A, 122B, 122C
- rotation drive source
- 121A, 121B, 121C
- cooling block
- 123A
- a rotating shaft
- 124A, 124C
- a coupler
- 123A, 123B, 123C
- rotating shaft
- 124A, 124B
- coupler
- 125A, 125B
- moving mechanism
- 134
- front end portion of the gutter 131
- 31A
- opening portion of the injection sleeve 31
1. A supply method for a semi-solid metal for supplying the semi-solid metal to a molding
apparatus (30),
wherein said molding apparatus has an injection sleeve (31) formed with an opening
portion (31A) and a plunger (32) progressively/regressively provided at an inner portion
of the injection sleeve (31), the supply method comprising:
a first step of producing the semi-solid metal from a molten metal at an inner portion
of a crucible (11, 11A, 11B); and
a second step of supplying the semi-solid metal from the crucible (11, 11A, 11B) to
the inner portion of the injection sleeve (31) by inserting a gutter (131) provided
on a front end of the crucible (11, 11A, 11B) into the opening portion (31A) of the
injection sleeve (31) by an arbitrary angle and by supplying the semi-solid metal
from a front end (134) of the gutter (131) ;
wherein at the second step, the semi-solid metal is supplied to a side in a direction
of advancing the plunger (32) more than at the opening portion (31A).
2. The supply method according to Claim 1, wherein the gutter (131) is configured to
be attachable and detachable to and from the crucible (11, 11 A, 11B).
3. A supply apparatus (10) of a semi-solid metal for supplying the semi-solid metal to
a molding apparatus (30) having an injection sleeve (31) formed with an opening portion
(31A) and a plunger (32) progressively/regressively provided at an inner portion of
the injection sleeve (31),
the supply apparatus (10) comprising:
a crucible (11, 11A, 11B) for containing the semi-solid metal;
a gutter (131) capable of being connected to a front end of the crucible (11, 11A,
11B);
a carry arm (13) for grabbing and moving the crucible (11, 11 A, 11B); and
a controlling apparatus (14) for controlling the carry arm (13);
wherein the control apparatus (14) is capable of inserting a front end (134) of the
gutter (131) into the opening portion (31A) of the injection sleeve (31) by an arbitrary
angle and is capable of supplying the semi-solid metal from the front end (134) of
the gutter (131) into the injection sleeve (31) on a side in a direction of advancing
the plunger (32) more than at the opening portion (31A).
4. The supply apparatus (10) according to claim 3, wherein the carry arm (13) includes
a hand (136) for grabbing the crucible (11), wherein the gutter (131) is connected
to the crucible (11) when the crucible (11) is grabbed by the hand (136).
5. The supply apparatus (10) according to claim 4, wherein the gutter (131) is constituted
by a shape of a groove.
1. Zuführ-Verfahren für ein halb-festes Metall zum Zuführen des halb-festen Metalls an
ein Formgebungs-Gerät (30),
wobei das Formgebungs-Gerät eine Injektions-Hülse (31), welche mit einem Öffnungs-Bereich
(31A) ausgebildet ist, und einen Kolben (32) aufweist, welcher progressiv/regressiv
an einem inneren Bereich der Injektions-Hülse (31) angeordnet ist, das Zuführ-Verfahren
aufweisend:
einen ersten Schritt der Herstellung des halb-festen Metalls aus einem geschmolzenen
Metall an einem inneren Bereich eines Tiegels (11, 11A, 11B); und
einen zweiten Schritt des Zuführens des halb-festen Metalls von dem Tiegel (11, 11A,
11B) an den inneren Bereich der Injektions-Hülse (31) durch Einfügen einer Abflussrinne
(131), welche an einem vorderen Ende des Tiegels (11, 11A, 11B) angeordnet ist, in
den Öffnungs-Bereich (31A) der Injektions-Hülse (31) mit einem beliebigen Winkel und
durch Zuführen des halb-festen Metalls von einem vorderen Ende (134) der Abflussrinne
(131) ;
wobei in dem zweiten Schritt das halb-feste Metall zu einer Seite in eine Richtung
zugeführt wird, in der der Kolben (32) mehr als an dem Öffnungs-Bereich (31A) vorgerückt
wird.
2. Zuführ-Verfahren gemäß Anspruch 1,
wobei die Abflussrinne (131) ausgebildet ist um an dem Tiegel (11, 11A, 11B) anbringbar
und von dem Tiegel (11, 11A, 11B) abtrennbar zu sein.
3. Zuführ-Gerät (10) eines halb-festen Metalls zum Zuführen des halb-festen Metalls an
ein Formgebungs-Gerät (30) mit eine Injektions-Hülse (31), welche mit einem Öffnungs-Bereich
(31A) ausgebildet ist, und einen Kolben (32), welcher progressiv/regressiv an einem
inneren Bereich der Injektions-Hülse (31) angeordnet ist, das Zuführ-Gerät (10) aufweisend:
einen Tiegel (11, 11A, 11B) zum Enthalten des halb-festen Metalls;
eine Abflussrinne (131), welche fähig ist an ein vorderes Ende des Tiegels (11, 11A,
11B) verbunden zu werden;
einen Trag-Arm (13) zum Greifen und Bewegen des Tiegels (11, 11A, 11B); und
ein Steuer-Gerät (14) zum Steuern des Trag-Armes (13);
wobei das Steuer-Gerät (14) fähig ist ein vorderes Ende (134) der Abflussrinne (131)
in den Öffnungs-Bereich (31A) der Injektions-Hülse (31) mit einem beliebigen Winkel
einzuführen und fähig ist, das halb-feste Metall von dem vorderen Ende (134) der Abflussrinne
(131) in die Injektions-Hülse (31) an einer Seite in eine Richtung zu liefern, in
der der Kolben (32) mehr als an dem Öffnungs-Bereich (31A) vorgerückt wird.
4. Zuführ-Gerät (10) gemäß Anspruch 3,
wobei der Trag-Arm (13) eine Hand (136) zum Greifen des Tiegels (11) umfasst, wobei
die Abflussrinne (131) mit dem Tiegel (11) verbunden ist, wenn der Tiegel (11) von
der Hand (136) gegriffen wird.
5. Zuführ-Gerät (10) gemäß Anspruch 4,
wobei die Abflussrinne (131) durch aus einer Nut-Form besteht.
1. Procédé d'alimentation pour un métal semi-solide afin d'alimenter le métal semi-solide
à un appareil de moulage (30), dans lequel ledit appareil de moulage a un manchon
d'injection (31) formé avec une partie d'ouverture (31A) et un piston plongeur (32)
prévu de manière progressive / régressive au niveau d'une partie interne du manchon
d'injection (31), le procédé d'alimentation comprenant :
une première étape consistant à produire le métal semi-solide à partir d'un métal
en fusion au niveau d'une partie interne d'un creuset (11, 11A, 11B) ; et
une seconde étape consistant à alimenter le métal semi-solide à partir du creuset
(11, 11A, 11B) jusque dans la partie interne du manchon d'injection (31) en insérant
une goulotte (131) prévue sur une extrémité avant du creuset (11, 11A, 11B) dans la
partie d'ouverture (31A) du manchon d'injection (31) selon un angle arbitraire et
en alimentant le métal semi-solide à partir d'une extrémité avant (134) de la goulotte
(131) ;
dans lequel à la seconde étape, le métal semi-solide est alimenté davantage vers un
côté dans une direction d'avancement du piston plongeur (32) qu'au niveau de la partie
d'ouverture (31A).
2. Procédé d'alimentation selon la revendication 1, dans lequel la goulotte (131) est
configurée pour pouvoir être fixée et détachée au et du creuset (11, 11A, 11B).
3. Appareil d'alimentation (10) d'un métal semi-solide pour alimenter le métal semi-solide
à un appareil de moulage (30) ayant un manchon d'injection (31) formé avec une partie
d'ouverture (31A) et un piston plongeur (32) prévu de manière progressive / régressive
au niveau d'une partie interne du manchon d'injection (31),
l'appareil d'alimentation (10), comprenant :
un creuset (11, 11A, 11B) pour contenir le métal semi-solide ;
une goulotte (131) pouvant être raccordée à une extrémité avant du creuset (11, 11A,
11B) ;
un bras de transport (13) pour saisir et déplacer le creuset (11, 11A, 11B) ; et
un appareil de commande (14) pour commander le bras de transport (13) ;
dans lequel l'appareil de commande (14) peut insérer une extrémité avant (134) de
la goulotte (131) dans la partie d'ouverture (31A) du manchon d'injection (31) selon
un angle arbitraire et peut alimenter le métal semi-solide à partir de l'extrémité
avant (134) de la goulotte (131) dans le manchon d'injection (31) davantage vers un
côté dans une direction d'avancement du piston plongeur (32) qu'au niveau de la partie
d'ouverture (31A).
4. Appareil d'alimentation (10) selon la revendication 3, dans lequel le bras de transport
(13) comprend une poignée (136) pour saisir le creuset (11), dans lequel la goulotte
(131) est raccordée au creuset (11) lorsque le creuset (11) est saisi par la poignée
(136).
5. Appareil d'alimentation (10) selon la revendication 4, dans lequel la goulotte (131)
est constituée par une forme d'une rainure.