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EP 0 073 294 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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13.08.1986 Bulletin 1986/33 |
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Date of filing: 11.05.1982 |
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Method of manufacturing a shell mold
Verfahren zum Herstellen einer Schalenform
Procédé de fabrication d'un moule carapace
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Designated Contracting States: |
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DE FR GB IT |
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Priority: |
25.08.1981 JP 133096/81
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| (43) |
Date of publication of application: |
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09.03.1983 Bulletin 1983/10 |
| (71) |
Applicant: NIPPON KOKAN PIPE FITTING MFG. CO., LTD. |
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Osaka-fu (JP) |
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| (72) |
Inventor: |
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- Nagano, Shigefumi
Osada-fu (JP)
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| (74) |
Representative: Fleuchaus, Leo, Dipl.-Ing. et al |
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Patentanwälte
Schroeter-Fleuchaus- Lehmann & Gallo,
Melchiorstrasse 42 81479 München 81479 München (DE) |
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| |
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
[0001] The present invention relates to a method of manufacturing a shell mold as referred
to in the preamble of claim 1.
[0002] There is conventionally known a method of manufacturing a shell mold, in which a
preheated mold is charged with molding material, such as silica sand mixed with phenolic
resin as a caking agent, the molding material is solidified along the forming surface
of the mold, the mold is turned over to shake off the excessive molding material and
then heated to solidify the shell-shape molding material sticked to the mold, thereby
to form a shell, and the shell is finally taken out from the mold, whereby a shell
mold is produced.
[0003] According to such conventional manufacturing method, however, since the molding material
is heatingly solidified, it is required to use, as a mold, a metal mold which is expensive
and difficult to manufacture. Accordingly, such metal mold cannot be manufactured
in a short period of time, so that prompt action cannot be taken even if an order
is received. Furthermore, such expensive mold is not favorable in view of manufacturing
economical efficiency.
[0004] According to the conventional method, since there is used a metal mold having a high
coefficient of thermal expansion, the expansion and/or contraction of the metal mold
reduce the dimensional precision of a shell mold, and energy consumption is disadvantageously
increased.
[0005] Such conventional method requires operations in a high temperature and produces a
great quantity of gas, thus causing trouble in view of environmental sanitation.
[0006] According to such conventional method, since molding material is merely put in a
metal mold and sticked thereto in the shell shape, such solidified molding material
in the shell shape is not so dense. Therefore, when the metal mold is turned over,
peal-back easily takes place.
[0007] Furthermore, uneven thickness of the metal mold results in uneven heat capacity thereof,
which easily causes the shell thickness to become uneven.
[0008] According to such conventional method, the molding material is limited to phenolic
resin or the like, which can be heatingly solidified, with a narrow range of choice
as to a caking agent. Thus, the use of expensive molding material is unavoidable.
[0009] A method of manufacturing a shell mold of the type referred to in the preamble of
claim 1 is known by AT―B―338448, which describes a mold, having a predetermined forming
surface, against which sheet material is pressingly held by negative pressure. As
soon as the sheet material is firmly held at the forming surface a special flask is
placed on top of it and covered by an additional cover sheet. A suction box surrounding
the flask is used to hold the forming material and the sheet material in place. After
the flask has been turned upside down the sheet material is dissolved and afterwards
solidified to finish the shell mold. This method is very complicated and expensive,
since it needs two suction boxes and a large amount of forming material as well as
a sheet material soluble in a solvent. The forming material has to be solidified along
the sheet material in a rather particular process.
[0010] It is an object of the present invention to provide a method of manufacturing a shell
mold in which molding material can be solidified in a cold or warm atmosphere, without
the necessity of heating a mold to a high temperature and without the need of a large
amount of molding material. The shell mold should be suitable for. a convenient use
of a wooden, gypsum or resin mold, which are more economical than a metal mold and
capable of being easily manufactured in a short period of time even if its shape is
complicated, thus enabling to economically manufacture a shell mold in prompt response
to an order received.
[0011] The problem of the invention is solved by the measures set out in the characterizing
portion of claim 1.
[0012] The method of the invention advantageously provides a shell mold in which a mold
is not deformed, i.e., expanded and contracted around solidification of molding material
due to heat, therefore precision of the shell mold is greatly improved. Thereby a
shell mold can be formed which has a substantial uniform thickness without the occurrence
of any peel-back.
[0013] The present invention will be further described, by way of example, with reference
to the accompanying drawings, in which:
Fig. 1 is a section view of a first step of the present invention, illustrating molding
material put on an elastic member horizontally held under a mold;
Fig. 2 is a section view of a second step of the present invention, illustrating the
molding material pressingly held and formed into a shell shape by the mold and the
elastic member, with a negative pressure provided therebetween;
Fig. 3 is a section view of a third step of the present invention, illustrating the
molding material solidified after the mold has been turned over;
Fig. 4 is a section view of a fourth step of the present invention, illustrating the
shell taken out from the mold;
Fig. 5 is an enlarged section view of main portions in Fig. 1; and
Fig. 6 is an enlarged section view of main portions taken along the line VI-VI in
Fig. 1.
[0014] The description hereinafter will discuss in detail a method of manufacturing a shell
mold, with reference to the accompanying drawings.
[0015] As shown in Fig. 1, horizontally held under a mold 1 is an elastic member in the
sheet or film form, for example a vinyl sheet 2. Fire-resisting granular molding material
3 is suitably put on this vinyl sheet 2.
[0016] The mold 1 comprises a hollow suction box 4 having an air intake port 4a connected
to a suction means such as a vacuum pump (not shown), a pattern plate 5 having a pattern
5a of predetermined shape and disposed below the suction box 4, and an outer frame
6 surrounding the circumference of the pattern plate 5. The pattern plate 5 has therein
a suitable number of suction holes 7 which open in the forming surface 5b of the pattern
plate 5 and communicate with the inside of the suction box 4. As shown in Fig. 5,
each of the suction holes 7 has a filter 8 made of a net member or the like to prevent
the molding material from entering into the hole 7.
[0017] As shown in Fig. 6, the outer frame 6 has in the entire lower periphery thereof a
suction groove 9a and a suitable number of air holes 9b which open in the suction
groove 9a and communicate with the inside of the suction box 4.
[0018] The vinyl sheet 2 has a circumference suitably larger than that of the outer frame
6 of the mold 1. The molding material 3 is put on the vinyl sheet 2 at the center
portion thereof such that the circumference of the molding material 3 put on the vinyl
sheet 2 is suitably smaller than the inner circumference of the outer frame 6. The
molding material 3 put on the vinyl sheet 2 has a substantially uniform thickness.
[0019] The molding material 3 is constituted by silica sand to which 2 to 7% of sodium silicate
is added as a caking agent. Such molding material 3 is adapted to be solidified by
passing carbonic acid gas through the molding material 3 in an ambient temperature.
As necessary, facing sand 3a may be put on the surface of the molding material 3 in
order to obtain a good mold surface, as shown in Fig. 1
[0020] From the state shown in Fig. 1, the mold 1 is lowered such that the lower end of
the outer frame 6 of the mold 1 comes in contact with that peripheral portion 2a of
the vinyl sheet 2 on which the molding material 3 is not put. The pressure in the
suction box 4 is reduced by operating the suction means (not shown) connected to the
air intake port 4.
[0021] When the inside of the suction box 4 is thus sucked so that the pressure therein
is reduced, as shown in Fig. 2 the peripheral portion 2a of the vinyl sheet 2 is held
against the lower end of the outer frame 6 by a suction force acting on the suction
groove 9a through the air holes 9b. A negative pressure is then produced in the space
surrounded by the vinyl sheet 2 and the mold 1, through the suction holes 7. Thus,
the molding material 3 is formed into a shell shape along the forming surface 5b of
the mold 1. Namely, since a negative pressure is produced at the side of the molding
material 3 on the vinyl sheet 2, the vinyl sheet 2 is extendingly pressed toward the
forming surface 5b by the outside pressure. The molding material 3 is then pressingly
held and formed by the mold 1 and the vinyl sheet 2 as shown in Fig. 2. In this step,
the molding material 3 is compressingly formed into a shell shape having a substantially
uniform thickness along the forming surface 5b.
[0022] With the molding material 3 maintained as it is, the mold 1 is turned over as shown
in Fig. 3. Carbonic acid gas then passes through the molding material 3 by a suitable
means. At this time, a shock or vibration may be applied to the molding material 3
by a vibrator or the like (not shown) such that the molding material 3 is further
uniformly or evenly distributed.
[0023] When carbonic acid gas passes through the molding material 3, sodium silicate in
the molding material 3 reacts to the carbonic acid gas to produce silica gel, thereby
to solidify the molding material 3 to form a shell. Such solidification is generally
called a C0
2 process.
[0024] As shown in Fig. 4, the shell is taken out from the mold 1 by a suitable means (not
shown) and the vinyl sheet 2 is taken off from the shell, so that a desired shell
mold 3' is obtained. It is to be noted that the vinyl sheet 2 may be taken off before
carbonic acid gas passes through the molding material 3.
[0025] According to such method of manufacturing a shell mold, the molding material 3 is
solidified as pressingly held and formed into a shell shape along the forming surface
5b, by the mold 1 and the vinyl sheet 2. Such solidification is made according to
the C0
2 process above-mentioned which requires no heating step. This eliminates the necessity
of using an expensive metal mold difficult to manufacture, as the mold 1 and in particular
the pattern 5a of complicated shape. That is, there may be used an economical wooden,
gypsum or resin mold easy to manufacture.
[0026] Accordingly, the mold 1 may be economically manufactured in a short period of time,
thus presenting an advantage that a prompt action can be taken when an order is received.
[0027] According to the present invention, since it is not required to heat the mold 1,
the mold 1 is not deformed, i.e., neither expanded nor contracted. Thus, precision
of the shell mold 3' may be greatly improved.
[0028] As shown in the embodiment discussed hereinbefore, with the use of the facing sand
3a, the mold surface 3'a of the shell mold 3' may be made fine, thereby to improve
the mold surface.
[0029] Besides the C0
2 process, solidification of the molding material 3 may be made according to various
methods to be applied in an ambient temperature, such as a cold box process. In such
a case, besides sodium silicate, there may be suitably used other inorganic or organic
caking agents.
[0030] According to another embodiment of the present invention, molding material formed
by silica sand mixed with 2 to 7% of sodium silicate or 1 to 3% of a water solution
of starch is pressingly held and formed into a shell shape in the same manner as above-mentioned.
[0031] Blown to the molding material is air which is warm to such extent as not to thermally
impair the mold. Thus, moisture contained in the molding material is evaporated to
solidify the molding material.
[0032] In order to accelerate solidification of the molding material 3, the mold 1 may be
heated within limits not thermally prejudiciary to the mold 1. Namely, the molding
material 3 may be solidified by suitable means either in a cold atmosphere or a warm
atmosphere, dependent on the characteristics of the mold 1. However, it is a matter
of course that the foregoing does not prohibit the use of a metal mold.
[0033] According to the present invention, with the molding material 3 pressingly held and
formed into a shell by the mold 1 and the vinyl sheet 2, the mold 1 is turned over
and the molding material 3 is solidified. Therefore, a dense shell having a uniform
thickness may be formed and no peel-back takes place.
[0034] According to the present invention, the molding material 3 is not required to be
heated to a high temperature, but may be solidified in a cold or warm atmosphere.
Therefore, gas is not generated, or even if generated, the amount is extremely small,
and no operations in a high temperature are required, thus presenting an advantage
in view of environmental sanitation. Even if gas should be generated, such gas may
be quickly eliminated from the air intake port 4a of the suction box 4 through the
suction holes 7.
[0035] While the vinyl sheet 2 is used as the elastic member in the embodiment discussed
hereinbefore, an elastic sheet or film for example a rubber sheet may also be used.
[0036] It is not necessarily required to hold the elastic member 2 such as a vinyl sheet
in a horizontal manner as shown in Fig. 1, but it is merely required to hold the elastic
member 2 such that the molding material 3 put thereon does not flow down.
[0037] The molding material 3 is not limited to silica sand mixed with sodium silicate or
a water solution of starch to be solidified according to the C0
2 process or the like, but can be suitably selected dependent on a selected solidification
process.
[0038] The number of the pattern plates is not limited to one as done in the embodiment
shown in Fig. 1, but a plurality of pattern plates may be disposed.
'Thus, various kinds of shell molds can be conveniently manufactured at the same time.
[0039] Although in the embodiment discussed hereinbefore, the molding material 3 is solidified
after the mold 1 has been turned over, the molding material may be solidified in the
step shown in Fig. 2 before the mold 1 is turned over.
[0040] In order to facilitate the removal of the shell mold 3' from the mold 1, a shell
removing agent may be suitably applied to the forming surface 5b of the mold 1.
1. A method of manufacturing a shell mold comprising the steps of:
approaching a mold (1) having a predetermined forming surface (5b) towards said mold
material (3) with a film or sheet member (2);
providing a negative pressure in a space between said mold (1) and said member (2),
thereby to pressingly hold and form that molding material (3) along said forming surface
(5b)
solidifying said molding material (3) according to a suitable process and taking it
out from that mold;
characterized in that
said member (2) in the sheet of film form is an elastic member;
said molding material (3) is put on said elastic member (2) such that is has a suitable
thickness;
the mold (1) is approached towards the molding material (3) from above and the peripheral
portion (2a) of the elastic member (2) is held against the mold (1) by said negative
pressure;
and the totality of said molding material (3) and said elastic member (2) are deformed
to a shell shape (3') along the forming surface (5b).
2. The method of manufacturing a shell mold as set forth in Claim 1, wherein the molding
material (3) is solidified in a cold or warm atmosphere according to the C02 process or the cold box process.
3. The method of manufacturing a shell mold as set forth in Claim 1, wherein there
is used molding material (3) of silica sand mixed with a small amount of sodium silicate
as a caking agent, and said molding material (3) is solidified by passing carbonic
acid gas through said molding material (3).
4. The method of manufacturing a shell mold as set forth in Claim 1, wherein there
is used molding material (3) of silica sand mixed with a small amount of sodium silicate
as a caking agent, and after pressingly formed into a shell shape (3'), said molding
material (3) is solidified by blowing a warm air into said molding material (3).
5. The method of manufacturing a shell mold as set forth in Claim 1, wherein there
is used molding material (3) of silica sand mixed with a small amount of a water solution
of starch as a caking agent, and after pressingly formed into a shell shape (3'),
said molding material (3) is solidified by blowing a warm air into said molding material
(3).
6. The method of manufacturing a shell mold as set forth in Claim 1, wherein facing
sand (3a) is put on the surface of the molding material (3) which is put on the elastic
member (2), said facing sand (3a) having a substantially uniform thickness.
7. The method of manufacturing a shell mold as set forth in Claim 1, wherein the mold
comprises a hollow suction box (4) having -an air intake port (4a) connected to suction
means such as a vacuum pump, a pattern plate (5) having a pattern (5a) formed into
a predetermined shape and disposed below said suction box (4), and an outer frame
(6) surrounding the circumference of said pattern plate (5) below said suction box
(4).
8. The method of manufacturing a shell mold as set forth in Claim 7, wherein there
is used the mold (1) in which the pattern plate (5) has therein a plurality of suction
holes (7) which open into the. forming surface and communicate with the inside of
the suction box (4).
9. The method of manufacturing a shell mold as set forth in Claim 8, wherein there
is used the mold (1) in which each of the pattern plate suction holes (7) has a filter
(8) capable of preventing the molding material (3) from entering into said each hole.
10. The method of manufacturing a shell mold as set forth in Claim 9, wherein there
is used the mold (1) in which the outer frame (6) has in the peripheral lower end
thereof a suction groove (9a) and a plurality of air holes (9b) which open into said
suction groove (9a) and communicate with the inside of the suction box (4).
11. The method of manufacturing a shell mold as set forth in Claim 7, wherein the
mold (1) has a plurality of pattern plates (5).
12. The method of manufacturing a shell mold as set forth in Claim 1, wherein a vinyl
sheet is used as the elastic member (2).
13. The method of manufacturing a shell mold as set forth in Claim 10 or 12, wherein
the elastic member (2) has an outer circumference (2a) larger than that of the outer
frame of the mold.
14. The method of manufacturing a shell mold as set forth in Claim 13, wherein the
molding material (3) is put on the elastic member (2) at the center thereof within
an area smaller than the inner circumference of the outer frame (6) of the mold, said
molding material having a substantially uniform thickness.
15. The method of manufacturing a shell mold as set forth in Claim 14, wherein the
elastic member (2) is held horizontally or substantially horizontally.
16. The method of manufacturing a shell mold as set forth in Claim 1, wherein the
mold (1) is turned over before the molding material (3) is solidified.
17. The method of manufacturing a shell mold as set forth in Claim 16, wherein a shock
or vibration is applied to the molding material (3) before said molding material (3)
is solidified.
18. The method of manufacturing a shell mold as set forth in Claim 1, wherein the
elastic member (2) is taken off after the molding material (3) has been solidified.
19. The method of manufacturing a shell mold as set forth in Claim 2, wherein a wooden,
gypsum or resin mold other than a metal mold is used as the mold (1).
20. The method of manufacturing a shell mold as set forth in Claim 1, wherein a suitable
shell removing agent is applied to the forming surface of the mold.
1. Ein Verfahren zur Herstellung einer Schalenform mit den Verfahrensschritten:
Annähern einer Form (1) mit einer vorbestimmten Formoberfläche (5b) an das genannte
Formmaterial (3) mit einem Schicht- oder Blattelement (2);
Anlegen eines negativen Drucks in einem Gebiet zwischen der genannten Form (1) und
dem genannten Element (2), um so das Formmaterial (3) fest gegen die genannte Formoberfläche
(5b) zu pressen und zu formen;
Erstarrenlassen des genannten Formmaterials (3) und aus der Form entnehmen;
dadurch gekennzeichnet,
daß das genannte Element (2) in Form eines Blattes oder einer Schicht ein elastisches
Element ist;
daß das genannte Formmaterial (3) auf das genannte elastische Element (2) so aufgebracht
wird, daß es eine geeignete Dicke aufweist;
daß die Form (1) von oben an das Formmaterial (3) angenähert wird und der Randteil
(2a) des elastischen Elements (2) durch den genannten negativen Druck gegen die Form
(1) gehalten wird;
und daß die Gesamtheit des genannten Formmaterials (3) und des genannten elastischen
Elements (2) längs der Formoberfläche (5b) in eine Schalenform gebracht werden.
2. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem das Formmaterial
(3) in einer kalten oder warmen Atmosphäre zu Erstarren gebracht wird, entsprechend
dem C02 Verfahren oder dem Kalten-Behälter-Verfahren (cold box).
3. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem Formmaterial
(3) aus Siliciumdioxidsand verwendet wird, der mit einer geringen Menge von Natriumsilicat
als Bindemittel gemischt ist und das genannte Formmaterial (3) zum Erstarren gebracht
wird, indem Kohlendioxidgas durch das genannte Formmaterial (3) geschickt wird.
4. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem Formmaterial
(3) aus Siliciumdioxidsand verwendet wird, der mit einer geringen Menge von Natriumsilicat
als Bindemittel gemischt ist und bei dem das genannte Formmaterial (3) nach einer
Preßformung in eine Schalenform (3') zum Erstarren gebracht wird, indem warme Luft
in das genannte Formmaterial (3) geblasen wird.
5. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem Formmaterial
(3) aus Siliciumdioxidsand verwendet wird, der mit einer geringen Menge einer wässrigen
Stärkelösung als Bindemittel gemischt ist und bei dem das genannte Formmaterial (3)
nach Preßformung in eine Schalenform (3') zum Erstarren gebracht wird, indem warme
Luft in das genannte Formmaterials (3) geblasen wird.
6. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem Formsand (3a)
auf die Oberfläche des auf das elastische Element (2) gegebenen Formmaterials (3)
gegeben wird, wobei der Formsand (3a) eine im wesentlichen gleichförmige Dicke aufweist.
7. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem die Form ein
hohles Sauggehäuse (4) aufweist, das eine Luftzufuhr- öffnung (4a) enthält, die mit
Saugvorrichtungen wie z. B. einer Vakuumpumpe verbunden ist, eine Musterplatte (5)
mit einem Muster, das in eine verbestimmte Gestalt geformt ist und unter dem genannten
Sauggehäuse (4) angeordnet ist, und einen äußeren Rahmen (6), der den Umfang der genannten
Musterplatte (5) unter dem genannten Sauggehäuse (4) umgibt.
8. Das Herstellverfahren für eine Schalenform nach Anspruch 7, bei dem die Form (1)
verwendet wird, in der die Musterplatte (5) eine Vielzahl von Sauglöchern (7) aufweist,
die sich in die Formoberfläche erstrecken und mit dem Inneren des Sauggehäuses (4)
in Verbindung stehen.
9. Das Herstellverfahren für eine Schalenform nach Anspruch 8, bei dem die Form (1)
verwendet wird, in der jedes der Sauglöcher (7) in der Musterplatte einen Filter (8)
aufweist, der verhindern kann, daß das Formmaterial (3) in jedes der genannten Löcher
eintritt.
10. Das Herstellverfahren für eine Schalenform nach Anspruch 9, bei dem die Form (1)
verwendet wird, in der der äußere Rahmen (6) in seinem äußeren unteren Ende eine Saugrille
(9a) und eine Vielzahl von Luftlöchern (9b) aufweist, die sich in die genannte Saugrille
(9a) öffnen und mit dem Inneren des Sauggehäuses (4) in Verbindung stehen.
11. Das Herstellverfahren für eine Schalenform nach Anspruch 7, bei dem die Form (1)
eine Vielzahl von Musterplatten (5) aufweist.
12. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem ein Vinylblatt
als elastisches Element (2) verwendet wird.
13. Das Herstellverfahren für eine Schalenform nach Anspruch 10 oder 12, bei dem das
elastische Element (2) einen äußeren Umfang (2a) aufweist, der größer ist als der
des äußeren Rahmens der Form.
14. Das Herstellverfahren für eine Schalenform nach Anspruch 13, bei dem das Formmaterial
(3) auf das elastische Element (2) in dessen Mitte innerhalb eines Gebiets aufgebracht
wird, das kleiner ist als der innere Umfang des äußeren Rahmens (6) der Form, wobei
das Formmaterial eine im wesentlichen gleichförmige Dicke aufweist.
15. Das Herstellverfahren für eine Schalenform nach Anspruch 14, bei dem das elastische
Element (2) horizontal oder im wesentlichen horizontal gehalten wird.
16. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem die Form (1)
umgedreht wird, bevor das Formmaterial (3) erstarrt ist.
17. Das Herstellverfahren für eine Schalenform nach Anspruch 16, bei dem ein Stoß
oder eine Vibration auf das das Formmaterial (3) ausgeübt wird, bevor das genannte
Formmaterials (3) erstarrt ist.
18. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem das elastische
Element (2) abgenommen wird, nachdem das Formmaterial (3) erstarrt ist.
19. Das Herstellverfahren für eine Schalenform nach Anspruch 2, bei dem als Form (1)
eine aus Holz, Gips oder Harz bestehende Form statt einer Metallform verwendet wird.
20. Das Herstellverfahren für eine Schalenform nach Anspruch 1, bei dem auf die Formoberfläche
der Form ein geeignetes Mittel zur Entfernung der Schale aufgebracht wird.
1. Procédé de fabrication d'un moule carapace comprenant les opérations consistant
à approcher un moule (1) comportant une surface en forme prédéterminée (5b) d'une
matière à mouler (3) avec un organe en forme de feuille ou de pellicule (2), à créer
une pression négative dans un espace compris entre le moule (1) et l'organe (2) pour
maintenir et mettre en forme par pression la matière à mouler (3) contre la surface
en forme (5b), à solidifier la matière à mouler (3) par un procédé approprié et à
la sortir du moule, caractérisé en ce que l'organe (2) en forme de feuille ou de pellicule
est un organe élastique, que la matière à mouler (3) est déposée sur ledit organe
élasque (2) de telle façon qu'elle ait une épaisseur appropriée, que le moule (1)
est approché de la matière à mouler (3) par le haut, que la partie périphérique (2a)
de l'organe élastique (2) est maintenue contre le moule (1) par ladite pression négative,
et que la totalité de la matière à mouler (3) et de l'organe élastique (2) sont déformés
pour leur donner la forme d'une carapace (3') épousant la forme de la surface en forme
(5b).
2. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que la matière à mouler (3) est solidifiée dans une atmosphère froide ou chaude
par le procédé au C02 ou le procédé à boîte froide.
3. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que la matière à mouler (3) est du sable siliceux mélangé à une petite quantité
de silicate de soude servant d'agent agglomérant et que ladite matière à mouler est
solidifiée en y faisant passer du gaz carbonique.
4. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que la matière à mouler (3) est du sable siliceux mélangé à une petite quantité
de silicate de soude servant d'agent agglomérant et qu'après avoir été mise sous la
forme d'une carapace (3') par application d'une pression, ladite matière à mouler
est solidifiée en y faisant passer de l'air chaud.
5. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que la matière à mouler (3) utilisée est du sable siliceux mélangé à une petite
quantité d'une solution aqueuse d'amidon servant d'agent agglomérant et qu'après avoir
été mise sous la forme d'une carapace (3') par application d'une pression, ladite
matière à mouler est solidifiée en y faisant passer de l'air chaud.
6. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que du sable pour couche de contact (3a) est déposé sur la surface de la matière
à mouler (3) déposée elle-même sur l'organe élastique (2), ladite couche de sable
de contact ayant une épaisseur pratiquement uniforme.
7. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que le moule (1) comprend une boîte à dépression (4) munie d'un raccord d'aspiration
(4a) raccordé à un moyen d'aspiration tel qu'une pompe à vide, une plaque modèle (5a)
de forme prédéterminée et disposée sous ladite boîte à dépression et un cadre extérieur
(6) entourant la périphérie de ladite plaque modèle sous la boîte à dépression.
8. Procédé de fabrication d'un moule carapace selon la revendication 7, caractérisé
en ce que le moule (1) et la plaque modèle (5) comportent un certain nombre de trous
d'aspiration (7) qui débouchent dans la surface en forme (5a) à une extrémité et dans
la boîte à dépression (4) à l'autre extrémité.
9. Procédé de fabrication d'un moule carapace selon la revendication 8, caractérisé
en ce que chacun des trous d'aspiration (7) de la plaque modèle (5) montée dans le
moule (1) est muni d'un filtre (8) pour empêcher la matière à mouler (3) de pénétrer
dans ce trou.
10. Procédé de fabrication d'un moule carapace selon la revendication 9, caractérisé
en ce que le cadre extérieur (6) du moule (1) comporte une gorge d'aspiration (9a)
à sa partie périphérique inférieure et un certain nombre de trous de passage d'air
(9b) qui débouchent dans ladite gorge à une extrémité et dans la boîte à dépression
(4) à l'autre extrémité.
11. Procédé de fabrication d'un moule carapace selon la revendication 7, caractérisé
en ce que le moule (1) porte un certain nombre de plaques modèle (5).
12. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que l'organe élastique (2) est une feuille de vinyle.
13. Procédé de fabrication d'un moule carapace selon la revendication 10 ou 12, caractérisé
en ce que l'organe élastique (2) a une périphérie (2a) plus grande que celle du cadre
extérieur (6) du moule (1).
14. Procédé de fabrication d'un moule carapace selon la revendication 13, caractérisé
en ce que la matière à mouler (3) est déposée sur l'organe élastique (2), au centre
de celui-ci, dans une zone plus petite que la périphérie intérieure du cadre extérieur
(6) du moule (1), ladite matière à mouler formant une couche d'épaisseur pratiquement
uniforme.
15. Procédé de fabrication d'un moule carapace selon la revendication 14, caractérisé
en ce que l'organe élastique (2) est maintenu horizontal ou presque horizontal.
16. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que le moule (1) est retourné avant que la matière à mouler (3) soit solidifiée.
17. Procédé de fabrication d'un moule carapace selon la revendication 16, caractérisé
en ce que des chocs ou des vibrations sont appliqués à la matière à mouler (3) avant
qu'elle soit solidifiée.
18. Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce que l'organe élastique (2) est enlevé après que la matière à mouler (3) ait
été solidifiée.
19. Procédé de fabrication d'un moule carapace selon la revendication 2, caractérisé
en ce que le moule (1) est un moule en bois, en plâtre ou en résine ou un autre moule
non métallique.
20 Procédé de fabrication d'un moule carapace selon la revendication 1, caractérisé
en ce qu'un agent de démoulage approprié est appliqué sur la surface en forme (5b)
du moule (1).

