This application is a U.S. National Phase Application under 35 U.S.C. 371 of International Application No. PCT/JP2014/057654, filed on Mar. 20, 2014 and published in Japanese as WO 2014/156917A1 on Oct. 2, 2014. This application claims priority to Japanese Patent Application No. 2013-063786, filed on Mar. 26, 2013. The entire disclosures of the above applications are incorporated herein by reference.
Field of the Invention
The present invention relates to a molding apparatus for molding a sealing part, for example, a gasket of a fuel battery cell.
Description of the Conventional Art
In molding of a substrate integrated type gasket, a gasket integrated with a substrate is obtained by setting the substrate in a metal mold, injecting a molding material constructed by a rubber composition into a metal mold cavity, and thermally curing the molding material within the cavity. Particularly, as a method of molding a gasket for a fuel battery cell, there is employed a cold runner type liquid injection molding (LIM) molding apparatus which uses a liquid rubber having a low viscosity as a molding material.
According to this kind of cold runner type LIM molding apparatus, since the liquid rubber is not cured within the cold runner, it is possible to reduce a consumed amount of the material so as to achieve a cost saving. As a typical prior art of the cold runner type LIM molding method, there is a method disclosed in Japanese Unexamined Patent Publication No. 11-34126.
However, according to the conventional cold runner type LIM molding apparatus, after the molding material within the cavity is cured by the heat of the fixed metal mold and the movable metal mold, it is necessary to remove cured material (burr) of the liquid rubber by cleaning a lower surface of the movable metal mold provided with a gate, after opening the mold and taking out a product. As a result, it has been hard to shorten a molding cycle.
The present invention is made by taking the point mentioned above into consideration, and a technical object of the present invention is to achieve a cost saving by reducing a metal mold cleaning step after mold releasing the product so as to achieve shortening of a molding cycle.
As a means for effectively solving the technical object mentioned above, a molding apparatus according to the invention of a first aspect is provided with plural sets of fixed metal molds and movable metal molds which are heated to a necessary temperature for curing a molding material and are got together by mold clamping so as to define a cavity, a non-heated cold runner which supplies the molding material from an injection device into the cavity via a gate provided in the movable metal mold, an injection stage in which the injection device and the cold runner exist, and a mold opening stage which is in the vicinity of the injection stage and opens the fixed metal mold and the movable metal mold, wherein the fixed metal molds and the movable metal molds are movable between the injection stage and the mold opening stage.
When molding by the molding apparatus having the structure mentioned above, the fixed metal molds and the movable metal molds are clamped first of all in the injection stage, and the molding material from the injection device is supplied into the cavity defined between the meeting surfaces of the fixed metal molds and the movable metal molds via the cold runner and the gate. Since the cold runner is not heated, the molding material from the injection device is filled into the cavity without being cured by the cold runner.
After the molding material within the cavity is cured by the heat of the fixed metal molds and the movable metal molds, the fixed metal molds and the movable metal molds are moved to the mold opening stage so as to open the mold, and the product is taken out. Further, burr generated by the curing of the molding material by the heat of the movable metal mold is removed within the gate of the movable metal molds is removed. Since the work for taking out the product and removing the burr from the gate after the mold opening is carried out in the mold opening state in place of the injection stage, it is possible to carry out a molding step of clamping the other fixed metal mold and the movable metal mold and supplying the molding material from the injection device so as to cure, in the injection stage.
A molding apparatus according to the invention of a second aspect is the structure described in the first aspect, wherein the cold runner is provided with an inlet valve which can operate so as to open and close from an external portion.
According to the molding apparatus having the structure mentioned above, the uncured material within the cold runner can be prevented from flowing down, by closing the inlet valve when the movable metal mold (the gate) is separated from the cold runner together with the mold opening. Further, the molding material can be supplied into the cavity by opening the inlet valve after the mold clamping.
According to the molding apparatus of the present invention, since the burr from the gate of the movable metal mold is removed in the mold opening stage in the outer side of the injection stage, a cleaning step of the metal mold is not necessary in the injection stage, and it is possible to shorten the molding step.
A description will be in detail given below of a preferable embodiment of a molding apparatus according to the present invention with reference to the accompanying drawings.
The molding apparatus is a cold runner type liquid injection molding (LIM) apparatus molding a fuel battery cell gasket 6 which is integrally provided with a seal portion 62 made of a rubber-like elastic material (a rubber material or a synthetic resin material having a rubber-like elasticity) in a separator 61 of a fuel battery cell, for example, as shown in
Further, although an illustration is omitted, the molding apparatus is equipped with a mold clamping device for carrying out a mold opening and mold closing motion of the movable metal mold 2 in relation to the fixed metal mold 1, a drive unit for carrying out an upward and downward moving motion of the cold metal mold member 3 and the injection device 4, a loading device for setting an insert part (a substrate 61′ in this embodiment) to the fixed metal mold 1, a product mold releasing device, a burr removing device and a control device controlling these motions.
Describing in detail, the fixed metal mold 1 is fixed on the turn table 5, and is heated to a necessary temperature for crosslinking and curing the liquid rubber, and a plurality of concave portions 11 in which the substrates 61′ forming separators 61 of the fuel battery cell gaskets 6 shown in
The movable metal mold 2 is arranged so as to be movable up and down in relation to the upper surface of the fixed metal mold 1 by the mold clamping device (not shown), and is heated to a necessary temperature for crosslinking and curing the liquid rubber in the same manner as the fixed metal mold 1, and groove-like concave portions 21 defining the cavities C are formed in a lower surface of the movable metal mold 2. The cavity is a shape forming space for molding the seal portion 62 of the fuel battery cell gasket 6 shown in
As shown in
The cold metal mold member 3 is not heated, is thermally insulated at a temperature that the liquid rubber corresponding to the molding material is not crosslinked and cured, and is movable up and down by a drive unit (not shown). The cold runner 31 formed while passing through the cold metal mold member 3 is structured such that an upper end is formed as a sprue 31a and inlet valves 32 are provided respectively in downstream portions which extend while branching into a plurality of sections. The inlet valve 32 is structured such that a valve gate in a downstream end which can be operated to be opened and closed from an external portion can be connected to the gate 22 of the movable metal mold 2. Further, a heat insulating board 33 for preventing heat transmission from the movable metal mold 2 is provided in a lower surface portion of the cold metal mold member 3.
The injection device 4 has an injection nozzle 41 which has a plunger build-in, can come into close contact and collision (nozzle touch) with the sprue 31a in the upper surface of the cold metal mold member 3 in its leading end, and is structured such as to inject the liquid rubber to each of the cavities C through the cold runner 31, the inlet valve 32 and the gate 22 on the basis of a motion of the plunger in a close contact and collision state between the leading end of the injection nozzle 41 and the sprue 31a.
The turn table 5 can turn around a vertical center axis ◯, and plural sets of fixed metal molds 1 and movable metal molds 2 are installed on the turn table 5. The plural sets of fixed metal molds 1 and movable metal molds 2 are moved by the rotation of the turn table 5 between an injection stage S1 which is just below the injection device 4 and the cold metal mold member 3, and a mold opening stage S2 which is provided at a position rotationally moving at a predetermined angle around the center axis ◯ from the injection stage S1 and for loading the substrate 61′ to the concave portion 11 on the upper surface of the fixed metal mold 1 and taking out the product. Further, in the case that one certain set of fixed metal mold 1 and movable metal mold 2 are in the injection stage S1, the other set of fixed metal mold 1 and movable metal mold 2 are positioned in the mold opening stage S2.
Next, a description will be given of a molding cycle executed by the molding apparatus having the structure mentioned above. First of all, as shown in
Next, as shown in
Next, as shown in
Next, the valve gate of the inlet valve 32 is opened, and the liquid rubber corresponding to the molding material is injected from the injection nozzle 41 on the basis of an injecting motion of the injection device 4 which is brought into close contact and collision with the sprue 31a on the upper surface of the cold metal mold member 3. Further, since the cold metal mold member 3 is thermally insulated at the temperature that the liquid rubber does not crosslink and cure, the liquid rubber injected from the injection nozzle 41 is fed to the cavity C from the cold runner 31 through the inlet valve 32 and the gate 22 without crosslinking and curing, as shown in
It is preferable to employ a material which generates a self-adhesiveness in relation to the substrate 61′ by crosslinking and curing for the liquid rubber corresponding to the molding material, however, in the case that a liquid rubber having no self-adhesiveness is employed, an adhesive agent is previously applied to the surface of the substrate 61′.
Further, a portion L blacked out in
When the filling of the liquid rubber in the cavity C is finished, the valve gate in the downstream end of the inlet valve 32 is closed. As a result, the liquid rubber within the cavity C is kept at a predetermined pressure.
The liquid rubber within the cavity C is crosslinked and cured by the heat of the fixed metal mold 1 and the movable metal mold 2, is molded as the seal portion 62 having the shape corresponding to the cavity C, and is integrated (vulcanization bonded) with the upper surface of the substrate 61′ (the separator 61) on the fixed metal mold 1. The liquid rubber within the gate 22 open to the cavity C is crosslinked and cured by the heat of the movable metal mold 2 and forms a burr 63 which is continuously provided in the seal portion 62. On the other hand, since the cold metal mold member 3 is thermally insulated at the temperature that the liquid rubber does not crosslink and cure, and the heat from the movable metal mold 2 is insulated by the heat insulating board 33, the liquid rubber left within the cold runner 31 does not crosslink and cure, and is filled in the cavity C at the next shot time.
When a necessary time for crosslinking and curing the liquid rubber within the cavity C has passed, the cold metal mold member 3 is moved up by the drive unit (not shown) as shown in
Next, the fixed metal mold 1 and the movable metal mold 2 are transferred from the injection stage S1 just below the injection device 4 and the cold metal mold member 3 to the mold opening stage S2 shown in
Further, the fuel battery cell gasket 6 corresponding to the product is taken out of the fixed metal mold 1 by a product mold releasing device (not shown) as shown in
Since the product take-out step and the burr removing step are carried out in the mold opening stage S2 as mentioned above, a metal mold cleaning step in the injection stage S1 is not necessary. As shown in
Further, only the burr generated within the gate 22 of the movable metal mold 2 is removed after the molding, and the liquid rubber left within the cold runner 31 is not cured, and is filled in the cavity C at the next shot time. As a result, waste of the molding material can be minimized, thereby contributing to cost reduction.
Number | Date | Country | Kind |
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2013-063786 | Mar 2013 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2014/057654 | 3/20/2014 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2014/156917 | 10/2/2014 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
3981661 | Taylor | Sep 1976 | A |
4890725 | Fierkens | Jan 1990 | A |
6106758 | Douche et al. | Aug 2000 | A |
6302681 | Douche et al. | Oct 2001 | B1 |
Number | Date | Country |
---|---|---|
1620365 | May 2005 | CN |
101279497 | Oct 2008 | CN |
102185047 | Sep 2011 | CN |
102361741 | Feb 2012 | CN |
202685192 | Jan 2013 | CN |
0407797 | Jan 1991 | EP |
1595676 | Nov 2005 | EP |
2415582 | Feb 2012 | EP |
S52-977 | Jan 1977 | JP |
S60-045642 | Mar 1985 | JP |
S61-5909 | Jan 1986 | JP |
S61-029515 | Feb 1986 | JP |
S61-43019 | Mar 1986 | JP |
H02-165992 | Jun 1990 | JP |
H05-200778 | Aug 1993 | JP |
H06-106557 | Apr 1994 | JP |
H11-34126 | Feb 1999 | JP |
H11-254486 | Sep 1999 | JP |
2002-273769 | Sep 2002 | JP |
2004-345328 | Dec 2004 | JP |
2005-081677 | Mar 2005 | JP |
2007-112027 | May 2007 | JP |
2007-152627 | Jun 2007 | JP |
2007-216622 | Aug 2007 | JP |
Entry |
---|
Extended European Search Report for Application No. EP 14 77 5138 dated Apr. 20, 2016 (9 pages). |
G. Menges et al., “Cold Runners In: How to Make Injection Molds”, Jan. 1, 2001, Carl Hanser Verlag, Munchen, XP055263980, ISBN: 978-3-446-21256-5, pp. 242-247. |
Jin Zhiming, Plastic Injection Molding Practical Technology, published by Printing Industry Press of Beijing, China on May 31, 2009, pp. 63-64, and translation (9 pages). |
Brinkmann, Osswald Baur and Oberbach Schmachtenberg: “International Plastics Handbook—The Resource for Plastics Engineers”, Fourth Edition; Chemical Industry Press, Beijing (2006). |
Japanese Office Action for Application No. 2013-063786 dated Apr. 5, 2017 with English translation (5 pages). |
Number | Date | Country | |
---|---|---|---|
20160288390 A1 | Oct 2016 | US |