The present disclosure relates to a separator-integrated gasket provided on a separator forming a fuel cell, and a manufacturing method therefor.
In a well-known, conventional technique, a gasket formed from an elastic body made of rubber or the like is integrally molded with a separator forming a fuel cell. When carbon is used as the material of the separator, the gasket is to be integrally molded with the separator after coating the surface of the separator with an adhesive, thus leading to an increase in the number of manufacturing steps. Moreover, the separator and the gasket have widely differing thermal expansion coefficients, and therefore an issue arises in that in a high-temperature environment, the gasket is more likely to peel away from the separator. A further issue exists in that when the gasket peels away from the separator, the gasket cannot be reused.
An object of the present disclosure is to provide a separator-integrated gasket and a manufacturing method therefor, with which the likelihood of the gasket peeling away from the separator can be reduced while reducing the number of manufacturing steps.
The present disclosure employs the following means to solve the issues described above.
A separator-integrated gasket according to the present disclosure is a separator-integrated gasket including a gasket that is provided integrally with a separator forming a fuel cell, wherein the separator is formed from carbon to which a thermoplastic first resin material has been added, and the gasket is formed from a thermoplastic second resin material that is compatible with the first resin material.
According to the present disclosure, the gasket is formed from the thermoplastic second resin material, which is compatible with the first resin material added to the material of the separator. Therefore, by directly molding the gasket integrally with the separator, the first resin material and the second resin material melt, intermix, and then harden. As a result, the gasket can be provided integrally with the separator without using an adhesive. Moreover, peeling due to a difference between the thermal expansion coefficients is unlikely to occur.
Further, a separator-integrated gasket according to another disclosure is a separator-integrated gasket including a gasket that is provided integrally with a separator forming a fuel cell, wherein the separator is formed from carbon to which a thermoplastic first resin material has been added, and the gasket is formed from a mixed material of a rubber material and a thermoplastic second resin material that is compatible with the first resin material.
According to this configuration, similar effects to those of the configuration described above can be achieved. Moreover, in this configuration, the gasket expands and contracts easily, and therefore deformation of the separator due to thermal contraction of the gasket can be suppressed. Furthermore, a stable sealing function is achieved regardless of variation in a gap formed in a part where the gasket is disposed.
A plurality of uneven parts may be formed in a portion of the separator to which the gasket is welded.
In so doing, the surface area of the welded portion between the separator and the gasket can be enlarged, enabling an increase in fixing force.
Further, a manufacturing method for a separator-integrated gasket according to the present disclosure is a manufacturing method for a separator-integrated gasket forming a fuel cell, the method including: a step for attaching, to an injection molding die, a separator formed from a carbon material to which a thermoplastic first resin material has been added; and a step for integrally molding a gasket with the separator using a thermoplastic second resin material that is compatible with the first resin material.
Furthermore, a manufacturing method for a separator-integrated gasket according to another disclosure is a manufacturing method for a separator-integrated gasket forming a fuel cell, the method including: a step for attaching, to an injection molding die, a separator formed from a carbon material to which a thermoplastic first resin material has been added; and a step for integrally molding a gasket with the separator using a mixed material of a rubber material and a thermoplastic second resin material that is compatible with the first resin material.
Here, the gasket may be integrally molded on a surface of a plurality of uneven parts formed in advance on a surface of the separator.
According to the present disclosure, as described above, the likelihood of the gasket peeling away from the separator can be reduced while reducing the number of manufacturing steps.
The present disclosure will be described in detail below on the basis of exemplary embodiments with reference to the figures. Note, however, that unless specified otherwise, the scope of the disclosure is not limited only to the dimensions, materials, shapes, relative arrangements, and so on of the constituent components described in the following embodiments.
A separator-integrated gasket and a manufacturing method therefor according to a first embodiment of the present disclosure will be described with reference to
Fuel Cell
A fuel cell that includes the separator according to this embodiment will be described with reference to
The MEA 100 includes an electrolyte membrane and a pair of gas diffusion layers provided on respective surfaces of the electrolyte membrane. Further, a flow passage 201 through which fuel gas, oxidant gas, coolant, and so on flows is formed in the separator 200.
Elastic gaskets 210, 220 are provided between the MEA 100 and the separators 200 to prevent leakage of the fuel gas, oxidant gas, coolant, and so on. In this embodiment, the gaskets 210, 220 are provided integrally with the separator 200. Hence, a member in which the gaskets 210, 220 are provided integrally with the separator 200 will be referred to as a “separator-integrated gasket”.
Separator
Referring to
The flow passage 201 is used as a flow passage through which fuel gas, oxidant gas, coolant, and so on flow. Further, the manifolds 202 are provided to distribute the fuel gas, oxidant gas, coolant, and so on to the respective cells. To prevent the fuel gas and so on from leaking to the outside or the like, the gaskets 210, 220 are provided integrally with the separator 200 on the periphery of a region in which the flow passage 201 is formed and on the periphery of the manifolds 202, respectively. Note that in
Manufacturing Method for Separator-Integrated Gasket
Referring in particular to
First, the separator 200 is attached to the injection molding die (see
Thus, since the first resin material, which is added to the carbon material forming the separator 200, and the second resin material 210X are compatible, a part of the first resin material near the surface of the separator 200 melts such that the first resin material and the second resin material 210X are evenly intermixed (see
Next, the separator 200 is extracted from the die. A gate trace 210Ya remains on the gasket 210Y molded integrally with the separator 200 (see
Note that in the above description, a manufacturing process in a case where the gasket 210 is provided integrally on one surface of the separator 200 was described. However, by also providing a gate in the lower die 520, the gasket 210 and the gasket 220 can be integrally molded with the separator 200 simultaneously.
Advantages of Separator-Integrated Gasket and Manufacturing Method Therefor According to this Embodiment
With the separator-integrated gasket and the manufacturing method therefor according to this embodiment, the gaskets 210, 220 are formed from the thermoplastic second resin material, which is compatible with the first resin material added to the material of the separator 200. Therefore, by directly molding the gaskets 210, 220 integrally with the separator 200, the first resin material and the second resin material melt, intermix, and then harden. In other words, the gaskets 210, 220 are fixed integrally to the separator 200 by the welded portions 215, 225 in which the first resin material and the second resin material are intermixed. Hence, the gaskets 210, 220 can be provided integrally with the separator 200 without using an adhesive. Accordingly, a process for applying an adhesive is not required. Note that as long as the first resin material and the second resin material are compatible, the first and second resin materials may be the same material or different materials.
Further, since the first resin material and the second resin material do not have widely differing thermal expansion coefficients, situations in which the gaskets 210, 220 peel away from the separator 200 due to a difference between thermal expansion coefficients thereof can be suppressed. Furthermore, since the gaskets 210, 220 are formed from thermoplastic resin material, even if the gaskets 210, 220 peel away from the separator 200, the gaskets 210, 220 can be reheated and welded to the separator 200 and are therefore reusable.
Referring to
Even when the parts of the surfaces of the separator 200 to which the gaskets 210, 220 are to be welded are planar, since the gaskets 210, 220 are fixed by the welded portions 215, 225 in which the first resin material and the second resin material are intermixed, as described above, it is possible to acquire a fixing force with a certain degree of strength. Depending on the use environment and so on, however, an increased fixing force may be used. In this case, uneven parts may be formed in advance in the sites of the surface of the separator 200 to which the gaskets 210, 220 are to be welded.
For example,
Alternatively,
As described above, the cell stack may have locations, in a region where the coolant flows, where the separators are provided adjacent to each other rather than via the MEA. Likewise in this case, a gasket is to be provided between the separators to prevent the coolant from leaking. In this case, a single gasket may be provided integrally with a pair of separators.
For example,
Similarly to the first embodiment the gasket 210 formed from the second resin material and the separator 200 formed mainly from carbon have different thermal expansion coefficients. Therefore, when the temperatures of the separator 200 and the gasket 210 decrease after the gasket 210 is molded integrally with the separator 200, the gasket 210 contracts by a larger amount than the separator 200. Hence, due to the contraction of the gasket 210 (see the arrows in
In this embodiment, a separator-integrated gasket with which this defect can be prevented from occurring will be described. As shown in
This embodiment differs from the first embodiment in that the material of the gasket 210S is constituted by a mixed material of a rubber material and the thermoplastic second resin material that is compatible with the first resin material. PP (polypropylene) and PE (polyethylene) may be cited as examples of the first resin material and the second resin material. Further, EPDM may be cited as an example of the rubber material. Note that a molding material can be obtained by kneading a material formed by dry-blending the second resin material and the rubber material at a desired ratio in a biaxial extrusion kneader. Note that when the gasket 210S is integrally molded with the separator 200 by injection molding, the kneaded molding material described above may be used in pellet form.
As described above, this embodiment differs from the first embodiment only in the material of the gasket 210S. A manufacturing method for the separator-integrated gasket according to this embodiment is also similar to the first embodiment, and therefore description thereof has been omitted.
With the separator-integrated gasket and the manufacturing method therefor according to this embodiment, similar effects to those of the first embodiment can be acquired. Moreover, in this embodiment, the material of the gasket 210S is constituted by a mixed material of the second resin material and a rubber material. Therefore, the gasket 210S expands and contracts more easily than the gasket 210 of the first embodiment. Accordingly, deformation of the separator 200 due to thermal contraction of the gasket 210S can be suppressed. Furthermore, a stable sealing function can be achieved regardless of variation in a gap formed in the part where the gasket 210S is disposed. More specifically, as shown in
The gasket 210S illustrated in this embodiment can also be applied to the various modified examples shown in
Number | Date | Country | Kind |
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2020-018626 | Feb 2020 | JP | national |
2020-139437 | Aug 2020 | JP | national |
This application is a National Stage of International Application No. PCT/JP2020/048735, filed Dec. 25, 2020 (now WO 2021/157252A1), which claims priority to Japanese Application No. 2020-018626, filed Feb. 6, 2020 and Japanese Application No. 2020-139437 filed Aug. 20, 2020. The entire disclosures of each of the above applications are incorporated herein by reference.
Filing Document | Filing Date | Country | Kind |
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PCT/JP2020/048735 | 12/25/2020 | WO |