PROCESSING APPARATUS FOR GAS-DIFFUSION LAYER SHEETS
20200136149 ยท 2020-04-30
Inventors
Cpc classification
B29K2079/08
PERFORMING OPERATIONS; TRANSPORTING
B29C66/1122
PERFORMING OPERATIONS; TRANSPORTING
B29C66/43
PERFORMING OPERATIONS; TRANSPORTING
B29C65/7841
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29C66/71
PERFORMING OPERATIONS; TRANSPORTING
B29K2079/08
PERFORMING OPERATIONS; TRANSPORTING
Y02E60/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M4/8817
ELECTRICITY
B29C66/343
PERFORMING OPERATIONS; TRANSPORTING
B29C65/50
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29C65/50
PERFORMING OPERATIONS; TRANSPORTING
Abstract
The processing apparatus includes: a first roller 10 around which a gas-diffusion layer sheet (carbon paper CP) is wound, the gas-diffusion layer sheet being an electrically conductive porous member; a second roller 20 configured to take up the carbon paper CP wound around the first roller 10; and a processing oven configured to heat process a portion of the carbon paper CP, the portion having been fed from the first roller 10 but not yet taken up by the second roller 20. A heat-resistant lead LE is provided, the heat-resistant lead LE having a length at least extending from the first roller 10 to the second roller 20 through the processing oven, being configured to be taken up by the second roller 20, and being bonded to the carbon paper CP impregnated with a thermosetting resin AD.
Claims
1. A processing apparatus for gas-diffusion layer sheets, the processing apparatus comprising: a first roller around which a gas-diffusion layer sheet is wound, the gas-diffusion layer sheet being an electrically conductive porous member; a second roller configured to take up the gas-diffusion layer sheet wound around the first roller; and a processing oven configured to heat process a portion of the gas-diffusion layer sheet, the portion having been fed from the first roller but not yet taken up by the second roller, wherein a heat-resistant lead is provided, the heat-resistant lead having a length at least extending to the second roller through the processing oven, being configured to be taken up by the second roller, and being bonded to the gas-diffusion layer sheet impregnated with a thermosetting resin.
2. The processing apparatus according to claim 1, wherein the heat-resistant lead has, in a portion thereof, an anti-wrinkle part for substantially eliminating wrinkles that have formed in the gas-diffusion layer sheet, the portion with the anti-wrinkle part being adjacent to another portion, of the heat-resistant lead, to which the gas-diffusion layer sheet is bonded.
3. The processing apparatus according to claim 2, wherein the anti-wrinkle part is comprised of a cut formed in the portion of the heat-resistant lead.
4. The processing apparatus according to claim 1, wherein the thermosetting resin is applied to a longitudinal end portion of the heat-resistant lead such that the applied thermosetting resin is in a shape of a single continuous line extending in a width direction of the heat-resistant lead, from a vicinity of one end to a vicinity of an other end in the width direction of the heat-resistant lead, thereby bonding the heat-resistant lead to the gas-diffusion layer sheet.
5. The processing apparatus according to claim 1, wherein a longitudinal end portion of the gas-diffusion layer sheet is impregnated with the thermosetting resin, and the thermosetting resin is heated and cured in a state where the gas-diffusion layer sheet is positioned on top of the heat-resistant lead, thereby bonding the gas-diffusion layer sheet and the heat-resistant lead to each other.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
[0021] Embodiments of the present disclosure will be described below with reference to the drawings.
[0022] The processing apparatus 1 for gas-diffusion layer sheets is intended to form electrolyte membranes and the like, by cutting carbon paper CP (a gas-diffusion layer sheet), which is to constitute a gas-diffusion layer of a fuel cell, into a predetermined size, and by applying coatings to the carbon paper CP so that electrodes, a water repellent layer, and the like are formed. As shown in
[0023] The carbon paper CP is wound around the feeding roller 10 in advance. The feeding roller 10 feeds the carbon paper CP toward the take-up roller 20. The die head 40 applies coatings to the carbon paper CP fed from the feeding roller 10 so that electrodes, a gas-diffusion layer, and a water-repellent layer are formed. The interior of the drying oven 30 is in a high-temperature atmosphere at, for example, about 400 C. The carbon paper CP, to which the electrodes, the gas-diffusion layer, and the water repellent layer have been applied by the die head 40, is passed through the interior of the drying oven 30, so that the carbon paper CP is heat processed and dried. The take-up roller 20 takes up the carbon paper CP having the electrodes, the water repellent layer, and the gas-diffusion layer formed thereon.
[0024] A heat-resistant lead LE is bonded to a front end portion of the carbon paper CP to be fed from the feeding roller 10. The heat-resistant lead LE is comprised of a resin film made of a polyimide material and having the same width as that of the carbon paper CP. The heat-resistant lead LE, of which one end portion is fixed to the take-up roller 20, is configured to be wound around the take-up roller 20.
[0025] The heat-resistant lead LE has a length extending from the feeding roller 10 to the take-up roller 20 through the die head 40 and the drying oven 30. The other end portion of the heat-resistant lead LE is bonded to the front end portion of the carbon paper CP to be fed from the feeding roller 10 with an adhesive AD (see
[0026] Thus, following the heat-resistant lead LE that has passed through the die head 40 and the drying oven 30 and then has been taken up by the take-up roller 20, the carbon paper CP passes through the die head 40 and the drying oven 30 to be taken up by the take-up roller 20 in the same manner.
[0027] The other end portion of the heat-resistant lead LE and the front end portion of the carbon paper CP are bonded together via the adhesive AD in a state where the carbon paper CP is positioned on top of the heat-resistant lead LE. More specifically, the bonding of the other end of the heat-resistant lead LE and the front end portion of the carbon paper CP is implemented in the following manner.
[0028] First, as shown in
[0029] Next, as shown in
[0030] According to the present embodiment, the following beneficial effects are achieved. According to the present embodiment, the processing apparatus 1 for gas-diffusion layer sheets includes: the feeding roller 10 as a first roller around which the carbon paper CP has been wound; the take-up roller 20 as a second roller configured to take up the carbon paper CP that has been wound around the feeding roller 10; and the drying oven 30 as a processing oven configured to heat process a portion of the carbon paper CP, the portion having been fed from the feeding roller 10 but not yet taken up by the take-up roller 20. Further, the heat-resistant lead LE that has a length extending to the take-up roller 20 through the drying oven 30, and that is configured to be taken up by the take-up roller 20 is provided. The heat-resistant lead LE is bonded to carbon paper CP impregnated with the adhesive AD comprised of a thermosetting resin.
[0031] As a result, the carbon paper CP, which has been impregnated with the adhesive AD comprised of the thermosetting resin, is bonded to the heat-resistant lead LE. This feature makes it possible to maintain the bonding durability of the bonded joint, and to reduce wrinkles, while ensuring that the bonded joint is resistant to a high temperature of about 400 C. As can be seen, since the heat resistance of the bonded joint is ensured, the adhesive AD can be substantially prevented from exerting adverse effects on the carbon paper CP inside the drying oven 30. In addition, since the heat-resistant lead LE and the carbon paper CP are bonded together with the adhesive AD, the solvent contained in the adhesive AD can be vaporized and then released through the porous carbon paper CP. Therefore, when the adhesive AD that has been dried is cooled, the formation of wrinkles can be reduced in the carbon paper CP.
[0032] The adhesive AD comprised of the thermosetting resin is applied to the longitudinal end portion of the heat-resistant lead LE such that the applied adhesive AD is in the shape of a single continuous line extending in the width direction of the heat-resistant lead LE, from a vicinity of one end to a vicinity of the other end in the width direction of the heat-resistant lead LE, thereby bonding the heat-resistant lead LE to the carbon paper CP. Therefore, when the adhesive AD that has been dried is cooled, solvent vapor resulting from vaporization of the solvent contained in the thermosetting resin can be easily released through the porous carbon paper CP. Consequently, the carbon paper CP is less likely to get wrinkles, and is bonded reliably.
[0033] The present disclosure is not limited to the above-described embodiment, but encompasses any variations, improvements, and the like within the scope of achieving the object of the present disclosure. For example, the heat-resistant lead LE may have, in a portion thereof, an anti-wrinkle part for substantially eliminating wrinkles that have formed in the carbon paper CP, the portion with the anti-wrinkle part is adjacent to another portion, of the heat-resistant lead LE, to which the carbon paper CP is bonded.
[0034] Specifically, for example, the anti-wrinkle part is comprised of cuts CU formed in the portion of the heat-resistant lead LE. As shown in
[0035] As can be seen, the portion of the heat-resistant lead LE that is adjacent to the other portion of the heat-resistant lead LE to which the carbon paper CP is bonded is provided with the anti-wrinkle part for substantially eliminating wrinkles that have formed in the carbon paper CP. The anti-wrinkle part is comprised of the cuts CU formed in the portion of the heat-resistant lead LE. Therefore, when the adhesive AD that has been dried is cooled, the cuts CU in the heat-resistant lead LE can substantially eliminate the wrinkles that have formed in the carbon paper CP. This feature can reliably reduce the formation of wrinkle in the carbon paper CP.
[0036] The gas-diffusion layer sheet is not limited to the carbon paper. It is suitable that the gas-diffusion layer sheet is made of a porous material having electrical conductivity. Examples of suitable materials for the gas-diffusion layer sheet include a conductive resin, a composite of a conductive material and a resin, and a member including metallic fibers. Further, the configurations of the respective components such as the first roller, the second roller, the processing oven, the heat-resistant lead, and the anti-wrinkle part are not limited to the configurations of the respective components such as the feeding roller 10, the take-up roller 20, the drying oven 30, the heat-resistant lead LE, and the cuts CU of the present embodiment. For example, as the processing oven for performing the heat processing, a kiln may be used instead of the drying oven 30. Further, for example, the shape of the applied adhesive AD is not limited to the shape of a single continuous line, but may be the shape of at least one dashed line.
EXPLANATION OF REFERENCE NUMERALS
[0037] 1 Processing Apparatus for Gas-Diffusion Layer Sheets [0038] 10 Feeding Roller [0039] 20 Take-Up Roller [0040] 30 Drying Oven (Processing Oven) [0041] AD Adhesive (Thermosetting Resin) [0042] CP Carbon Paper [0043] CU Cut (Anti-Wrinkle Part) [0044] LE Heat-Resistant Lead