FUEL CELL MODULE, MANUFACTURING METHOD FOR FUEL CELL MODULE, AND CONNECTOR
20220013866 · 2022-01-13
Assignee
Inventors
Cpc classification
H01M8/2475
ELECTRICITY
Y02E60/10
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
Y02P70/50
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
H01R24/20
ELECTRICITY
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
International classification
H01M50/502
ELECTRICITY
H01M8/2475
ELECTRICITY
Abstract
A connector includes a protrusion. The protrusion protrudes toward a distal end side to serve as a distal end of the connector. The connector moves in a diagonal direction relative to a first separator. A worker positions the connector in a Z direction, before moving the connector. With an upward protrusion and an inward protrusion formed, the worker standing by a first side wall looks into a casing from above to see a portion around an attachment portion. When the connector is positioned close to the attachment portion, the worker looking into the casing from above cannot see a bottom surface of the connector. The worker can see the protrusion even when he or she cannot see the bottom surface.
Claims
1-4. (canceled)
5. A fuel cell module comprising: a stack of a plurality of cells; a casing that has an opening to have at least a part of an upper surface of the casing open, the casing being configured to accommodate the cells; and a connector for use in measuring voltage of the cells, the connector being attached to at least one of the cells, wherein the connector is attached at a position exposed through the opening and includes a protrusion serving as a distal end of the connector.
6. The fuel cell module according to claim 5, wherein the cells each have a substantially rectangular outer shape, and the connector is attached in a diagonal direction relative to the outer shape of the cells.
7. The fuel cell module according to claim 6, wherein the casing includes a first side wall and a second side wall that are orthogonal to a surface direction of the cells, and the connector is attached at a position closer to the first side wall than to the second side wall and in an inclined manner such that the distal end of the connector is directed toward the first side wall.
8. A connector for use in measuring voltage of cells and attached to a portion of the cells accommodated in a casing having an opening to have at least a part of an upper surface of the casing open, the portion being exposed through the opening, the connector comprising: a protrusion at a distal end of the connector, wherein the protrusion has such a shape that the protrusion in contact with the cell that is an attachment target is visually recognizable while the connector is being attached to the cell.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0015]
[0016]
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DESCRIPTION OF EMBODIMENTS
[0024] A first embodiment is described.
[0025] The fuel cell module 10 includes a casing 200, an end plate 210, a monitor 220, a plurality of connectors 230, and the plurality of cells 240. The number of the connectors 230 is the same as the number of the cells 240.
[0026] The casing 200 accommodates the plurality of cells 240. The monitor 220 is fixed to an upper portion of the casing 200. The plurality of connectors 230 each is for use in measuring cell voltage. The plurality of connectors 230 are each connected to the monitor 220 through a cable 231 that is not illustrated in
[0027] The monitor 220 has an upper portion provided with a connection unit 221. A result of detection with the monitor 220 will be acquired with a plug inserted in the connection unit 221. The result of detection denotes power generation voltage by each of the cells 240.
[0028]
[0029] As illustrated in
[0030] The casing 200 has the side opening 204 to have one side open. The worker inserts the stack 24 into the casing 200 through the side opening 204. In this operation, the worker moves the stack 24 relative to the casing 200 in the Z direction (that is, in the stacking direction of the stack 24).
[0031] The cells 240 each have a substantially rectangular outer shape as illustrated in
[0032] Then, the worker fixes the end plate 210 in step S320. Next, a worker W attaches the connector 230 to the cell 240 in step S330. The connector 230 is attached to a portion where the cell 240 is exposed from the casing 200 through the upper opening 203 as illustrated in
[0033] As illustrated in
[0034] The operation in step S330 involves a jig. The worker W manually attaches the connectors 230 one by one to the cells 240. Then, the worker attaches the monitor 220 in step S340. When step S340 is completed, assembling of the fuel cell module 10 illustrated in
[0035]
[0036] As illustrated in
[0037] The attachment portion 241A is formed as a part of the first separator 241, and the connector 230 is attached to the attachment portion 241A. The attachment portion 241A is protruded toward outside of and exposed from the second separator 242 and the insulating frame 243 as illustrated in
[0038] The connector 230 includes a protrusion 232. The protrusion 232 protrudes toward the distal end side to serve as the distal end of the connector 230. The protrusion 232 is positioned on the farther side of the connector 230 as viewed from the worker W, that is, on a side farther from his or her body, in the X direction.
[0039] As illustrated in
[0040] The attachment through such a diagonal movement is mainly intended to ensure a gap between the attachment portion 241A and a through hole 249. The through hole 249 will make a manifold in the fuel cell module 10 in the assembled state. The connector 230 thus diagonally attached has a distal end directed toward the first side wall 201.
[0041] The worker W can appropriately move the connector 230 along the XY plane direction (that is, a direction in parallel with the surface direction of the cell 240), by moving the connector 230 with some jig. Thus, the worker W positions the jig and the connector 230 in the Z direction before moving the connector 230. In other words, the worker W performs the positioning in the Z direction so that the attachment operation will be appropriately done to the cell 240 that is an attachment target, in the plurality of cells 240 stacked in the Z direction.
[0042] As illustrated in
[0043] The inward protrusion 201B is a portion protruding toward the inner side of the casing 200 from a portion around the upper end of the main portion of the first side wall 201. The inward protrusion 201B is positioned more on the upward side than the upper end of the first separator 241.
[0044] With the upward protrusion 201A and the inward protrusion 201B thus formed, the worker W standing by the first side wall 201 looks into the casing from above to see a portion around the attachment portion 241A. When the connector 230 is positioned close to the attachment portion 241A, the worker W looking into the casing from above cannot see a bottom surface 233 of the connector 230.
[0045] The worker W, however, is able to see the protrusion 232 even when he or she cannot see the bottom surface 233. In other words, in the present embodiment, the protrusion 232 is designed to have such a size and a shape as to be visible by the worker W as soon as the protrusion 232 starts to contact with the attachment portion 241A.
[0046] Thus, the worker W is able to confirm that the protrusion 232 is in contact with the attachment portion 241A of the cell 240 that is the attachment target. Specifically, the worker W is able to confirm that the protrusion 232 is clamping the attachment portion 241A of the cell 240 that is the attachment target. After confirming this, the worker W further pushes the connector 230 to a predetermined position as illustrated in
[0047] In the present embodiment, the worker W will be prevented from erroneously attaching the connector 230 to a cell 240 that is not the attachment target. This effect will also be obtained also in a case where the connector 230 is temporarily pulled out and then is attached again for a repairing purpose.
[0048] Next, a second embodiment is described. The second embodiment is described by mainly focusing on differences from the first embodiment. Matters not elaborate upon here are the same as those in the first embodiment.
[0049]
[0050] The connector 230A includes a protrusion 232A. The protrusion 232A is positioned on the closer side of the connector 230A as viewed from the worker W.
[0051] In other words, the protrusion 232A is positioned on the side close to the worker W in the X direction, as viewed from the worker W. In step S330, the worker W is able to confirm that the protrusion 232A is clamping the attachment portion 241A of the cell 240A that is the attachment target.
[0052] A third embodiment is described. The third embodiment is described by mainly focusing on differences from the first embodiment. Matters not elaborate upon here are the same as those in the first embodiment.
[0053]
[0054] The worker W pushes the connector 230B from the upward side toward the downward side, and also from the closer side toward the farther side.
[0055] The connector 230B includes a protrusion 232B. The connector 230B is different from the connector 230 in the first embodiment in that the bottom surface is not provided. Thus, the protrusion 232B is a sharp tapered portion around the distal end of the connector 230B, unlike the protrusion 232 in the first embodiment.
[0056] The protrusion 232B is positioned on the farther side of the connector 230B as viewed from the worker W. In step S330, the worker W is able to confirm that the protrusion 232B is clamping an attachment portion 241B of the cell 240 that is the attachment target.
[0057] The present disclosure is not limited to the embodiments and the examples described above, and may be implemented in various ways without departing from the gist of the present disclosure. For example, the technical features in the embodiments and the examples corresponding to the technical features in each aspect described in the summary section can be replaced or combined as appropriate in order to partially or entirely solve the problem described above or to partially or entirely achieve the advantageous effects described above. Some technical features that are not described as being essential herein can be omitted as appropriate. An example of such a modified configuration includes the following.
[0058] The protrusion may have any shape as long as the worker will be prevented from failing to confirm that a cell to which he or she is about to attach the connector is the cell that is the attachment target due to the casing hindering visual recognition of the distal end of the connector, in the attaching of the connector.