POWER SOURCE DEVICE
20170331089 ยท 2017-11-16
Inventors
Cpc classification
H01M50/358
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
H01M50/3425
ELECTRICITY
H01M2220/20
ELECTRICITY
International classification
Abstract
In order to allow gas discharged from a pouch cell to be guided to a predetermined position, a power source device includes one or a plurality of pouch cells (10) having laminated film outer casing (11), and a housing member (20) enclosing the one or multiple pouch cells (10). The one or plurality of pouch cells (10) each includes thermally welded portion (13) formed by thermally welding the laminated film, and gas discharge portion (14) provided in at least a part of thermally welded portion (13). Housing member (20) includes exhaust port (22) communicating with gas discharge portion (14) of one or a plurality of pouch cells (10).
Claims
1. A power source device comprising: one pouch cell or a plurality of pouch cells each having an outer casing formed of a laminated film, each including a thermally welded portion formed by thermally welding the laminated film, and a gas discharge portion provided in at least a part of the thermally welded portion; and a housing member enclosing the one pouch cell or the plurality of pouch cells and having an exhaust port communicating with the one gas discharge portion or the plurality of the gas discharge portions of the one pouch cell or the plurality of pouch cells.
2. The power source device according to claim 1, wherein the one gas discharge portion or each of the plurality of the gas discharge portions has a narrower width of an area of the thermally welded portion than other regions of the thermally welded portion.
3. The power source device according to claim 1, wherein the one pouch cell or the plurality of pouch cells each include a power-generating element, a pair of electrode tabs connected to the power-generating element, and a pair of deriving portions provided in a part of the thermally welded portion and deriving the pair of electrode tabs to outside of the outer casing, and the gas discharge portion is positioned between the pair of deriving portions.
4. The power source device according to claim 1, wherein the housing member has both of ends of the housing member opened, the power source device further comprising a pair of resin members to be coupled to the housing member so as to close openings provided at both of the ends.
5. The power source device according to claim 3, wherein the housing member has both of ends of the housing member opened, the power source device further comprising a pair of resin members to be coupled to the housing member, each of the pair of resin members having a through hole for deriving a corresponding electrode tab of the pair of electrode tabs to outside of the housing member, and a sealing member along an inner wall of the through hole.
6. The power source device according to claim 1 2, further comprising one holding body or a plurality of holding bodies disposed inside the housing member, the one holding body or each of the plurality of holding bodies covering the gas discharge portion of a corresponding pouch cell among the one pouch cell or the plurality of pouch cells, sandwiching at least a part of the thermally welded portion, and including a through-hole portion in a position corresponding to the gas discharge portion, wherein the housing member houses the one holding body or the plurality of holding bodies in a posture allowing the through-hole portion to correspond to the exhaust port, and the through-hole portion of the one holding body or each of the plurality of holding bodies is exposed from the exhaust port.
7. The power source device according to claim 1, further comprising a first case body having an opening part opened upward, and a second case body for closing the opening part, wherein the housing member is disposed between the first case body and the second case body, and the second case body has a duct portion that communicates with the exhaust port of the housing member.
8. The power source device according to claim 7, further comprising an elastic member disposed between the duct portion and the one holding body or the plurality of holding bodies, and positioned along a through hole of the through-hole portion of the one holding body or each of the plurality of holding bodies.
9. The power source device according to claim 7, wherein the second case body includes a pair of coupling portions provided on both end surfaces in an extending direction of the duct portion, and having a coupling hole communicating with the duct portion, and the pair of coupling portions are formed in a shape enabling coupling portions to be fitted to each other so that the duct portions of a plurality of second case bodies can be coupled to each other.
10. The power source device according to claim 8, wherein the second case body includes a pair of coupling portions provided on both end surfaces in an extending direction of the duct portion, and having a coupling hole communicating with the duct portion, and the pair of coupling portions are formed in a shape enabling coupling portions to be fitted to each other so that the duct portions of a plurality of second case bodies can be coupled to each other.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENT
[0024] Power source device 1 in accordance with a first exemplary embodiment of the present invention is described below in detail with reference to
[0025] As shown in
[0026] As a pouch cell of this type, a configuration including a flat wound electrode body or a stacked electrode body as an electrode body has been known. The wound electrode body is formed by winding a positive electrode plate and a negative electrode plate with a separator disposed therebetween, followed by pressing the wound product into a flat shape. The stacked electrode body is formed by stacking a sheet-like positive electrode plate and negative electrode plate with a separator disposed therebetween. As the above-mentioned laminated film, for example, a sheet-like composite film having a five-layered structure of a resin layer (polypropylene)/adhesive layer/aluminum alloy layer/adhesive layer/resin layer (polypropylene) and the like is well known.
[0027] In a power source device in accordance with one aspect of the present invention, an electrode body is not necessarily limited to the above-mentioned configuration. Any configuration capable of enclosing the power-generating elements in outer casing 11 may be employed. Furthermore, a laminated film may be any composite films having various structures.
[0028] Pouch cell 10 shown in
[0029] Thermally welded portion 13 includes a pair of deriving portions 15 provided at both ends of outer casing 11 and gas discharge portion 14 provided between the pair of deriving portions 15. For example, in the pouch cell of
[0030] Gas discharge portion 14 is configured to have weaker adhesion strength than the other region in thermally welded portion 13. For example, in the pouch cell of
[0031] As shown in
[0032] As shown in
[0033] A plurality of pouch cells 10 housed in housing member 20 are stacked with wide surfaces thereof facing each other. The plurality of pouch cells 10 are stacked in a predetermined posture. Electrode tabs 12 of adjacent pouch cells 10 are brought near to each other, and adjacent gas discharge portions 14 of adjacent pouch cells 10 are brought near to each other. Pouch cells 10 in a stacked state are housed in housing member 20 in a predetermined posture such that gas discharge portions 14 of the pouch cells correspond to the position of exhaust port 22 of housing member 20.
[0034] As shown in
[0035] Note here that a sealing member such as an elastic body may be disposed between each resin member 30 and an inner wall of housing member 20 or between an inner wall of the through hole of each resin member 30 and pouch cell 10. Disposing of the sealing member can improve the airtightness of housing member 20. Furthermore, it is preferable that the sealing member disposed on the inner wall of the through hole of resin member 30 is provided in a position sandwiching thermally welded portion 13 of pouch cell 10. This configuration can enhance the adhesion strength of the laminated films of deriving portion 15. For example, even in a pouch cell provided with gas discharge portion 14, when the internal pressure of outer casing 11 rapidly increases, the thermally welded portion of deriving portion 15 in addition to gas discharge portion 14 may be peeled off or broken. However, the above-mentioned configuration can prevent gas from being discharged from regions other than gas discharge portion 14 of thermally welded portion 13.
[0036] In power source device 1 having the above-mentioned configuration, gas discharge portions 14 of a plurality of pouch cells 10 are disposed corresponding to the position of exhaust port 22 of housing member 20. With this configuration, gas discharged from the pouch cell is discharged toward exhaust port 22. When housing member 20 and a vehicle-side duct and the like, are hermetically coupled to each other, it is possible to guide the gas discharged from pouch cell 10 to the inside of the duct. It is difficult to hermetically couple an outer casing formed of a thin laminated film having low rigidity to a duct, but it is relatively easy to hermetically couple a housing member having high rigidity and a duct. Therefore, the above-mentioned power source device enables the gas discharged from pouch cell 10 to be guided to the inside of the duct although the device has a relatively simple structure.
[0037] Note here that in the above-mentioned configuration, when resin member 30 and housing member 20 are hermetically coupled to each other via, for example, a sealing member, and the like, gas discharge portion 14 does not necessarily corresponded to a position of exhaust port 22 of housing member 20. In this case, since it is not necessary to specify a gas generating section of the pouch cell, a configuration of the gas discharge portion can be simplified. For example, it is possible to employ a pouch cell provided with an outer casing formed by thermally welding a laminated film in a uniform width. In this configuration, since the adhesion strength of the thermally welded portion also becomes uniform, the entire thermally welded portion becomes gas discharge portion 14. However, when the airtightness inside housing member 20 is high, gas generated inside housing member 20 is discharged from exhaust port 22 to the outside of housing member 20.
[0038] With the configuration mentioned above, housing member 20 is configured to house a plurality of pouch cells 10 inside and allow the gas discharged from pouch cell 10 to be discharged from exhaust port 22 of housing member 20. Housing member 20 is more stable in shape as compared with outer casing 11 of pouch cell 10. Therefore, the duct for guiding gas discharged from a pouch cell to a predetermined position can be easily connected to housing member 20. By hermetically connecting housing member 20 and members such as the duct to each other, even when an internal pressure increases and gas is discharged from the pouch cell, the gas can be guided to a predetermined position.
[0039] Next, a power source device in accordance with a second exemplary embodiment of the present invention is described below in detail with reference to
[0040] As shown in
[0041] As shown in
[0042] As shown in
[0043] Holding body 40 of
[0044] As shown in
[0045] As shown in
[0046] With the above-mentioned configuration, holding body 40 can form a flat surface on the periphery of the through hole of through-hole portion 41 positioned above gas discharge portion 14 of pouch cell 10. Furthermore, holding body 40 has higher rigidity than outer casing 11 of pouch cell 10. Therefore, when a duct is disposed so as to press elastic member 50 toward holding body 40, the duct and through-hole portion 41 of holding body 40 can be hermetically coupled to each other.
[0047] According to the above-mentioned configuration, gas discharged from gas discharge portion 14 of pouch cell 10 is guided to duct portion 63 of second case body 62 via exhaust port 22 of housing member 20. The gas flowing into duct portion 63 is discharged from the coupling hole of coupling portion 64 provided to duct portion 63. Consequently, by connecting a connection hose or the like to coupling portion 64, it is possible to easily guide the gas discharged from the pouch cell to the predetermined position.
[0048] As mentioned above, the present invention is described based on two exemplary embodiments. These exemplary embodiments are described for the exemplary purposes. A person skilled in the art would understand that various modified examples to combinations of components or processing processes are possible, and such modified examples are also encompassed in the scope of the present invention.
REFERENCE MARKS IN THE DRAWINGS
[0049] 1 power source device [0050] 10 pouch cell [0051] 11 outer casing [0052] 12 electrode tab [0053] 13 thermally welded portion [0054] 14 gas discharge portion [0055] 15 deriving portion [0056] 20 housing member [0057] 21 opening part [0058] 22 exhaust port [0059] 30 resin member [0060] 40 holding body [0061] 41 through-hole portion [0062] 50 elastic member [0063] 60 case [0064] 61 first case body [0065] 62 second case body [0066] 63 duct portion [0067] 64 coupling portion [0068] 70 unit module