Power storage apparatus and vehicle with power storage apparatus mounted thereon
09979044 ยท 2018-05-22
Assignee
Inventors
Cpc classification
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
H01M2220/20
ELECTRICITY
H01M10/0413
ELECTRICITY
H01G11/72
ELECTRICITY
Y02E60/13
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
H01G11/76
ELECTRICITY
International classification
H01G11/76
ELECTRICITY
H01G11/82
ELECTRICITY
Abstract
A power storage device includes an electrode assembly formed by stacking a positive electrode sheet, a negative electrode sheet, and a sheet-like separator arranged between the positive and negative electrode sheets. The positive electrode sheet includes a positive electrode thin metal plate, which includes a first positive electrode edge and a second positive electrode edge. A surface of the positive electrode sheet includes a positive electrode application region and a positive electrode non-application region. The negative electrode sheet includes a negative electrode thin metal plate including a first negative electrode edge and a second negative electrode edge. A positive electrode border, which is a border between the positive electrode application region and the positive electrode non-application region, is located between the first positive electrode edge and the second positive electrode edge. The positive electrode border is located between the first negative electrode edge and the second negative electrode edge.
Claims
1. A power storage device comprising: a positive electrode sheet including a positive electrode thin metal plate, which includes a first positive electrode edge and a second positive electrode edge located at an opposite side of the first positive electrode edge, and a positive electrode tab, which extends from the first positive electrode edge in an extending direction; a positive current collection member connected to the positive electrode tab to be electrically connected to the positive electrode thin metal plate; a negative electrode sheet including a negative electrode thin metal plate, which includes a first negative electrode edge and a second negative electrode edge located at an opposite side of the first negative electrode edge, and a negative electrode tab, which extends from the first negative electrode edge in the extending direction; a negative current collection member connected to the negative electrode tab to be electrically connected to the negative electrode thin metal plate; a sheet-like separator arranged between the positive electrode sheet and the negative electrode sheet to insulate the positive electrode sheet and the negative electrode sheet from each other; an electrode assembly formed by stacking the positive electrode sheet, the negative electrode sheet, and the separator; and a case accommodating the electrode assembly, wherein a surface of the positive electrode sheet includes a positive electrode application region, which includes the second positive electrode edge and to which a positive active material is applied, the surface of the positive electrode sheet includes a positive electrode non-application region, to which the positive active material is not applied, a positive electrode border, which is a border between the positive electrode application region and the positive electrode non-application region, is located between the first positive electrode edge and the second positive electrode edge, a surface of the negative electrode sheet includes a negative electrode application region, which includes the second negative electrode edge and to which a negative active material is applied, the surface of the negative electrode sheet includes a negative electrode non-application region, to which the negative active material is not applied, a negative electrode border, which is a border between the negative electrode application region and the negative electrode non-application region, is located between the first negative electrode edge and a distal portion of the negative electrode tab, the first negative electrode edge and the first positive electrode edge are located on the same side of the electrode assembly, a length from the first negative electrode edge to the second negative electrode edge is greater than a length from the first positive electrode edge to the second positive electrode edge, and the positive electrode border is located between the first negative electrode edge and the second negative electrode edge.
2. The power storage device according to claim 1, wherein the separator includes an edge that is located on the same side as the first positive electrode edge and the first negative electrode edge in the electrode assembly, and the edge of the separator is located toward a distal portion of the positive electrode tab from the first positive electrode edge and is also located toward the distal portion of the negative electrode tab from the first negative electrode edge.
3. The power storage device according to claim 1, wherein in the positive electrode sheet, a length from the second positive electrode edge to the first positive electrode edge is greater than a length from the second positive electrode edge to the positive electrode border, and in the negative electrode sheet, a length from the second negative electrode edge to the first negative electrode edge is less than a length from the second negative electrode edge to the negative electrode border.
4. The power storage device according to claim 1, wherein the positive electrode application region of the positive electrode sheet is entirely included in the negative electrode application region of the negative electrode sheet as viewed from a stacking direction.
5. The power storage device according to claim 1, wherein the positive electrode non-application region is located in the entire positive electrode tab and proximate to the first positive electrode edge, and the negative electrode non-application region is located in a portion of the negative electrode tab including the distal portion of the negative electrode tab.
6. The power storage device according to claim 1, wherein a length along a surface of the positive electrode thin metal plate in a direction orthogonal to an extending direction of the positive electrode tab is less than a length along a surface of the negative electrode thin metal plate in a direction orthogonal to an extending direction of the negative electrode tab.
7. The power storage device according to claim 1, wherein the length from the first positive electrode edge to the second positive electrode edge is less than a transverse width of the positive electrode sheet.
8. The power storage device according to claim 7, wherein the length from the first negative electrode edge to the second negative electrode edge is less than a transverse width of the negative electrode sheet.
9. The power storage device according to claim 1, wherein the length from the first negative electrode edge to the second negative electrode edge is less than a transverse width of the negative electrode sheet.
10. A vehicle to which a the power storage device according to claim 1 is installed.
11. A power storage device comprising: a case; a positive electrode sheet comprising a metal plate, and a positive electrode tab extending in an extending direction; a negative electrode sheet comprising a metal plate, and a negative electrode tab extending in the extending direction; a separator arranged between the positive electrode sheet and the negative electrode sheet to insulate the positive electrode sheet and the negative electrode sheet; a positive current collection member connected to the positive electrode tab; and a negative current collection member connected to the negative electrode tab; wherein a surface of the positive electrode sheet includes a positive electrode application region with positive electrode active material that covers only a portion of the metal plate, and not any portion of the positive electrode tab; wherein a surface of the negative electrode sheet includes a negative electrode application region with negative electrode active material that covers an entire surface of the metal plate and a portion of the negative electrode tab, and the negative electrode tab includes an additional portion that does not include negative electrode active material; wherein the positive electrode sheet has a first length that extends from one side of the metal plate to another, parallel to a direction along which the positive electrode tab extends from; wherein the negative electrode sheet has a second length that extends from one side of the metal plate to another, parallel to a direction along which the negative electrode tab extends from; the first length is less than the second length, and wherein the positive electrode application region with positive electrode active material does not extend beyond the second length.
12. The power storage device according to claim 11, wherein the first length is less than a transverse width of the positive electrode sheet.
13. The power storage device according to claim 12, wherein the second length is less than a transverse width of the negative electrode sheet.
14. The power storage device according to claim 11, wherein the second length is less than a transverse width of the negative electrode sheet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(6) One embodiment of the present invention will now be described with reference to
(7) As shown in
(8) A generally cylindrical positive terminal 15 and negative terminal 16 protrude from an outer surface (upper surface) of the cover member 13. The positive terminal 15 and the negative terminal 16 are insulated from the case 11 (main body member 12 and cover member 13).
(9) As shown in
(10) As shown in
(11) As shown in
(12) The two surfaces (front surface and rear surface) of the positive electrode sheet 21 each include a positive active material layer 26. The positive active material layer 26 includes a positive electrode lower edge 25, which is located at the opposite side of the positive electrode upper edge 23 in the extending direction of the positive electrode tab 24. The positive active material layer 26 includes the positive active material which extends throughout the entire width in the lateral direction over a constant length (constant height) from the positive electrode lower edge 25. In the present embodiment, the region where the positive active material layer 26 is formed corresponds to the positive electrode application region 26a to which the positive active material is applied.
(13) The two surfaces of the positive electrode sheet 21 each include a positive electrode non-application region 26b, to which the positive active material is not applied, that is, does not include the positive active material layer 26. The positive electrode non-application region 26b entirely includes the positive electrode tab 24 and includes a region that extends throughout the entire width in the lateral direction over a constant length (constant height) from the distal portion 24a of the positive electrode tab 24. The positive electrode non-application region 26b extends over the entire positive electrode tab 24 and in the vicinity of the positive electrode upper edge 23. The two surfaces of the positive electrode sheet 21 each include a positive electrode border 26c, which is a border between the positive electrode application region 26a and the positive electrode non-application region 26b. In the present embodiment, the positive electrode lower edge 25 corresponds to the second positive electrode edge.
(14) In the positive electrode sheet 21, the length L1a (height of the positive electrode metal foil 22) from the positive electrode lower edge 25 to the positive electrode upper edge 23, is greater than the length L2a (height of the positive electrode application region 26a) from the positive electrode lower edge 25 to the positive electrode border 26c. In the positive electrode sheet 21 of the present embodiment, the positive electrode upper edge 23 and the positive electrode lower edge 25 are generally parallel to the positive electrode border 26c.
(15) Accordingly, in the positive electrode sheet 21, the positive electrode non-application region 26b extends along the positive electrode upper edge 23 of the positive electrode metal foil 22. The positive electrode tab 24 does not include the positive active material layer 26. That is, in the positive electrode metal foil 22, the positive electrode border 26c is located between the positive electrode upper edge 23 and the positive electrode lower edge 25.
(16) As shown in
(17) The two surfaces (front surface and rear surface) of the negative electrode sheet 31 each include a negative active material layer 36. The negative active material layer 36 includes the negative active material that extends throughout the entire width in the lateral direction over a constant length (constant height) from a negative electrode lower edge 35, which is located at the opposite side of the negative electrode upper edge 33 in the extending direction of the negative electrode tab 34. In the present embodiment, a region where the negative active material layer 36 is formed corresponds to the negative electrode application region 36a to which the positive active material is applied.
(18) The two surfaces of the negative electrode sheet 31 each include a negative electrode non-application region 36b, to which the negative active material is not applied, that is, does not include the negative active material layer 36. The negative electrode non-application region 36b extends, in the negative electrode tab 34, throughout the entire width in the lateral direction over a constant length (constant height) from the distal portion 34a. The negative electrode non-application region 36b includes a portion of the negative electrode tab 34 including the distal portion 34a of the negative electrode tab 34. The two surfaces of the negative electrode sheet 31 each include a negative electrode border 36c, which is a border between the negative electrode application region 36a and the negative electrode non-application region 36b. In the present embodiment, the negative electrode lower edge 35 corresponds to a second negative electrode edge.
(19) In the negative electrode sheet 31, the length L1b (height of the negative electrode metal foil 32) from the negative electrode lower edge 35 to the negative electrode upper edge 33 is less than the length L2b (height of the negative electrode application region 36a) from the negative electrode lower edge 35 to the negative electrode border 36c. In addition, in the negative electrode sheet 31, the length L2b from the negative electrode lower edge 35 to the negative electrode border 36c is less than the length L3 (height of the negative electrode sheet 31) from the negative electrode lower edge 35 to the distal portion 34a of the negative electrode tab 34. In the negative electrode sheet 31 of the present embodiment, the negative electrode upper edge 33 and the negative electrode lower edge 35 are generally parallel to the negative electrode border 36c.
(20) Accordingly, the negative electrode sheet 31 includes the negative active material layer 36 throughout each of the two surfaces of the negative electrode metal foil 32. Part of the basal portion of the negative electrode tab 34 includes the negative active material layer 36. However, the distal portion 34a does not include the negative active material layer 36. That is, the negative electrode border 36c is located between the negative electrode upper edge 33 and the distal portion 34a of the negative electrode tab 34.
(21) As shown in
(22) In addition, the length L1b from the negative electrode lower edge 35 to the negative electrode upper edge 33 in the negative electrode sheet 31 is greater than the length L2a from the positive electrode lower edge 25 to the positive electrode border 26c in the positive electrode sheet 21. Here, the length L1a from the positive electrode lower edge 25 to the positive electrode upper edge 23 in the positive electrode sheet 21 is less than the length L2b from the negative electrode lower edge 35 to the negative electrode border 36c in the negative electrode sheet 31.
(23) The separator 19, which is formed from an insulative resin material, is a tetragonal porous sheet having an extremely fine porous structure. As shown in
(24) As shown in
(25) Thus, as shown in
(26) As shown in
(27) In the electrode assembly 18, the two lateral edges of the positive electrode sheet 21 are located at the inner sides of the two lateral edges of the negative electrode sheet 31. The positive electrode lower edge 25 of the positive electrode sheet 21 is located upward from the negative electrode lower edge 35 of the negative electrode sheet 31, that is, located toward the positive electrode tab 24 and the negative electrode tab 34 from the negative electrode lower edge 35.
(28) Accordingly, in the electrode assembly 18 of the present embodiment, the positive electrode application region 26a of the positive electrode sheet 21 is entirely included in the negative electrode application region 36a of the negative electrode sheet 31 as viewed from the stacking direction of the electrode assembly 18. More specifically, when viewed from the stacking direction of the electrode assembly 18, the entire positive electrode application region 26a of the positive electrode sheet 21 is included in the negative electrode application region 36a of the negative electrode sheet 31.
(29) Throughout the entire width in the lateral direction in the electrode assembly 18, the upper edge 19a of the separator 19 is located toward the distal portion 24a from the positive electrode upper edge 23 of the positive electrode sheet 21 and also located toward the distal portion 34a from the negative electrode upper edge 33 (negative electrode border 36c) in the negative electrode sheet 31. Here, the upper edge 19a of the separator 19 is the edge in the extending direction of the positive electrode tab 24 and the negative electrode tab 34. In the electrode assembly 18 of the present embodiment, as viewed from the stacking direction in the electrode assembly 18, the positive electrode application region 26a in the positive electrode sheet 21 and the negative electrode application region 36a in the negative electrode sheet 31 are included in the separator 19.
(30) In the present embodiment, the positive electrode sheet 21 may be obtained by punching the positive electrode metal foil 22 in a punching process into the shape described above. Then, a paste of a positive active material agent, which is a mixture of the positive active material, the conductive agent, and the binder, is applied to the positive electrode metal foil 22. This forms the positive active material layer 26. In the same manner, the negative electrode sheet 31 may be obtained by punching the negative electrode metal foil 32 in a punching process into the shape described above. Then, a paste of a negative active material agent, which is a mixture of the negative active material, the conductive agent, and the binder, is applied to the negative electrode metal foil 32. This forms the negative active material layer 36. Additionally, the positive electrode sheet 21 of the present embodiment may be obtained by applying the positive active material mixture to the strip-like (elongated sheet-like) positive electrode metal foil 22 and then punching the positive electrode metal foil 22 in a punching process into the shape described above. In the same manner, the negative electrode sheet 31 of the present embodiment may be obtained by applying the negative active material mixture to the strip-like (elongated sheet-like) negative electrode metal foil 32 and then punching the negative electrode metal foil 32 in a punching process into the shape described above.
(31) As shown in
(32) The operation of the rechargeable battery 10 of the present embodiment will now be described.
(33) In the positive electrode sheet 21, the positive electrode border 26c is located toward the positive electrode lower edge 25, which serves as the second positive electrode edge, from the positive electrode upper edge 23, which serves as the first positive electrode edge and the positive electrode tab 24 is formed on. Thus, in the positive electrode sheet 21, the positive electrode non-application region 26b is formed on the positive electrode tab 24 and in the vicinity of the positive electrode upper edge 23 in the positive electrode metal foil 22.
(34) For example, when the positive active material layer 26 (positive electrode application region 26a) is formed extending to the positive electrode upper edge 23 of the positive electrode metal foil 22, a processing error, which occurs during the application of the positive active material agent, may cause the positive active material layer 26 to extend to the positive electrode tab 24. In this case, the positive active material that is overspread from the positive electrode metal foil 22 becomes unnecessary. Such a problem may occur when manufacturing the positive electrode sheet 21 by applying the positive active material agent to the positive electrode metal foil 22 after the punching process and when manufacturing the positive electrode sheet 21 by performing the punching process on the positive electrode metal foil 22 after the positive active material layer 26 is formed.
(35) Further, in this case, as viewed from a direction orthogonal to the direction along the surfaces of the positive electrode sheet 21 and the negative electrode sheet 31 in the electrode assembly 18, the positive active material layer 26 formed in the positive electrode tab 24 is also included in the negative electrode application region 36a of the negative electrode sheet 31. Thus, there is a need to upwardly expand the negative electrode metal foil 32 of the negative electrode sheet 31. When the positive electrode application region 26a of the positive electrode sheet 21 is not included in the negative electrode application region 36a of the negative electrode sheet 31 as viewed from the stacking direction, metallic lithium may be deposited around the negative electrode sheet 31.
(36) In the present embodiment, the positive electrode metal foil 22 and the positive active material layer 26 do not exist sideward from (right side in the present embodiment) of the positive electrode tab 24 from the beginning. Therefore, in the negative electrode sheet 31, a portion (region) corresponding to a location beside the positive electrode tab 24 is substantially irrelevant to improving the battery capacity of the rechargeable battery 10. This decreases the energy density of the rechargeable battery 10.
(37) However, in the rechargeable battery 10 of the present embodiment, in the positive electrode sheet 21, the positive electrode non-application region 26b is formed on the positive electrode tab 24 and in the vicinity of the positive electrode upper edge 23 of the positive electrode metal foil 22.
(38) Therefore, in the present embodiment, when the positive active material layer 26 is formed on the positive electrode metal foil 22 that has undergone the punching process, the active material agent is not over-applied to beside the positive electrode tab 24. This saves the positive active material and improves the usage rate of the active material. In the same manner, in the present embodiment, when performing the punching process after the positive active material layer 26 is formed on the positive electrode metal foil 22, the positive active material layer 26 is not formed on a region that does not serve as the positive electrode sheet 21. This improves the usage rate of the active material. In the present embodiment, the employment of the structure described above limits the formation of a region in the negative electrode sheet 31 that does not correspond to the positive active material layer 26 (positive electrode non-application region 26b) in the positive electrode sheet 21. This improves the energy density.
(39) The negative electrode border 36c in the negative electrode sheet 31 is located between the negative electrode upper edge 33, which includes the negative electrode tab 34, and the distal portion 34a of the negative electrode tab 34. Thus, in the negative electrode metal foil 32, the negative active material layer 36 includes the negative electrode upper edge 33. In the positive electrode sheet 21, with respect to the negative electrode sheet 31, the positive electrode border 26c of the positive active material layer 26 is located between the negative electrode border 36c and the negative electrode lower edge 35 and between the negative electrode upper edge 33 and the negative electrode lower edge 35. This allows the negative electrode upper edge 33 of the negative electrode sheet 31 to approach the positive electrode border 26c of the positive electrode sheet 21 within a range in which the negative electrode upper edge 33 of the negative electrode sheet 31 is not located toward the negative electrode lower edge 35 from the positive electrode border 26c in the positive electrode sheet 21. Accordingly, the negative electrode metal foil 32 used to form the negative electrode sheet 31 is reduced in size, and the energy density may be improved.
(40) Accordingly, the present embodiment has the advantages described below.
(41) (1) The upper edge 23 of the positive electrode sheet 21 includes the positive electrode tab 24. The surface of the positive electrode sheet 21 includes the positive electrode application region 26a that includes the positive electrode lower edge 25, which is located at the opposite side of the positive electrode upper edge 23. The positive active material is applied to the positive electrode application region 26a. In the positive electrode sheet 21, the positive electrode border 26c, which is the border between the positive electrode application region 26a and the positive electrode non-application region 26b, is located between the positive electrode upper edge 23 and the positive electrode lower edge 25. Therefore, the positive electrode non-application region 26b is formed on the positive electrode tab 24 and in the vicinity of the positive electrode upper edge 23 of the positive electrode metal foil 22. This inhibits the positive active material from entering the side of the positive electrode tab 24. Consequently, this saves the positive active material and improves a usage rate of the active material.
(42) In the negative electrode sheet 31, the negative electrode border 36c, which is the border between the negative electrode application region 36a and the negative electrode non-application region 36b, is located between the negative electrode upper edge 33, which includes the negative electrode tab 34, and the distal portion 34a of the negative electrode tab 34. The positive electrode border 26c is located at a position corresponding to between the negative electrode upper edge 33 and the negative electrode lower edge 35, which is located at the opposite side of the negative electrode upper edge 33. This allows the negative electrode upper edge 33 of the negative electrode sheet 31 to approach the positive electrode border 26c of the positive electrode sheet 21 within a range in which the negative electrode upper edge 33 of the negative electrode sheet 31 is not located toward the negative electrode lower edge 35 from the positive electrode border 26c. Accordingly, the negative electrode metal foil 32 used to form the negative electrode sheet 31 is reduced in size, and the energy density is improved.
(43) (2) The upper edge 19a of the separator 19 is located toward the distal portion 24a of the positive electrode tab 24 from the positive electrode upper edge 23 and toward the distal portion 34a of the negative electrode tab 34 from the negative electrode upper edge 33. This suitably ensures insulation between the positive electrode tab 24 and the negative electrode sheet 31 and between the negative electrode tab 34 and the positive electrode sheet 21.
(44) (3) The usage rate of the active material in the rechargeable battery 10 and the energy density may be improved. Accordingly, the amount of electric power usable with a single full charge may be improved, and the rechargeable battery 10 may be miniaturized.
(45) Embodiments are not limited to the foregoing description. For example, embodiments may be realized as follows.
(46) As shown in
(47) In this case, in the positive electrode upper edge 23 of the positive electrode sheet 21, the positive electrode tabs 24 each extend at a predetermined interval in the longitudinal direction of the positive electrode sheet 21. Also, in the negative electrode upper edge 33 of the negative electrode sheet 31, the negative electrode tabs 34 each extend at a predetermined interval in the longitudinal direction of the negative electrode sheet 31.
(48) By winding and stacking the positive electrode sheet 21 and the negative electrode sheet 31, the positive current collector 28, which has a layered structure formed by stacking a plurality of the positive electrode tabs 24 without sandwiching the separator 19, upwardly extends at the left side of the upper edge in the electrode assembly 18.
(49) The right side of the upper edge in the electrode assembly 18 includes the negative current collector 38, which has a layered structure formed by stacking a plurality of the negative electrode tabs 34 without sandwiching the separator 19.
(50) In the same manner as the above embodiment, this structure saves the positive active material during the formation of the positive electrode sheet 21 and improves the usage rate of the active material. Further, this structure also limits the formation of a region in the negative electrode sheet 31 that does not correspond to the positive active material layer 26 (positive electrode application region 26a) in the positive electrode sheet 21 and improves the energy density.
(51) In the negative electrode sheet 31, the length L1b from the negative electrode lower edge 35 to the negative electrode upper edge 33 may be less than the length L1a from the positive electrode lower edge 25 to the positive electrode upper edge 23 in the positive electrode sheet 21. In this case, however, the length L1b from the negative electrode lower edge 35 to the negative electrode upper edge 33 in the negative electrode sheet 31 is greater than the length L2a from the positive electrode lower edge 25 to the positive electrode border 26c in the positive electrode sheet 21.
(52) In the negative electrode sheet 31, the length L2b from the negative electrode lower edge 35 to the negative electrode border 36c may be greater than the L6 of the separator 19 in the vertical direction. That is, a portion of the negative active material layer 36 may protrude in the perpendicular direction of the separator 19.
(53) The positive electrode tab 24 may have a triangular shape that extends from the positive electrode upper edge 23 of the positive electrode metal foil 22. The negative electrode tab 34 may be modified in the same manner. In this case, the top of each of the triangular positive electrode tab 24 and the negative electrode tab 34 is the distal portion.
(54) Each of the positive electrode tab 24 and the negative electrode tab 34 may be formed on a lateral edge or a lower edge of the electrode assembly 18.
(55) The positive electrode metal foil 22 is used as the positive electrode thin metal plate, and the negative electrode metal foil 32 is used as the negative electrode thin metal plate. However, a thin plate that has sufficient thickness for maintaining the battery capacity (electric capacity) in the rechargeable battery 10 and has no influence when manufacturing the battery may be used as the positive electrode thin metal plate and the negative electrode thin metal plate.
(56) The electrode assembly 18 may be formed by stacking the positive electrode sheet 21 and the negative electrode sheet 31, which are located on opposite sides of the separator 19 and folded into an accordion-like shape.
(57) The number of the positive electrode sheets 21 and the negative electrode sheets 31, which form the electrode assembly 18, may be modified. For example, the electrode assembly 18 may include a single positive electrode sheet 21 and a single negative electrode sheet 31.
(58) The shape of the case 11 may be cylindrical or elliptic cylindrical that is elongated in the lateral direction.
(59) The rechargeable battery 10 of the above embodiment may be installed in a vehicle (for example, an industrial vehicle or a passenger vehicle). In this case, a compressor for the air conditioner, an electric motor used to drive the wheels, and electric components such as an automotive navigation system may be driven with electric power supplied from the rechargeable battery 10 as the rechargeable battery 10 is charged by a power generator installed in the vehicle. This improves the usage rate of the active material as the rechargeable battery 10 and the energy density, which, in turn, increases the amount of electric power that can be used with a single full charge and allows the rechargeable battery 10 to be reduced in size. Consequently, the recharge cycle of the vehicle may be prolonged, and the degree of freedom may be increased for the location where the rechargeable battery 10 is installed.
(60) The present invention may be realized as an electric double-layer capacitor. That is, the present invention is applicable to a power storage device that has a structure capable of being charged and discharged.