WO2023188213A1 - 組電池 - Google Patents
組電池 Download PDFInfo
- Publication number
- WO2023188213A1 WO2023188213A1 PCT/JP2022/016354 JP2022016354W WO2023188213A1 WO 2023188213 A1 WO2023188213 A1 WO 2023188213A1 JP 2022016354 W JP2022016354 W JP 2022016354W WO 2023188213 A1 WO2023188213 A1 WO 2023188213A1
- Authority
- WO
- WIPO (PCT)
- Prior art keywords
- battery
- along
- batteries
- stacking direction
- bus bar
- Prior art date
Links
- 125000006850 spacer group Chemical group 0.000 description 59
- 238000003780 insertion Methods 0.000 description 45
- 230000037431 insertion Effects 0.000 description 45
- 239000000470 constituent Substances 0.000 description 25
- RYGMFSIKBFXOCR-UHFFFAOYSA-N Copper Chemical compound [Cu] RYGMFSIKBFXOCR-UHFFFAOYSA-N 0.000 description 16
- 229910052802 copper Inorganic materials 0.000 description 16
- 239000010949 copper Substances 0.000 description 16
- 238000012986 modification Methods 0.000 description 14
- 230000004048 modification Effects 0.000 description 14
- 238000001514 detection method Methods 0.000 description 11
- 229910052782 aluminium Inorganic materials 0.000 description 9
- XAGFODPZIPBFFR-UHFFFAOYSA-N aluminium Chemical compound [Al] XAGFODPZIPBFFR-UHFFFAOYSA-N 0.000 description 9
- 238000004891 communication Methods 0.000 description 7
- 239000011810 insulating material Substances 0.000 description 7
- 229910052751 metal Inorganic materials 0.000 description 7
- 239000002184 metal Substances 0.000 description 7
- 238000009529 body temperature measurement Methods 0.000 description 6
- 239000004020 conductor Substances 0.000 description 6
- 239000000463 material Substances 0.000 description 6
- 125000000391 vinyl group Chemical group [H]C([*])=C([H])[H] 0.000 description 6
- 229920002554 vinyl polymer Polymers 0.000 description 6
- 239000011347 resin Substances 0.000 description 4
- 229920005989 resin Polymers 0.000 description 4
- 238000013459 approach Methods 0.000 description 3
- 238000010586 diagram Methods 0.000 description 3
- 229920003023 plastic Polymers 0.000 description 3
- HBBGRARXTFLTSG-UHFFFAOYSA-N Lithium ion Chemical compound [Li+] HBBGRARXTFLTSG-UHFFFAOYSA-N 0.000 description 2
- 238000005452 bending Methods 0.000 description 2
- 230000000694 effects Effects 0.000 description 2
- 229910001416 lithium ion Inorganic materials 0.000 description 2
- 230000002093 peripheral effect Effects 0.000 description 2
- 230000001105 regulatory effect Effects 0.000 description 2
- 229910052727 yttrium Inorganic materials 0.000 description 2
- 230000001070 adhesive effect Effects 0.000 description 1
- 239000002390 adhesive tape Substances 0.000 description 1
- 230000000903 blocking effect Effects 0.000 description 1
- 238000005253 cladding Methods 0.000 description 1
- 230000000994 depressogenic effect Effects 0.000 description 1
- 238000007599 discharging Methods 0.000 description 1
- 238000006073 displacement reaction Methods 0.000 description 1
- 230000005611 electricity Effects 0.000 description 1
- 239000003792 electrolyte Substances 0.000 description 1
- 239000012212 insulator Substances 0.000 description 1
- 229910052987 metal hydride Inorganic materials 0.000 description 1
- 229910052759 nickel Inorganic materials 0.000 description 1
- PXHVJJICTQNCMI-UHFFFAOYSA-N nickel Substances [Ni] PXHVJJICTQNCMI-UHFFFAOYSA-N 0.000 description 1
- -1 nickel metal hydride Chemical class 0.000 description 1
- 230000001681 protective effect Effects 0.000 description 1
Classifications
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M50/00—Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
- H01M50/20—Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders
- H01M50/204—Racks, modules or packs for multiple batteries or multiple cells
- H01M50/207—Racks, modules or packs for multiple batteries or multiple cells characterised by their shape
- H01M50/209—Racks, modules or packs for multiple batteries or multiple cells characterised by their shape adapted for prismatic or rectangular cells
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M50/00—Constructional details or processes of manufacture of the non-active parts of electrochemical cells other than fuel cells, e.g. hybrid cells
- H01M50/20—Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders
- H01M50/262—Mountings; Secondary casings or frames; Racks, modules or packs; Suspension devices; Shock absorbers; Transport or carrying devices; Holders with fastening means, e.g. locks
-
- Y—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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/10—Energy storage using batteries
Definitions
- the present invention relates to an assembled battery.
- the assembled battery of the present invention includes a plurality of stacked batteries, a holding member that extends in a transverse direction intersecting the stacking direction at an end along the stacking direction of the plurality of batteries and holds the plurality of batteries; a control section that controls the plurality of batteries; an input/output section that is provided along the stacking direction and into which power from the plurality of batteries is input/output via the control section; the holding member; and the input/output section. and a fastening member directly fastened to the casing of the part.
- the assembled battery of the present invention it is possible to improve assembly efficiency while firmly joining the constituent members.
- FIG. 1 is a perspective view showing an assembled battery 1 according to an embodiment.
- FIG. 2 is a perspective view showing the assembled battery 1 of FIG. 1 in different orientations along the horizontal direction.
- FIG. 2 is a perspective view showing the assembled battery 1 of FIG. 1 from below.
- FIG. 2 is a top view showing the assembled battery 1 of FIG. 1 without the bus bar holder 321;
- FIG. 5 is a top view showing constituent members of region F5 in FIG. 4;
- FIG. 6 is a top view showing partially in section the constituent members of region F6 in FIG. 5;
- FIG. 5 is a perspective view partially showing the constituent members of region F7 in FIG. 4 in cross section.
- FIG. 8 is a perspective view showing a part of the constituent members of the assembled battery 1 of FIG.
- FIG. 8 is a side view showing the constituent members in a cross section taken along line 9-9 in FIG. 7;
- FIG. 7 is a perspective view showing a case 721 and an insert nut 722 of the junction unit 700.
- FIG. 7 is a top view showing a third housing portion 731f of a case 731 according to modification example 1 of the case 721 and a negative electrode side connection terminal 709;
- FIG. 7 is a top view showing a third housing portion 741f of a case 741 according to modification example 2 of the case 721 and a negative electrode side connection terminal 709;
- FIG. 3 is a perspective view showing the battery 100, the cell spacer 202, and the second side plate 232 in a disassembled state in the stacking direction X.
- FIG. 15 is a side view showing the constituent members of FIG. 14;
- FIG. 5 is a perspective view showing the assembled battery 1 of FIG. 4 in a state in which some of the constituent members of the junction unit 700 are disassembled in the width direction Y.
- FIG. 2 is a perspective view showing a battery 100 and a holding unit 200 of the assembled battery 1 in a state where some of the constituent members of the holding unit 200 are disassembled in the width direction Y;
- FIG. 18 is a perspective view showing a state in which the first side plate 231 and the second side plate 232 are removed from FIG.
- FIG. 5 is a perspective view showing the battery pack 1 of FIG. 4 in a state where some of the constituent members of the controller unit 400 are disassembled in the width direction Y.
- FIG. 7 is a perspective view showing a part of a temperature measurement unit 600 and a junction unit 700.
- FIG. 5 is a perspective view showing a voltage detection unit 500.
- FIG. 2 is a schematic diagram showing the layout of the assembled battery 1.
- FIG. 3 is a schematic diagram showing a layout of a battery pack 2 related to a first modification of the battery pack 1.
- FIG. FIG. 3 is a schematic diagram showing a layout of a battery pack 3 regarding a second modification of the battery pack 1.
- the stacking direction X and the width direction of the assembled battery 1 Y and height direction Z change.
- the threads on the outer peripheral surface of the fastening bolt and the grooves on the inner peripheral surface of the insert nut are not shown.
- the assembled battery 1 is configured, for example, as a power source for operating an electrical device 1000 mounted on a vehicle. Further, the assembled battery 1 may be configured as, for example, a power source for operating a motor for driving a vehicle.
- the assembled battery 1 includes a plurality of batteries 100, a holding unit 200 that holds the plurality of batteries 100, a busbar unit 300 that electrically connects the plurality of batteries 100, and a controller unit 400 that controls the input and output of power of the plurality of batteries 100. Contains.
- the assembled battery 1 also includes, as units controlled by the controller unit 400, a voltage detection unit 500 that detects the voltage of the battery 100, a temperature measurement unit 600 that measures the temperature of the battery 100, and, for example, an electrical device 1000 on the vehicle side. It includes a junction unit 700 that electrically connects the plurality of batteries 100. It is arbitrary and not limited which unit from the holding unit 200 to the junction unit 700 the constituent members of the assembled battery 1 are included.
- the batteries 100 are stacked along the stacking direction X via the holding unit 200.
- 12 batteries 100 are stacked.
- the battery 100 is configured by, for example, a lithium ion battery.
- the battery 100 shown in FIGS. 1 to 5, FIGS. 7, 8, and 14 to 19 includes a current collector, a container 101, a lid 102, a positive terminal 103 (electrode terminal), and a negative terminal 104 (electrode terminal). I'm here.
- the constituent members included in the battery 100 will be explained.
- the current collector of the battery 100 is composed of a positive electrode and a negative electrode that are wound or stacked with an insulating member (separator) in between. That is, the current collector corresponds to a charging/discharging body in which power is charged and discharged.
- the container 101 houses a current collector. Container 101 is filled with electrolyte. The lid 102 is joined to the opening of the container 101 and seals the current collector. The positive terminal 103 and the negative terminal 104 relay input and output of power between the current collector and the electrical device 1000.
- the battery 100 is formed into a rectangular shape (rectangular parallelepiped shape).
- the positive electrode terminal 103 and the negative electrode terminal 104 are provided on one surface 100a along the stacking direction X of the battery 100.
- One surface 100a of the battery 100 corresponds to the lid 102.
- One surface 100a has a rectangular shape, and the length along the stacking direction X of the batteries 100 is shorter than the length along the width direction Y (crossing direction) that intersects the stacking direction X of the batteries 100.
- the control board 401 of the controller unit 400 faces the other surface 100b of the battery 100, which intersects and adjoins the first surface 100a.
- the holding unit 200 holds a plurality of batteries 100. In one battery 100 and another battery 100 that are adjacent to each other along the stacking direction X, the positive terminal 103 of one battery 100 and the negative terminal 104 of the other battery 100 are aligned in the stacking direction X.
- the holding unit 200 shown in FIGS. 1 to 5, 7 to 9, and 14 to 19 includes a first end spacer 201, a cell spacer 202, a first intermediate spacer 203, a second intermediate spacer 204, and a second end spacer. Contains 205.
- the holding unit 200 also includes a first end block 211, an intermediate block 212, and a second end block 213.
- the holding unit 200 also includes an insulating member 221 and an insert nut 222.
- the holding unit 200 also includes a first side plate 231, a second side plate 232, and a fastening bolt 241.
- the constituent members included in the holding unit 200 will be explained below.
- the first end spacer 201 is provided between the first end block 211 and the battery 100, as shown in FIG.
- This battery 100 corresponds to the first battery 100 located at one end (corresponding to the left end in FIG. 4) of the 12 stacked batteries 100.
- the first end spacer 201 insulates the first end block 211 and the battery 100.
- the first end spacer 201 covers each side surface of the first end block 211 and the battery 100 along the width direction Y, and a part of the side surface of the battery 100 along the stacking direction X.
- the thickness of the first end spacer 201 along the stacking direction X is sufficiently thinner than the thickness of the battery 100 along the stacking direction X.
- the first end spacer 201 is made of an insulating material.
- the cell spacer 202 is provided between adjacent batteries 100, as shown in FIG.
- Cell spacer 202 holds and insulates adjacent batteries 100.
- the cell spacer 202 covers each side surface of adjacent batteries 100 along the width direction Y and a part of each side surface of each adjacent battery 100 along the stacking direction X.
- the thickness of the cell spacer 202 along the stacking direction X is sufficiently thinner than the thickness of the battery 100 along the stacking direction X.
- Cell spacer 202 is made of an insulating material.
- the cell spacer 202 has a pair of rigid portions 202P formed at its upper portion along the stacking direction X.
- the pair of rigid parts 202P are formed on both sides of the cell spacer 202 in the width direction Y, as shown in FIG.
- the rigid part 202P includes a protrusion 202a, a first rigid part 202b, a second rigid part 202c, a third rigid part 202d, and a mounting part 202e.
- the protrusion 202a of the cell spacer 202 protrudes from the battery 100 toward the first side plate 231 or the second side plate 232.
- the first rigid portion 202b extends along the width direction Y so as to approach the battery 100.
- one of the projections 202a located on the first side plate 231 side projects toward the first side plate 231.
- the other protrusion 202a located on the second side plate 232 side protrudes toward the second side plate 232, as shown in FIG.
- the first rigid portion 202b of the cell spacer 202 is in contact with the lid 102 of the battery 100, as shown in FIG.
- the first rigid portion 202b is continuous with the protrusion 202a along the width direction Y.
- the second rigid portion 202c extends along the height direction Z from the tip of the first rigid portion 202b.
- the tip of the first rigid portion 202b is a portion of the first rigid portion 202b extending in the width direction Y that is relatively close to the center of the battery 100.
- the third rigid portion 202d extends from the tip of the second rigid portion 202c along the same width direction Y as the protrusion 202a.
- the tip of the second rigid portion 202c is a portion of the second rigid portion 202c extending in the height direction Z that is relatively far from the battery 100.
- the mounting portion 202e of the cell spacer 202 is constituted by a portion surrounded by a first rigid portion 202b, a second rigid portion 202c, and a third rigid portion 202d.
- the housing portion 232e has a concave shape.
- the attachment part 202e of the rigid part 202P located on the first side plate 231 side is open toward the first side plate 231, as shown in FIG. are doing.
- the mounting portion 202e of the rigid portion 202P located on the side of the second side plate 232 is open toward the second side plate 232, as shown in FIG.
- the attachment portion 202e is constituted by a concave depression to which the third rigid portion 232c of the second side plate 232 is attached.
- the attachment portion 202e is formed in a U-shape.
- the first intermediate spacer 203 is provided between the intermediate block 212 and the battery 100 on the side relatively close to the first end block 211.
- This battery 100 corresponds to the sixth battery 100 from one end of the 12 stacked batteries 100.
- the first intermediate spacer 203 insulates the intermediate block 212 and the battery 100.
- the first intermediate spacer 203 covers each side surface of the battery 100 and the intermediate block 212 along the width direction Y, and a part of the side surface of the battery 100 along the stacking direction X.
- the thickness of the first intermediate spacer 203 along the stacking direction X is sufficiently thinner than the thickness of the battery 100 along the stacking direction X.
- the first intermediate spacer 203 has a pair of rigid portions 203P formed on both sides in the width direction Y.
- the configuration of the rigid portion 203P of the first intermediate spacer 203 is similar to the configuration of the rigid portion 202P of the cell spacer 202.
- the first intermediate spacer 203 is made of an insulating material.
- the second intermediate spacer 204 is provided between the intermediate block 212 and the battery 100 on the side relatively close to the second end block 213.
- This battery 100 corresponds to the seventh battery 100 from one end of the 12 stacked batteries 100.
- the second intermediate spacer 204 insulates the intermediate block 212 and the battery 100.
- the second intermediate spacer 204 covers each side surface of the intermediate block 212 and the battery 100 along the width direction Y, and a part of the side surface of the intermediate block 212 and the battery 100 along the stacking direction X.
- the thickness of the second intermediate spacer 204 along the stacking direction X is sufficiently thinner than the thickness of the battery 100 along the stacking direction X.
- the second intermediate spacer 204 has a pair of rigid portions 204P formed on both sides in the width direction Y.
- the configuration of the rigid portion 204P of the second intermediate spacer 204 is similar to the configuration of the rigid portion 202P of the cell spacer 202.
- the second intermediate spacer 204 is made of an insulating material.
- the second end spacer 205 is provided between the battery 100 and the second end block 213, as shown in FIG.
- This battery 100 corresponds to the 12th battery 100 located at the other end (corresponding to the right end in FIG. 4) of the 12 stacked batteries 100.
- the second end spacer 205 insulates the battery 100 and the second end block 213.
- the second end spacer 205 covers each side surface of the battery 100 and the second end block 213 along the width direction Y, and a part of the side surface of the battery 100 along the stacking direction X.
- the thickness of the second end spacer 205 along the stacking direction X is sufficiently thinner than the thickness of the battery 100 along the stacking direction X.
- the second end spacer 205 is made of an insulating material.
- the first end block 211 is stacked with the first battery 100 located at one end of the 12 stacked batteries 100 via the first end spacer 201. ing.
- the first end block 211 extends along the width direction Y (crossing direction) that intersects with the stacking direction X of the battery 100 .
- the first end block 211 is a support member that is adjacent to the battery 100 located at the end along the stacking direction X and supports the battery 100.
- the first end block 211 is formed into a rectangular parallelepiped shape extending in the width direction Y.
- the first end block 211 has fastening bolts 241 in a plurality of insertion holes 211m formed on the side surface along the stacking direction X and a plurality of insertion holes 211n formed on the side surface along the width direction Y shown in FIG. is screwed on.
- the first end block 211 is fixed to the first side plate 231 by a fastening bolt 241, as shown in FIGS. 4 and 19.
- the first end block 211 is fixed to the second side plate 232 by a fastening bolt 241, as shown in FIGS. 4 and 16.
- the first end block 211 is made of metal, for example, and has sufficient rigidity.
- the first end block 211 is formed of a conductor such as metal, it particularly has magnetic shielding properties.
- the first end block 211 when the first end block 211 is made of resin or plastic, it particularly has electrical shielding properties. Electrical shielding refers to the property of blocking or attenuating the influence of an electric or magnetic field on a communication line from the outside by a conductor placed near the communication line.
- the intermediate block 212 is stacked between the first intermediate spacer 203 and the second intermediate spacer 204, as shown in FIGS. 4 and 18. That is, the intermediate block 212 is located, for example, between the sixth battery 100 and the seventh battery 100 among the twelve stacked batteries 100.
- the intermediate block 212 is a support member that is adjacent to the battery 100 along the width direction Y of the battery 100 and supports the battery 100.
- the intermediate block 212 is formed into a rectangular parallelepiped shape extending in the width direction Y.
- Fastening bolts 241 are screwed into a plurality of insertion holes 212m formed in the side surface of the intermediate block 212 along the stacking direction X shown in FIG. 18. As shown in FIG.
- the intermediate block 212 is fixed to the first side plate 231 by a fastening bolt 241. Similarly, the intermediate block 212 is fixed to the second side plate 232 by a fastening bolt 241, as shown in FIG.
- the intermediate block 212 is made of metal or resin, for example, and has sufficient rigidity.
- the intermediate block 212 is formed of a conductor such as metal, it has particularly magnetic shielding properties.
- the intermediate block 212 is made of resin or plastic, it particularly has electrical shielding properties.
- the second end block 213 is connected to the 12th battery 100 located at the other end of the 12 stacked batteries 100 via the second end spacer 205. has been done.
- the second end block 213 extends along the width direction Y of the battery 100.
- the second end block 213 is a support member that is adjacent to the battery 100 located at the end along the stacking direction X and supports the battery 100.
- the second end block 213 is formed into a rectangular parallelepiped shape extending in the width direction Y.
- the second end block 213 has fastening bolts 241 in a plurality of insertion holes 213m formed on the side surface along the stacking direction X and a plurality of insertion holes formed on the side surface along the width direction Y shown in FIG.
- the second end block 213 is fixed to the first side plate 231 by a fastening bolt 241, as shown in FIGS. 4 and 19. Similarly, the second end block 213 is fixed to the second side plate 232 with fastening bolts 241, as shown in FIGS. 4 and 16.
- the second end block 213 is made of metal, for example, and has sufficient rigidity.
- the second end block 213 has particularly magnetic shielding properties when it is formed of a conductor such as metal.
- the second end block 213 is made of resin or plastic, it particularly has electrical shielding properties.
- the insulating member 221 is inserted into a recess located near the junction unit 700 on the upper surface of the first end block 211. Further, as shown in FIGS. 7 to 9 and 18, the insulating member 221 is inserted into a recess located near the junction unit 700 on the upper surface of the second end block 213.
- the insulating member 221 inserted into the second end block 213 corresponds to another holding member that holds the negative electrode side connection terminal 709.
- the insulating member 221 is, for example, formed in a rectangular parallelepiped shape.
- the insulating member 221 is made of an insulating material.
- the insulating member 221 may have the following configuration. That is, the insulating member 221 may be formed integrally with the first end spacer 201 or may be formed separately from the first end spacer 201 and then joined to the first end spacer 201. In such a case, the first end block 211 is provided with a recess for accommodating the insulating member 221 along the stacking direction X on the surface facing the first end spacer 201. Similarly, the insulating member 221 may be formed integrally with the second end spacer 205 or may be formed separately from the second end spacer 205 and then joined to the second end spacer 205. In such a case, the second end block 213 is provided with a recess for accommodating the insulating member 221 along the stacking direction X on the surface facing the second end spacer 205.
- the insert nut 222 is a mooring member, and is embedded in a recess formed on the upper surface of the insulating member 221, as shown in FIGS. 8, 9, and 18.
- a fastening bolt 311 which is a first fixing member, is anchored to the insert nut 222 via the negative electrode side connection terminal 709.
- a mooring portion corresponding to a thread groove for mooring the fastening bolt 311 to the insulating member 221 provided on the second end block 213 may be formed.
- the first side plate 231 is arranged at one end of the plurality of batteries 100 in the width direction Y along the stacking direction X of the plurality of stacked batteries 100.
- the first side plate 231 is located on the side of the controller unit 400, as shown in FIG.
- the first side plate 231 is a holding member and holds a plurality of batteries 100 along the stacking direction X. As shown in FIG. 17, the first side plate 231 has a plurality of insertion holes 231m formed on the side surface along the stacking direction X and a plurality of insertion holes 231n formed on the side surface along the width direction Y. A fastening bolt 241 is inserted. The first side plate 231 is fixed to the first end block 211, intermediate block 212, and second end block 213 by fastening bolts 241, as shown in FIGS. 1 and 19. A controller unit 400 is attached to the first side plate 231, as shown in FIG.
- the first side plate 231 has a rigid portion 231P formed at its upper portion along the stacking direction X.
- the rigid part 231P includes a first rigid part 231a, a second rigid part 231b, a third rigid part 231c, and a housing part 231d.
- the first rigid portion 231a of the first side plate 231 extends along the width direction Y away from the battery 100.
- the second rigid portion 231b extends along the height direction Z from the tip of the first rigid portion 231a.
- the tip of the first rigid portion 231a is a portion of the first rigid portion 231a extending in the width direction Y that is relatively far from the battery 100.
- the third rigid portion 231c is a protruding portion, and protrudes along the width direction Y so as to approach the battery 100 from the tip of the second rigid portion 231b.
- the tip of the second rigid portion 231b is a portion of the second rigid portion 231b extending in the height direction Z that is relatively far from the battery 100.
- the third rigid portion 231c of the first side plate 231 is in contact with the protruding portion 202a of the cell spacer 202 in a direction intersecting the stacking direction X, that is, along the height direction Z.
- the tip of the third rigid portion 231c projects further inside the battery 100 than the outer edge 100c of the battery 100.
- the housing portion 231d of the first side plate 231 is constituted by a portion surrounded by a first rigid portion 231a, a second rigid portion 231b, and a third rigid portion 231c.
- the housing portion 231d opens toward the battery 100 along the stacking direction X.
- the accommodating portion 231d is constituted by a concave depression that accommodates the protrusion 202a of the cell spacer 202.
- the accommodating portion 231d is formed in a U-shape.
- the second side plate 232 is arranged at the other end of the plurality of batteries 100 in the width direction Y along the stacking direction X of the plurality of stacked batteries 100.
- the second side plate 232 is located on the side of the junction unit 700, as shown in FIG.
- the second side plate 232 is a holding member and holds the plurality of batteries 100 along the stacking direction X. As shown in FIG. 17, the second side plate 232 has a plurality of insertion holes 232m formed on the side surface along the stacking direction X and a plurality of insertion holes 232n formed on the side surface along the width direction Y. A fastening bolt 241 is inserted. The second side plate 232 is fixed to the first end block 211, intermediate block 212, and second end block 213 by fastening bolts 241, as shown in FIGS. 1 and 16. A junction unit 700 is attached to the second side plate 232, as shown in FIG.
- the second side plate 232 has a rigid portion 232P formed at its upper portion along the stacking direction X.
- the rigid part 232P includes a first rigid part 232a, a second rigid part 232b, a third rigid part 232c, and a housing part 232d.
- the first rigid portion 232a of the second side plate 232 extends along the width direction Y away from the battery 100.
- the second rigid portion 232b extends along the height direction Z from the tip of the first rigid portion 232a.
- the tip of the first rigid portion 232a is a portion of the first rigid portion 232a extending in the width direction Y that is relatively far from the battery 100.
- the third rigid portion 232c is a protruding portion and protrudes along the width direction Y so as to approach the battery 100 from the tip of the second rigid portion 232b.
- the tip of the second rigid portion 232b is a portion of the second rigid portion 232b extending in the height direction Z that is relatively far from the battery 100.
- the third rigid portion 232c of the second side plate 232 is in contact with the protrusion 202a of the cell spacer 202, as shown in FIG. As shown in FIG. 15, the tip 232c1 of the third rigid portion 232c projects further inside the battery 100 than the outer edge 100c of the battery 100.
- the accommodating portion 232d of the second side plate 232 is constituted by a portion surrounded by the first rigid portion 232a, the second rigid portion 232b, and the third rigid portion 232c.
- the housing portion 232d opens toward the battery 100 along the stacking direction X.
- the accommodating portion 232d is constituted by a concave depression that accommodates the protrusion 202a of the cell spacer 202.
- the accommodating portion 232d is formed in a U-shape.
- the accommodating portion 232d is illustrated in FIG. 15 as a U-shape rotated by 180 degrees.
- the fastening bolt 241 is a fastening member.
- the first end block 211 and the case 721 of the junction unit 700 are directly fastened together along the width direction Y and the stacking direction X of the battery 100 by the fastening bolt 241 .
- the second end block 213 and the case 721 of the junction unit 700 are directly fastened together in the width direction Y and stacking direction X of the battery 100 by the fastening bolt 241 .
- the fastening bolt 241 connects the first side plate 231 and the first end block 211, the first side plate 231 and the intermediate block 212, and the first side plate 231 and the second end block 213. It has been concluded.
- the fastening bolts 241 connect the second side plate 232 and the first end block 211, the second side plate 232 and the intermediate block 212, and the second side plate 232 and the second end block. 213 has been concluded.
- Busbar unit 300 electrically connects multiple batteries 100.
- the busbar unit 300 shown in FIGS. 1, 2, 4, 5, 7 to 9, 16, 19, and 21 includes a first end busbar 301, a plurality of busbars 302, an intermediate busbar 303, and a second end busbar. 304, a fastening bolt 311, and a bus bar holder 321.
- the constituent members included in the busbar unit 300 will be explained below.
- the first end bus bar 301 is connected to the first relay bus bar 701 of the junction unit 700 and the positive terminal 103 of the first battery 100 among the 12 stacked batteries 100.
- the first end bus bar 301 includes a plate-shaped first joint portion 301a, a plate-shaped second joint portion 301b, a curved connection portion 301c, and an insertion hole 301d.
- the first joint portion 301a is joined to the first relay bus bar 701 of the junction unit 700.
- the second bonding portion 301b is bonded to the positive terminal 103 of the first battery 100 among the twelve stacked batteries 100.
- the connecting part 301c connects the first joint part 301a and the second joint part 301b.
- the insertion hole 301d is formed in the first joint portion 301a.
- a fastening bolt 311 is inserted into the insertion hole 301d.
- the first end bus bar 301 is made of a clad material made by bonding copper and aluminum, copper, or aluminum.
- the first joint portion 301a is formed of copper
- the second joint portion 301b is formed of aluminum.
- the bus bar 302 electrically connects one battery 100 to another battery 100.
- the bus bar 302 connects the positive electrode terminal 103 of one of the batteries 100 adjacent to each other along the stacking direction It is joined to the negative electrode terminal 104 of the other battery 100 adjacent in the direction X.
- the bus bar 302 includes a first plate-shaped joint 302a, a second plate-shaped joint 302b, and a curved connecting part 302c.
- the first joint portion 302a is joined to the negative electrode terminal 104 of one of the adjacent batteries 100.
- the second joint portion 302b is joined to the positive electrode terminal 103 of the other adjacent battery 100.
- the connecting part 302c connects the first joint part 302a and the second joint part 302b.
- the bus bar 302 is made of, for example, a clad material made by bonding copper and aluminum, copper, or aluminum.
- the bus bar 302 is formed of a cladding material, for example, the first joint portion 302a is formed of copper, and the second joint portion 302b is formed of aluminum.
- the intermediate bus bar 303 electrically connects one battery 100 and the other battery 100, as shown in FIG. As shown in FIG. 4, the intermediate bus bar 303 is connected to the sixth and seventh batteries 100 located at the center along the stacking direction X among the twelve stacked batteries 100. As shown in FIG. 21, the intermediate bus bar 303 includes a plate-shaped first joint part 303a, a plate-shaped second joint part 303b, and a curved connection part 303c.
- the first joint portion 303a is joined to the negative electrode terminal 104 of the sixth battery 100.
- the second joint portion 303b is joined to the positive electrode terminal 103 of the seventh battery 100.
- the connecting part 303c connects the first joint part 303a and the second joint part 303b.
- the intermediate bus bar 303 electrically connects the sixth and seventh batteries 100 via the intermediate block 212. Therefore, the intermediate bus bar 303 is formed to have a longer overall length in the stacking direction X than the bus bar 302.
- the intermediate bus bar 303 is made of, for example, a clad material made by bonding copper and aluminum, copper, or aluminum.
- the intermediate bus bar 303 is formed of a clad material, for example, the first joint portion 303a is formed of copper, and the second joint portion 303b is formed of aluminum.
- the second end bus bar 304 is connected to the negative electrode terminal 104 of the 12th battery 100 among the 12 stacked batteries 100 and to the negative electrode side connection terminal 709 of the junction unit 700.
- the second end bus bar 304 includes a plate-shaped first joint part 304a, a plate-shaped second joint part 304b, a curved connection part 304c, and an insertion hole 304d.
- the first joint portion 304a is joined to the negative electrode terminal 104 of the 12th battery 100.
- the second joint portion 304b is joined to the negative electrode side connection terminal 709 of the junction unit 700.
- the connecting part 304c connects the first joint part 304a and the second joint part 304b.
- the insertion hole 304d is formed in the second joint portion 304b.
- a fastening bolt 311 is inserted into the insertion hole 304d.
- the second end bus bar 304 is made of copper, for example.
- the fastening bolt 311 is a first fixing member, and, as shown in FIGS. 4 and 21, fastens the first relay bus bar 701 of the junction unit 700 and the first end bus bar 301 to make them electrically conductive. There is.
- This fastening bolt 311 is fixed to an insert nut 222 provided in the first end block 211 shown in FIG. Further, the fastening bolt 311 electrically connects the second end bus bar 304 and the negative electrode side connection terminal 709 of the junction unit 700, as shown in FIGS. 4 and 21.
- This fastening bolt 311 is fixed to an insert nut 222 provided in the second end block 213 shown in FIG.
- the bus bar holder 321 integrally holds a first end bus bar 301, a plurality of bus bars 302, an intermediate bus bar 303, and a second end bus bar 304. Further, the bus bar holder 321 covers and insulates the plurality of stacked batteries 100. As shown in FIG. 21, the bus bar holder 321 is formed into a plate shape. The bus bar holder 321 has a plurality of openings 321a formed therein. Each opening 321a exposes a first joint part or a second joint part of the first end bus bar 301, the plurality of bus bars 302, the intermediate bus bar 303, or the second end bus bar 304 toward the battery 100 side.
- Each opening 321a is larger than the first or second joint of the corresponding bus bar.
- a plurality of holding portions 321b are formed in the bus bar holder 321.
- Each holding portion 321b holds an end portion of a first joint portion or a second joint portion of the first end bus bar 301, the plurality of bus bars 302, the intermediate bus bar 303, and the second end bus bar 304.
- Each holding portion 321b is formed at the edge of the opening 321a.
- Each holding portion 321b includes a linear groove along the surface of the bus bar holder 321. An end portion of the first joint portion or the second joint portion of the corresponding bus bar is inserted into the groove provided in each holding portion 321b.
- Controller unit 400 is a control section.
- the controller unit 400 controls input and output of power to the plurality of batteries 100.
- Controller unit 400 is commonly referred to as a battery energy control module (BECM).
- BECM battery energy control module
- the controller unit 400 shown in FIGS. 1 to 6, FIG. 16, FIG. 19, and FIG. Contains. Further, the controller unit 400 includes a case 411 and a cover 412. Further, the controller unit 400 includes a fastening member 421, a covering member 422, and a protection member 423.
- the controller unit 400 is arranged on the side surface of the plurality of batteries 100 along the stacking direction X of the plurality of stacked batteries 100.
- the controller unit 400 faces the junction unit 700 along the width direction Y with the plurality of stacked batteries 100 interposed therebetween. That is, the controller unit 400 and the junction unit 700 are arranged so as to sandwich a pair of side surfaces of the plurality of stacked batteries 100.
- the constituent members included in the controller unit 400 will be explained below.
- the control board 401 is a control member that controls the plurality of batteries 100.
- the control board 401 is provided on the controller unit 400 side of the battery 100 in the width direction Y.
- the control board 401 includes a ROM in which a program related to the control of the battery 100 is recorded, a CPU that controls the battery 100, a RAM that temporarily stores the control state of the battery 100, and the like.
- the control board 401 extends in the stacking direction X, as shown in FIG.
- the first socket 402 is attached to one end of the control board 401 along the stacking direction X and adjacent to the first end block 211 of the holding unit 200.
- a first connector 404 is inserted into the first socket 402 .
- the second socket 403 is attached to the other end of the control board 401 along the stacking direction X and adjacent to the second end block 213 of the holding unit 200.
- a second connector 504 of the voltage detection unit 500 is inserted into the second socket 403 .
- the first connector 404 electrically connects the first socket 402 and the electric wire 405.
- the first connector 404 is configured to be detachable from the first socket 402 .
- the electric wire 405 is a communication line and is electrically connected to the control board 401.
- Electric wire 405 includes one or more conductors and an insulator covering the conductors. Signals related to control of the battery 100 and the like are transmitted between the control board 401 and the vehicle-side electric device 1000 through the electric wire 405 .
- One end of the electric wire 405 is connected to the first connector 404.
- the other end of the electric wire 405 is connected to an external connector 407.
- the electric wire 405 extends from the controller unit 400 side (one end side) toward the junction unit 700 side (other end side) that faces the controller unit 400 side along the width direction Y of the battery 100. ing.
- the electric wire 405 is covered by a harness 406.
- the electric wire 405 covered by the harness 406 is arranged between the controller unit 400 and the junction unit 700, facing the intermediate block 212. As shown in FIG. 4, the electric wire 405 faces the intermediate block 212 via a bus bar holder 321 that covers the plurality of stacked batteries 100. That is, the electric wire 405 indirectly faces the intermediate block 212 via the harness 406 and the bus bar holder 321 in a region extending from the controller unit 400 side to the junction unit 700 side.
- the harness 406 bundles and covers a plurality of electric wires 405.
- a harness 406 covering a plurality of electric wires 405 extends from the first connector 404 toward the upper surface of the cover 412, as shown in FIGS. 1 and 2.
- the harness 406 that extends to the top surface of the cover 412 extends toward the intermediate block 212 of the holding unit 200 while along the top surface of the cover 412, as shown in FIG.
- the harness 406 that extends to the end of the intermediate block 212 extends from the controller unit 400 toward the junction unit 700 along the upper surface of the intermediate block 212, as shown in FIG. That is, the harness 406 covering the plurality of electric wires 405 is placed between the controller unit 400 and the junction unit 700, facing the intermediate block 212 via the bus bar holder 321 shown in FIG.
- the external connection connector 407 is a connector provided at the tip of the electric wire 405 and electrically connected to an external device.
- the external connector 407 is connected to the tip of each electric wire 405, as shown in FIG.
- External connection connector 407 is connected to, for example, a socket of electrical equipment 1000 provided in a vehicle.
- the case 411 is formed into a box shape and includes an opening.
- the case 411 extends in the stacking direction X.
- Case 411 houses control board 401.
- the case 411 has the first socket 402 exposed to the outside at one end along the stacking direction X.
- the case 411 has the second socket 403 exposed to the outside at the other end along the stacking direction X.
- a recess (not shown) is formed in the case 411 on the side surface facing the first side plate 231 .
- the depression formed in the case 411 prevents interference with the fastening bolts 241 that fasten the first side plate 231 and the intermediate block 212, and the convex portion formed linearly in the stacking direction X on the first side plate 231. interference is prevented.
- the case 411 has fastening bolts 241 inserted into a plurality of insertion holes 411m formed on the side surface along the stacking direction X.
- the case 411 is fixed to the first side plate 231 with fastening bolts 241, as shown in FIGS. 2 and 19.
- the cover 412 is attached to the case 411 as shown in FIG. 2.
- the cover 412 seals the control board 401 together with the case 411, as shown in FIGS. 2 and 19.
- the fastening member 421 fastens the electric wire 405 via the covering member 422, as shown in FIGS. 1, 5, and 6.
- the fastening member 421 fixes the electric wire 405 to the case 721.
- the fastening member 421 is attached to the side surface of the case 721, as shown in FIG.
- the fastening member 421 includes a main body portion 421a that is joined to the case 721, and a fastening portion 421b that fastens the electric wire 405 covered by the covering member 422.
- the main body portion 421a is formed into a plate shape and is bonded to the case 721.
- the fastening portion 421b surrounds and fastens the fastened portion 422c of the covering member 422.
- the fastening portion 421b is formed in an annular shape and is attached to the main body portion 421a.
- the fastening portion 421b includes a binding band.
- the electric wire 405 is fastened through the covering member 422 using a binding band.
- Insulock registered trademark
- the fastening portion 421b fastens the electric wire 405 by binding the electric wire 405 in a ring shape through the covering member 422.
- the inner diameter (outer diameter D2) of the fastening portion 421b is smaller than the outer diameter D1 of the first covering portion 422a.
- the fastening portion 421b restricts movement of the electric wire 405 via the covering member 422. Specifically, the fastening portion 421b restricts movement of the electric wire 405 when the electric wire 405 is pulled, for example.
- the covering member 422 covers the electric wire 405, as shown in FIG.
- the covering member 422 includes a first covering part 422a, a second covering part 422b, and a fastened part 422c.
- the first covering portion 422a is a covering portion that covers the electric wire 405 and is exposed from the fastening portion 421b of the fastening member 421 to the control board 401 side.
- the first covering portion 422a is located between the fastening portion 421b of the fastening member 421 and the control board 401.
- the second covering portion 422b is exposed from the fastening portion 421b of the fastening member 421 to the external connector 407 side.
- the second covering portion 422b is located between the fastening portion 421b of the fastening member 421 and the external connection connector 407.
- the fastened portion 422c covers the electric wire 405 and is surrounded and fastened by the fastening portion 421b of the fastening member 421.
- the first covering portion 422a and the fastened portion 422c are continuous.
- the fastened portion 422c and the second covering portion 422b are continuous. That is, the first covering part 422a, the fastened part 422c, and the second covering part 422b are integrally formed.
- the outer diameter D1 of the first covering portion 422a is larger than the outer diameter D2 of the fastened portion 422c.
- the covering member 422 is constructed by, for example, wrapping a long tape around the electric wire 405.
- the tape has adhesive properties on the surface facing the electric wire 405.
- vinyl tape is used as the adhesive tape.
- the covering member 422 is fastened by a fastening portion 421b of the fastening member 421.
- the vinyl tape wrapped around the electric wire 405 is continuously provided in the entire area from the first covering part 422a to the second covering part 422b shown in FIG. That is, the electric wire 405 is also provided with vinyl tape on the fastened portion 422c fastened by the fastening portion 421b of the fastening member 421.
- the covering member 422 has an outer diameter that differs from the fastening portion 421b of the fastening member 421.
- the outer diameter of the first covering part 422a located on the harness 406 side with the fastening part 421b as a border is referred to as an outer diameter D1.
- the outer diameter of the second covering part 422b located on the side of the external connection connector 407 with the fastening part 421b as a border is referred to as D2.
- the outer diameter D1 is set larger than the outer diameter D2. That is, the inner diameter of the fastening portion 421b, which corresponds to the outer diameter D2, is set smaller than the outer diameter D1.
- the outer diameter D1 and the outer diameter D2 of the covering member 422 are set depending on the amount of vinyl tape wrapped around the electric wire 405. The outer diameter increases as the amount of vinyl tape wrapped around the electric wire 405 increases.
- the covering member 422 may have the following configuration. That is, the covering member 422 is made of, for example, a heat shrink tube. Specifically, first, a heat-shrinkable tube is inserted into a region of the electric wire 405 where the first covering portion 422a to the second covering portion 422b shown in FIG. 6 are to be provided, and the area is heat-shrinked. Next, a new heat-shrinkable tube is inserted into a region of the electric wire 405 covered with the heat-shrinkable tube where the first covering portion 422a shown in FIG. 6 is to be provided, and the wire is heat-shrinked. That is, the covering member 422 is constituted by a cylindrical tube with steps. The electric wire 405 covered by the heat shrink tube is fastened by the fastening portion 421b of the fastening member 421.
- the protective member 423 protects the electric wire 405, as shown in FIG.
- the protection member 423 is made of, for example, a cylindrical vinyl tube.
- the protection member 423 covers the outer periphery of the second covering part 422b of the electric wire 405, which faces the first covering part 422a via the fastened part 422c, and is joined to the covering member 422.
- the protection member 423 covers the outer periphery of the electric wire 405 on the distal side from the control board 401 rather than the fastened portion 422c.
- the protection member 423 is provided along the electric wire 405 up to the vicinity of the external connection connector 407 provided at the tip of the electric wire 405 .
- a part of the protection member 423 is covered by the second covering part 422b of the covering member 422, and is joined to the second covering part 422b.
- the inner circumferential surface 423a of the protection member 423 faces the outer circumferential surface 405a of the electric wire 405 with a gap therebetween.
- the outer diameter of the protection member 423 is illustrated to be smaller than the outer diameter of the first covering portion 422 a of the covering member 422 .
- the outer diameter of the protection member 423 may be larger than the outer diameter of the first covering portion 422a of the covering member 422.
- Voltage detection unit 500 detects the voltage of battery 100 based on control by controller unit 400.
- the constituent members included in the voltage detection unit 500 will be explained.
- the voltage detection terminal 501 has sufficient conductivity and is formed into a plate shape.
- the voltage detection terminal 501 is connected to the first end bus bar 301, the plurality of bus bars 302, the intermediate bus bar 303, and the second end bus bar 304 of the bus bar unit 300, respectively, as shown in FIGS. 4 and 21.
- the electric wire 502 is a second communication line connected to the voltage detection terminal 501 and electrically connected to the control board 401.
- the electric wire 502 is connected to each voltage detection terminal 501, as shown in FIGS. 4 and 21.
- the electric wire 502 is provided on the same surface as the electric wire 405 of the controller unit 400 and the battery 100, which is made up of a plurality of stacked batteries 100. corresponds to the top surface of As shown in FIG. 4, each electric wire 502 extends in the stacking direction X toward the end of the plurality of stacked batteries 100, that is, the second end block 213. That is, the electric wire 502 is perpendicular to the electric wire 405 that extends in the width direction Y while facing the intermediate block 212. Each electric wire 502 that has reached the second end block 213 extends in the width direction Y toward the control board 401 of the controller unit 400.
- the harness 503 bundles and covers each electric wire 502 at the end of the bus bar holder 321 of the bus bar unit 300.
- a harness 503 covering each electric wire 502 extends to the second socket 403 of the controller unit 400, as shown in FIG.
- the second connector 504 is connected to each electric wire 502 covered by the harness 503.
- the second connector 504 is inserted into the second socket 403 of the controller unit 400.
- Temperature measurement unit 600 measures the temperature of battery 100 based on control by controller unit 400.
- the temperature measurement unit 600 shown in FIGS. 1, 2, 4, 16, 19, and 20 includes a temperature sensor 601 and an electric wire 602.
- the constituent members included in the temperature measurement unit 600 will be explained.
- the temperature sensor 601 is connected to one of the six batteries 100 stacked between the first end block 211 and the intermediate block 212. As an example, this temperature sensor 601 is joined to the lid 102 of the battery 100 located fourth from the first end block 211 toward the intermediate block 212 in FIG. 4 . Further, as shown in FIG. 4, the temperature sensor 601 is connected to one of the six batteries 100 stacked between the intermediate block 212 and the second end block 213. As an example, the temperature sensor 601 is joined to the lid 102 of the battery 100 located third from the intermediate block 212 toward the second end block 213 in FIG. 4 .
- the electric wire 602 is a third communication line connected to the temperature sensor 601 and electrically connected to the control board 401.
- the electric wire 602 is connected to each temperature sensor 601, as shown in FIGS. 4 and 20.
- the electric wire 602 is provided on the same surface as the electric wire 405 of the controller unit 400 and the battery 100, which is made up of a plurality of stacked batteries 100. corresponds to the top surface of Each electric wire 602 extends in the stacking direction X from the temperature sensor 601 toward the intermediate block 212.
- Each electric wire 602 is orthogonal to the electric wire 405 of the controller unit 400 in the region from the temperature sensor 601 to the intermediate block 212.
- Each electric wire 602 is attached to the harness 406 of the controller unit 400.
- Each electric wire 602 extends along the width direction Y of the intermediate block 212 and the battery 100 to the first connector 404 of the controller unit 400.
- Each electric wire 602 is joined to a first connector 404.
- junction unit 700 is an input/output unit to which power from the plurality of batteries 100 is input/output. Junction unit 700 electrically connects the plurality of batteries 100 and electrical equipment 1000 based on control by controller unit 400. Junction unit 700 is generally called a junction box.
- the constituent members included in the junction unit 700 will be explained.
- the first relay bus bar 701 is joined to the first end bus bar 301, as shown in FIG. As shown in FIG. 20, the first relay bus bar 701 includes a plate-shaped first joint part 701a, a plate-shaped second joint part 701b, and a curved connection part 701c.
- a first insertion hole 701d into which the fastening bolt 311 of the busbar unit 300 is inserted is formed in the first joint portion 701a.
- a second insertion hole 701e into which a fastening bolt 723 is inserted is formed in the second joint portion 701b.
- a plate-shaped protrusion 701f that protrudes toward the case 721 is formed at the end of the second joint 701b.
- the first joint portion 701a is joined to the first end bus bar 301 via a fastening bolt 311.
- the second joint portion 701b is connected to the second relay bus bar 702 via a fastening bolt 723.
- the connecting portion 701c connects the first joint portion 701a and the second joint portion 701b.
- the connecting portion 701c protrudes toward the battery 100 side.
- the first relay bus bar 701 is made of copper, for example.
- the second relay bus bar 702 connects the first relay bus bar 701 and the fuse 703 to each other, as shown in FIGS. 16 and 20.
- the second relay bus bar 702 is formed by bending both ends of a long plate.
- the second relay bus bar 702 has a rectangular connecting portion 702a formed at its upper end.
- a second joint portion 701b of the first relay bus bar 701 is connected to the connection portion 702a.
- An insertion hole 702b into which a fastening bolt 723 is inserted is formed in the connecting portion 702a.
- the second relay bus bar 702 is made of copper, for example.
- the fuse 703 is shown in FIGS. 16 and 20, and is blown when a current exceeding a predetermined value is input for a predetermined period of time, cutting off conduction between the plurality of batteries 100 and the electrical device 1000.
- Fuse 703 is connected between second relay bus bar 702 and third relay bus bar 704 .
- the third relay bus bar 704 connects the fuse 703 and the relay 705 to each other, as shown in FIGS. 16 and 20.
- the third relay bus bar 704 is formed into a plate shape.
- the third relay bus bar 704 is made of copper, for example.
- the relay 705 is shown in FIGS. 16 and 20, and electrically connects or disconnects the plurality of batteries 100 and the electrical device 1000 based on control by the controller unit 400.
- Relay 705 is connected between third relay bus bar 704 and fourth relay bus bar 706. That is, the relay 705 is indirectly connected to the plurality of batteries 100.
- the fourth relay bus bar 706 connects the relay 705 and the current sensor 707, as shown in FIGS. 16 and 20.
- the fourth relay bus bar 706 is formed into a plate shape.
- the fourth relay bus bar 706 is made of copper, for example.
- the current sensor 707 is shown in FIGS. 16 and 20 and measures the current value of the power output from the plurality of batteries 100 based on the control by the controller unit 400.
- Current sensor 707 is connected between fourth relay bus bar 706 and positive connection terminal 708 . That is, the current sensor 707 is indirectly connected to the plurality of batteries 100.
- the positive electrode side connection terminal 708 is connected to the power cable of the electrical device 1000. That is, the positive electrode side connection terminal 708 corresponds to an input/output terminal for power on the positive electrode side of the assembled battery 1. As shown in FIGS. 16 and 20, the positive electrode side connection terminal 708 is formed by bending both ends of a long plate. The positive electrode side connection terminal 708 has a rectangular connection portion 708a formed at its upper end. A power cable of the electrical device 1000 is connected to the connection portion 708a. An insertion hole 708b into which a fastening bolt 723 is inserted is formed in the connecting portion 708a. The positive electrode side connection terminal 708 is electrically connected to the power cable of the electrical device 1000 via the fastening bolt 723. The positive electrode side connection terminal 708 is made of copper, for example.
- the negative electrode side connection terminal 709 is a bus bar.
- the negative electrode side connection terminal 709 electrically connects the plurality of batteries 100 electrically connected by the bus bar 302, the intermediate bus bar 303, etc., and an external device (power cable of the electrical device 1000).
- the negative electrode side connection terminal 709 is connected to the power cable of the electrical device 1000. That is, the negative electrode side connection terminal 709 corresponds to the negative electrode side power input/output terminal in the assembled battery 1.
- the negative electrode side connection terminal 709 is joined to the second end bus bar 304, as shown in FIG.
- the external shape of the negative electrode side connection terminal 709 is the same as the external shape of the first relay bus bar 701, as shown in FIGS. 8, 9, and 20. As shown in FIG.
- the negative electrode side connection terminal 709 extends from the battery 100 toward the case 721 and is formed in an elongated shape. That is, the negative electrode side connection terminal 709 extends in a long shape toward the width direction Y (crossing direction) that intersects with the stacking direction X of the battery 100 . As shown in FIG. 9, the negative electrode side connection terminal 709 includes a plate-shaped first joint part 709a, a plate-shaped second joint part 709b, and a curved connection part 709c.
- a first insertion hole 709d (first insertion hole) into which the fastening bolt 311 is inserted is formed in the first joint portion 709a of the negative electrode side connection terminal 709.
- the first joint portion 709a is joined to the second end bus bar 304 via a fastening bolt 311 inserted into the first insertion hole 709d.
- a second insertion hole 709e (second insertion hole) into which a fastening bolt 723 is inserted is formed in the second joint portion 709b.
- the second joint portion 709b is connected to the power cable of the electrical device 1000 via a fastening bolt 723 inserted into the second insertion hole 709e.
- a connecting portion 709c of the negative electrode side connecting terminal 709 connects the first connecting portion 709a and the second connecting portion 709b.
- the connecting portion 709c protrudes toward the battery 100 side.
- a rod-shaped protrusion 709f that protrudes toward the case 721 is formed at the end of the second joint 709b.
- the protruding portion 709f extends in the lateral direction of the negative electrode side connecting terminal 709 on the longitudinal end side of the negative electrode side connecting terminal 709, and projects toward the case 721 side.
- the protrusion 709f protrudes toward the case 721 side (the lower side along the height direction Z) than the length along the short side direction (the stacking direction X) of the negative electrode side connection terminal 709.
- the length is relatively long.
- the protruding portion 709f is formed on the side edge 709b1 of the negative electrode side connection terminal 709 at the tip farthest from the battery 100.
- the protrusion 709f partially protrudes from the side edge 709b1 toward the case 721.
- the protrusion 709f is formed at the center of the side edge 709b1.
- the negative electrode side connection terminal 709 is made of copper, for example.
- the electric wire 711 is a fourth communication line connected to the relay 705 and electrically connected to the control board 401. Electric wire 711 is shown in FIG. 20, and signals are transmitted from control board 401 to relay 705. One end of the electric wire 711 is connected to the first connector 404. The other end of the electric wire 711 is connected to the relay 705.
- the electric wires 711 are arranged between the controller unit 400 and the junction unit 700 so as to face the intermediate block 212 while being bundled in the harness 406 .
- the electric wire 712 is a fifth communication line connected to the current sensor 707 and electrically connected to the control board 401.
- the electric wire 712 is shown in FIG. 20, and a signal is transmitted from the current sensor 707 to the control board 401.
- One end of the electric wire 712 is connected to the first connector 404.
- the other end of the electric wire 712 is connected to the current sensor 707.
- the electric wires 712 are arranged between the controller unit 400 and the junction unit 700 so as to face the intermediate block 212 while being bundled in the harness 406 .
- the case 721 accommodates a second relay bus bar 702, a fuse 703, a third relay bus bar 704, a relay 705, a fourth relay bus bar 706, a current sensor 707, and a positive connection terminal 708.
- the case 721 is a holding member and holds the negative electrode side connection terminal 709 and the like.
- the case 721 is made of an insulating material and has insulating properties.
- a terminal (terminal of the power cable of the electrical device 1000) is attached to the case 721 via the negative electrode side connection terminal 709.
- the terminal of the power cable is, for example, a bus bar made of a metal plate.
- the case 721 is provided along the stacking direction X of the plurality of batteries 100.
- the case 721 has a rectangular first convex portion 721a formed on the upper surface adjacent to the first end block 211.
- the first convex portion 721a protrudes from the upper surface of the case 721 along the height direction Z.
- a rectangularly depressed first accommodating portion 721b is formed on the upper surface of the first convex portion 721a.
- the first accommodating portion 721b is formed by cutting out the portion of the first convex portion 721a that faces the second side plate 232 to the end of the first convex portion 721a.
- the first accommodating portion 721b has a first inner surface 721b1 and a second inner surface 721b2 located on both sides in the stacking direction X, as shown in FIG. Similarly, the first accommodating portion 721b has a third inner surface 721b3 at a portion located outside the assembled battery 1 in the width direction Y, as shown in FIG. On the other hand, the first accommodating portion 721b does not have an inner surface in a portion located inside the assembled battery 1. That is, the first accommodating portion 721b includes inner surfaces on three sides of the first convex portion 721a, excluding the portion facing the second side plate 232.
- the second joint portion 701b of the first relay bus bar 701 is attached to the first accommodating portion 721b of the case 721.
- an insertion portion 721c is formed in the first accommodating portion 721b.
- the insertion portion 721c is located near the third inner surface 721b3 in the first accommodating portion 721b.
- the protruding portion 701f of the first relay bus bar 701 is inserted into the insertion portion 721c.
- An insert nut 722 is embedded in the center of the first housing portion 721b.
- the case 721 has a rectangular second convex portion 721d formed on the upper surface adjacent to the second end block 213.
- the second convex portion 721d protrudes from the upper surface of the case 721 along the height direction Z.
- a second accommodating portion 721e and a third accommodating portion 721f which are recessed in a rectangular shape, are formed side by side along the stacking direction X.
- a connecting portion 708a of the positive electrode side connecting terminal 708 is attached to the second accommodating portion 721e of the case 721.
- an insert nut 722 is embedded in the center of the second housing portion 721e.
- the third accommodating portion 721f is a accommodating portion that accommodates the negative electrode side connection terminal 709. As shown in FIG. 10, the third accommodating portion 721f is located closer to the second end block 213 than the second accommodating portion 721e in the second convex portion 721d.
- the third accommodating portion 721f is formed by cutting out the portion of the second convex portion 721d that faces the second side plate 232 to the farthest end of the second convex portion 721d.
- the third accommodating portion 721f has a first inner surface 721f1 and a second inner surface 721f2 located on both sides in the stacking direction X, as shown in FIG.
- the third accommodating portion 721f has a third inner side surface 721f3 at a portion located outside the assembled battery 1 in the width direction Y.
- the first inner surface 721f1, the second inner surface 721f2, and the third inner surface 721f3 face the side surface (thickness portion) of the second joint portion 709b of the negative electrode side connection terminal 709 with a gap in between.
- the third accommodating portion 721f does not have an inner surface in a portion located inside the assembled battery 1. That is, the third accommodating portion 721f has inner surfaces on three sides of the second convex portion 721d, excluding the portion facing the second side plate 232.
- the second joint portion 709b of the negative electrode side connection terminal 709 is attached to the third accommodating portion 721f of the case 721. That is, the negative electrode side connection terminal 709 is accommodated in the third accommodating portion 721f.
- an insertion portion 721g is formed in the third accommodating portion 721f.
- the insertion portion 721g is a mounting portion, and is constituted by a hole formed in the third accommodating portion 721f of the case 721.
- the attachment portion functions as a regulating portion that suppresses displacement of the negative electrode side connection terminal 709 by regulating the movement of the protruding portion 709f.
- the insertion portion 721g is located near the third inner surface 721f3 in the third accommodating portion 721f.
- the protruding portion 709f of the negative electrode side connection terminal 709 is inserted and attached to the insertion portion 721g.
- a gap is provided between the insertion portion 721g and the protrusion 709f of the negative electrode side connection terminal 709. That is, the inside of the insertion portion 721g is sufficiently large compared to the outer shape of the protrusion 709f of the negative electrode side connection terminal 709. Therefore, the protrusion 709f of the negative electrode side connection terminal 709 is attached to the insertion portion 721g with at least a partial gap provided therebetween.
- An insert nut 722 is embedded in the center of the third housing portion 721f.
- the fastening bolts 241 are inserted into a plurality of insertion holes 721m formed in the side surface of the case 721 along the stacking direction X. As shown in FIG. 1, the case 721 is fixed to the second side plate 232 with fastening bolts 241.
- FIG. 12 shows the third housing portion 731f of the case 731 according to the first modification of the case 721 and the negative electrode side connection terminal 709.
- the second joint portion 709b of the negative electrode side connection terminal 709 is attached to the third accommodating portion 731f formed on the second convex portion 731d of the case 731. That is, the negative electrode side connection terminal 709 is accommodated in the third accommodating portion 731f.
- a protrusion 731h is formed on one side of the third accommodating portion 731f of the case 731 along the width direction Y of the battery 100.
- the protrusion 731h protrudes in the stacking direction X of the battery 100 from the side surface of the third accommodating portion 731f toward the second joint portion 709b of the negative electrode side connection terminal 709.
- a protrusion 731i is formed on the other side of the third accommodating portion 731f of the case 731 along the width direction Y of the battery 100.
- the protrusion 731i protrudes in the stacking direction X of the battery 100 from the side surface of the third accommodating portion 731f toward the second joint portion 709b of the negative electrode side connection terminal 709.
- the protrusion 731h and the protrusion 731i face each other along the stacking direction X of the battery 100.
- an insertion portion 731g is formed in the third accommodating portion 731f of the case 731.
- the insertion portion 731g is a mounting portion, and is configured by a hole formed in the third housing portion 731f of the case 731.
- the protrusion 709f of the negative electrode side connection terminal 709 is inserted and attached to the insertion portion 731g.
- a gap is provided between the insertion portion 731g and the protrusion 709f of the negative electrode side connection terminal 709.
- the insertion portion 731g is sufficiently spaced apart from the protrusion 731h and the protrusion 731i in the width direction Y of the battery 100.
- a fastening bolt 723 is located between the insertion portion 731g and the projections 731h and 731i.
- the second joint part 709b of the negative electrode side connection terminal 709 is positioned by the protrusion 731h, the protrusion 731i, and the insertion part 731g.
- FIG. 13 shows the third accommodating portion 741f of the case 741 according to the second modification of the case 721 and the negative electrode side connection terminal 709.
- the second joint portion 709b of the negative electrode side connection terminal 709 is attached to the third accommodating portion 741f formed in the second convex portion 741d of the case 741. That is, the negative electrode side connection terminal 709 is accommodated in the third accommodating portion 741f.
- a protrusion 709f of the negative electrode side connection terminal 709 is in contact with the side surface of the battery 100 along the stacking direction X, as shown by the broken line in FIG.
- the third accommodating part 741f of the case 741 does not provide an insertion part into which the protrusion 709f of the negative electrode side connection terminal 709 is inserted, and the protrusion 709f of the negative electrode side connection terminal 709 is inserted along the stacking direction X of the battery 100.
- the negative electrode side connection terminal 709 is positioned by contacting the side surface.
- the insert nut 722 is another mooring member and is embedded in the first accommodating part 721b, the second accommodating part 721e, and the third accommodating part 721f.
- a fastening bolt 723, which is a second fixing member, is anchored to the insert nut 722 embedded in the third housing portion 721f via the negative electrode side connection terminal 709.
- another mooring portion corresponding to a thread groove for mooring the fastening bolt 723 to the third accommodating portion 721f may be formed.
- the fastening bolt 723 is a second fixing member, and as shown in FIG. 16 and FIG. 701 and the second relay bus bar 702 are configured to be energized. Further, the fastening bolt 723 and the insert nut 722 are configured to connect the positive electrode side connecting terminal 708 and the power cable of the electrical device 1000 to each other, thereby allowing current to flow between the positive electrode side connecting terminal 708 and the power cable of the electrical device 1000. . Similarly, the fastening bolt 723 and the insert nut 722 are configured to be able to conduct electricity between the negative side connecting terminal 709 and the power cable of the electrical device 1000 by fastening the negative side connecting terminal 709 and the power cable of the electrical device 1000. There is.
- a controller unit 400 and a junction unit 700 are provided along the stacking direction X of a plurality of stacked batteries 100.
- the controller unit 400 and the junction unit 700 face each other along the width direction Y of the batteries 100 with the plurality of stacked batteries 100 interposed therebetween.
- the assembled battery 2 shown in FIG. 23 is a modification 1 regarding the layout of the constituent members of the assembled battery 1 shown in FIG. 22. That is, the assembled battery 2 shown in FIG. 23 is configured by changing the arrangement of the constituent members of the assembled battery 1 shown in FIG. 22.
- a controller unit 400 and a junction unit 700 are arranged next to each other along the width direction Y of the battery 100.
- the assembled battery 3 shown in FIG. 24 is a second modification regarding the layout of the constituent members of the assembled battery 1 shown in FIG. 22. That is, the assembled battery 3 shown in FIG. 24 is configured by changing the arrangement of the constituent members of the assembled battery 1 shown in FIG. 22.
- a controller unit 400 and a junction unit 700 are arranged next to each other along the stacking direction X of the batteries 100.
- the fastening bolt 241 (an example of a fastening member) connects at least one of the first end block 211 and the second end block 213 (an example of a holding member) and the case 721 (of the housing) of the junction unit 700 (an example of an input/output section). example).
- the first end block 211 and the second end block 213 and the case 721 of the junction unit 700 can be directly fixed without using a flexible buffer member (for example, a rubber patch). By doing so, it is possible to improve the ease of assembling the assembled battery 1 while firmly joining each other.
- the assembled battery 1 can be downsized.
- Junction unit 700 includes a relay. According to such a configuration, the operating sound of the relay 705 may propagate to the surrounding area via the second end block 213 and the like. On the other hand, if the assembled battery 1 is placed in a vehicle, for example, in a place that is sufficiently far from the riding area (driver's seat, etc.), the occupants of the vehicle (driver, etc.) may be concerned about the operating noise of the relay 705. There's nothing to do.
- the first end block 211 and the second end block 213 and the case 721 are fastened along the width direction Y of the battery 100 by fastening bolts 241.
- the first end block 211 and the second end block 213 and the case 721 of the junction unit 700 can be directly fixed along the width direction Y of the battery 100.
- the first end block 211 and the second end block 213 and the case 721 are fastened along the stacking direction X of the batteries 100 by fastening bolts 241.
- the first end block 211 and the second end block 213 and the case 721 of the junction unit 700 can be directly fixed along the stacking direction X of the batteries 100.
- the controller unit 400 is provided along the stacking direction X.
- the junction unit 700 and the controller unit 400 face each other along the width direction Y of the batteries 100 with the plurality of stacked batteries 100 interposed therebetween.
- the battery pack 1 of the embodiment can have the above-described layout depending on the specifications of, for example, a vehicle in which the battery pack 1 is installed.
- the controller unit 400 can be provided along the stacking direction X.
- the junction unit 700 and the controller unit 400 can be arranged next to each other along the width direction Y of the battery 100.
- the battery pack of Modification 1 of the embodiment can have the above-described layout depending on the specifications of, for example, a vehicle in which the battery pack is installed.
- the junction unit 700 and the controller unit 400 can be arranged next to each other along the stacking direction X.
- the battery pack of the second modification of the embodiment can have the above-described layout depending on the specifications of, for example, a vehicle in which the battery pack is installed. (Battery assembly of other embodiments)
- the assembled battery of the present invention is not limited to the configurations of the assembled battery 1, assembled battery 2, and assembled battery 3 described in the embodiments, but can be configured as appropriate based on the contents described in the claims.
- the battery 100 included in the assembled battery 1 is not limited to a lithium ion battery.
- the battery 100 can be applied to, for example, a nickel metal hydride battery or a lead battery.
- Battery 100 is not limited to a secondary battery.
- the battery 100 can be applied to, for example, a primary battery.
- the current collector of the battery 100 can be either a wound type or a laminated type.
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Abstract
Description
実施形態の組電池1の構成について、図1から図24を参照して説明する。
電池100は、図4に示すように、保持ユニット200を介して、積層方向Xに沿って積層されている。電池100は、例えば12個積層されている。電池100は、例えばリチウムイオン電池によって構成されている。図1から図5、図7、図8、図14から図19に示す電池100は、集電体、容器101、蓋102、正極端子103(電極端子)及び負極端子104(電極端子)を含んでいる。以下、電池100に含まれている構成部材について説明する。
保持ユニット200は、複数の電池100を保持している。積層方向Xに沿って隣り合う一の電池100と他の電池100において、一の電池100の正極端子103と、他の電池100の負極端子104が積層方向Xに並んでいる。図1から図5、図7から図9、図14から図19に示す保持ユニット200は、第1エンドスペーサ201、セルスペーサ202、第1中間スペーサ203、第2中間スペーサ204及び第2エンドスペーサ205を含んでいる。又、保持ユニット200は、第1エンドブロック211、中間ブロック212及び第2エンドブロック213を含んでいる。又、保持ユニット200は、絶縁部材221及びインサートナット222を含んでいる。又、保持ユニット200は、第1サイドプレート231、第2サイドプレート232及び締結ボルト241を含んでいる。以下、保持ユニット200に含まれている構成部材について説明する。
バスバーユニット300は、複数の電池100を電気的に接続する。図1、図2、図4、図5、図7から図9、図16、図19及び図21に示すバスバーユニット300は、第1エンドバスバ301、複数のバスバ302、中間バスバ303、第2エンドバスバ304、締結ボルト311及びバスバホルダ321を含んでいる。以下、バスバーユニット300に含まれている構成部材について説明する。
コントローラユニット400は、制御部である。コントローラユニット400は、複数の電池100の電力の入出力を制御する。コントローラユニット400は、一般的に、電池エネルギー制御モジュール(BECM)と称されている。図1から図6、図16、図19及び図20に示すコントローラユニット400は、制御基板401、第1ソケット402、第2ソケット403、第1コネクタ404、電線405、ハーネス406及び外部接続コネクタ407を含んでいる。又、コントローラユニット400は、ケース411及びカバー412を含んでいる。又、コントローラユニット400は、締結部材421、被覆部材422及び保護部材423を含んでいる。
電圧検出ユニット500は、コントローラユニット400による制御に基づいて、電池100の電圧を検出する。図1、図2、図4、図5、図7、図8、図16、図19及び図21に示す電圧検出ユニット500は、電圧検出端子501、電線502、ハーネス503及び第2コネクタ504を含んでいる。以下、電圧検出ユニット500に含まれている構成部材について説明する。
電線502は、コントローラユニット400の電線405と、積層された複数の電池100で構成される同一面上に設けられている、同一面上は、正極端子103と負極端子104が取り付けられた電池100の上面に相当する。各々の電線502は、図4に示すように、積層された複数の電池100の端部、すなわち、第2エンドブロック213に向かって、積層方向Xに延びている。すなわち、電線502は、中間ブロック212と対向しつつ幅方向Yに延びた電線405と直交している。第2エンドブロック213に到達した各々の電線502は、コントローラユニット400の制御基板401に向かって、幅方向Yに延びている。
温度測定ユニット600は、コントローラユニット400による制御に基づいて、電池100の温度を測定する。図1、図2、図4、図16、図19及び図20に示す温度測定ユニット600は、温度センサ601及び電線602を含んでいる。以下、温度測定ユニット600に含まれている構成部材について説明する。
ジャンクションユニット700は、複数の電池100の電力が入出力される入出力部である。ジャンクションユニット700は、コントローラユニット400による制御に基づいて、複数の電池100と電気機器1000を電気的に接続する。ジャンクションユニット700は、一般的に、ジャンクションボックスと称されている。図1から図10、図16、図19及び図20に示すジャンクションユニット700は、第1中継バスバ701、第2中継バスバ702、ヒューズ703、第3中継バスバ704、リレー705、第4中継バスバ706、電流センサ707、正極側接続端子708及び負極側接続端子709を含んでいる。又、ジャンクションユニット700は、電線711、電線712を含んでいる。又、ジャンクションユニット700は、ケース721、インサートナット722及び締結ボルト723を含んでいる。以下、ジャンクションユニット700に含まれている構成部材について説明する。
実施形態の組電池1の効果について説明する。
(他の実施形態の組電池)
本発明の組電池は、実施形態に記載された組電池1、組電池2及び組電池3の構成に限定されることなく、特許請求の範囲に記載された内容に基づいて適宜構成できる。
Claims (7)
- 積層された複数の電池と、
複数の前記電池の積層方向に沿った端部において前記積層方向と交差する交差方向に延び、複数の前記電池を保持する保持部材と、
複数の前記電池を制御する制御部と、
前記積層方向に沿って設けられ、前記制御部を介して複数の前記電池の電力が入出力される入出力部と、
前記保持部材と、前記入出力部の筐体とを直接的に締結した締結部材と、
を有する組電池。 - 前記入出力部は、リレーを含んでいる、
請求項1に記載の組電池。 - 前記保持部材と、前記筐体とは、前記締結部材によって前記交差方向に沿って締結されている、
請求項1又は2に記載の組電池。 - 前記保持部材と、前記筐体とは、前記締結部材によって前記積層方向に沿って締結されている、
請求項1から3のいずれか1項に記載の組電池。 - 前記制御部は、前記積層方向に沿って設けられ、
前記入出力部と、前記制御部とは、積層された前記複数の電池を介して、前記交差方向に沿って対向している、
請求項1から4のいずれか1項に記載の組電池。 - 前記制御部は、前記積層方向に沿って設けられ、
前記入出力部と、前記制御部とは、前記交差方向に沿って隣り合っている、
請求項1から4のいずれか1項に記載の組電池。 - 前記制御部は、前記積層方向に沿って設けられ、
前記入出力部と、前記制御部とは、前記積層方向に沿って隣り合っている、
請求項1から4のいずれか1項に記載の組電池。
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PCT/JP2022/016354 WO2023188213A1 (ja) | 2022-03-30 | 2022-03-30 | 組電池 |
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Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
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JP2007226996A (ja) * | 2006-02-21 | 2007-09-06 | Toyota Motor Corp | 電池パック構造 |
JP5555739B2 (ja) | 2012-04-11 | 2014-07-23 | 富士重工業株式会社 | 車両のバッテリ装置 |
JP2021044160A (ja) * | 2019-09-11 | 2021-03-18 | 株式会社豊田自動織機 | 蓄電装置 |
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- 2022-03-30 WO PCT/JP2022/016354 patent/WO2023188213A1/ja active Application Filing
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Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
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JP2007226996A (ja) * | 2006-02-21 | 2007-09-06 | Toyota Motor Corp | 電池パック構造 |
JP5555739B2 (ja) | 2012-04-11 | 2014-07-23 | 富士重工業株式会社 | 車両のバッテリ装置 |
JP2021044160A (ja) * | 2019-09-11 | 2021-03-18 | 株式会社豊田自動織機 | 蓄電装置 |
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