Assembled Battery
20190259995 ยท 2019-08-22
Inventors
Cpc classification
H01M50/24
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2220/20
ELECTRICITY
H01M50/00
ELECTRICITY
International classification
Abstract
An assembled battery comprises: a plurality of battery cells; a housing having a plurality of first housing spaces for housing one end side of the plurality of battery cells and a plurality of second housing spaces for housing an other end side of the plurality of battery cells, and holding the plurality of battery cells; an adhesive portion in contact with the plurality of battery cells and the housing, and adhering the plurality of battery cells to the housing; and an insulation sheet located between the plurality of battery cells, wherein the housing includes a first frame body defining the plurality of first housing spaces and a second frame body defining the plurality of second housing spaces, and the insulation sheet is interposed between the first frame body and the second frame body, and is in contact with the adhesive portion.
Claims
1.-9. (canceled)
10. An assembled battery comprising: a plurality of battery cells each having a substantially cuboid shape and including: a cap surface provided with a positive electrode terminal and a negative electrode terminal; an opposite surface to the cap surface; and four side surfaces; an insulation sheet located between the side surfaces of the plurality of battery cells; a housing for holding the plurality of battery cells, the housing having a first frame body for housing one end side, on one of the cap surface side and the opposite surface side, of each of the plurality of battery cells, and a second frame body for housing the other end side, on one of the cap surface side and the opposite surface side, of each of the plurality of battery cells; and an adhesive portion being in contact with the insulation sheet, each of the plurality of battery cells, and the housing, for adhering the battery cell to the housing, wherein, at an end on the one end side of the battery cell, the adhesive portion spreads from between the cap surface or the opposite surface of the battery cell and the first frame body to between an end surface of the insulation sheet and an end surface of the first frame body and to between a part of a surface, in a thickness direction, of the insulation sheet and the side surface of the battery cell, the part of the surface in the thickness direction of the insulation sheet being adjacent to the end surface of the insulation sheet, wherein the adhesive portion is not in contact with a center portion of the side surface of the battery cell, the center portion located between a cap surface side end and an opposite surface side end on the side surface of the battery cell, and wherein the adhesive portion is in contact with only at least one of the cap surface side end and the opposite surface side end on the side surface of the battery cell.
11. The assembled battery according to claim 10, wherein at least one of the first frame body, the second frame body, and the insulation sheet includes an adhesion facilitating portion that facilitates contact of the adhesive portion with the insulation sheet.
12. The assembled battery according to claim 11, wherein the adhesion facilitating portion is a groove provided at a side surface of at least one frame body of the first frame body and the second frame body.
13. The assembled battery according to claim 11, wherein the adhesion facilitating portion includes a projection provided on the insulation sheet, and a groove that is provided at an end surface of at least one frame body of the first frame body and the second frame body and into which the projection is fitted.
14. The assembled battery according to claim 10, wherein an end surface of at least one frame body of the first frame body and the second frame body is formed by an inclined surface that is inclined with respect to a thickness direction of the at least one frame body.
15. The assembled battery according to claim 10, wherein a housing groove extending in an extension direction of the first frame body and the second frame body and housing the insulation sheet is formed at an end surface of at least one frame body of the first frame body and the second frame body.
16. The assembled battery according to claim 15, wherein a groove wall defining the housing groove of the at least one frame body of the first frame body and the second frame body has an opening from the housing groove through to a lateral side of the at least one frame body.
17. The assembled battery according to claim 15, wherein the housing groove is defined by a groove wall that gradually decreases in groove width toward a groove bottom in a depth direction.
18. The assembled battery according to claim 10, wherein the housing includes: a lower case including the first frame body defining the plurality of first housing spaces; and a cell holder including the second frame body defining the plurality of second housing spaces, the adhesive portion includes: a case adhesive portion in contact with the plurality of battery cells and the lower case and adhering the plurality of battery cells to the lower case; and a holder adhesive portion in contact with the plurality of battery cells and the cell holder and adhering the plurality of battery cells to the cell holder, and the insulation sheet is in contact with at least one of the case adhesive portion and the holder adhesive portion.
19. The assembled battery according to claim 10, wherein the insulation sheet is in contact with a part of the adhesive portion adhering the battery cell to the second frame body of the housing.
20. The assembled battery according to claim 19, wherein the part of the adhesive portion adhering the battery cell to the second frame body of the housing spreads to between the battery cell and the insulation sheet.
21. The assembled battery according to claim 10, wherein the first frame body includes a first rib defining a housing space of the battery cell in the first frame body, and the adhesive portion adheres a side surface of the first rib to the battery cell, and adheres an upper end of the first rib to the end surface of the insulation sheet.
22. The assembled battery according to claim 21, wherein the second frame body includes a second rib defining a housing space of the battery cell in the second frame body, the insulation sheet is located between the first rib and the second rib, and a distance between the first rib and the battery cell between which the adhesive portion is interposed is longer than a distance between the second rib and the battery cell.
23. The assembled battery according to claim 10, wherein the center portion between the cap surface side end and the opposite surface side end on the side surface of the battery cell is apart from the insulation sheet.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0009] In the accompanying drawings:
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DETAILED DESCRIPTION
[0032] An embodiment of an assembled battery according to the present disclosure will be described below, with reference to
[0033]
[0034] The schematic structure of a power supply system 400 including the assembled battery 100 will be described below.
[0035] As illustrated in
[0036] The assembled battery 100 includes a metal oxide semiconductor field effect transistor (MOSFET) 210, a relay 220, a current sensor 230, a fusible link 240, the first secondary battery 130, and a battery controller (LBC) 140. The relay 220, the current sensor 230, the fusible link 240, and the first secondary battery 130 are connected in series in this order. The MOSFET 210 is connected in series with the second secondary battery 430 and the load 440.
[0037] In the assembled battery 100, an SSG terminal 250 is connected to the alternator 410, a LOAD terminal 260 is connected to the load 440, and a GND terminal 270 is used for grounding.
[0038] The relay 220 functions as a switch that connects the first secondary battery 130 in parallel with constituent elements outside of the assembled battery 100 in the power supply system 400 or disconnects the first secondary battery 130.
[0039] The current sensor 230 has an appropriate structure and uses an appropriate method to measure current flowing in a circuit that includes the first secondary battery 130.
[0040] The fusible link 240 is configured by a fuse body, a fuse housing made of insulating resin for holding the fuse body, and a cover made of insulating resin for covering the fuse housing. The fusible link 240 fuses when overcurrent occurs.
[0041] The first secondary battery 130 is constituted by an assembly of battery cells 150 housed in the battery module 2, as illustrated in
[0042] The MOSFET 210 functions as a switch that connects the second secondary battery 430 and the load 440 in parallel with other constituent elements in the power supply system 400 or disconnects the second secondary battery 430 and the load 440.
[0043] The LBC 140 is connected to the first secondary battery 130, and estimates the state of the first secondary battery 130. For example, the LBC 140 estimates the state of charge (SOC) of the first secondary battery 130.
[0044] The alternator 410 is an electrical generator, and is connected mechanically to the vehicle's engine. The alternator 410 generates electricity by being driven by the engine. The output voltage of the electric power that the alternator 410 generates by being driven by the engine is adjusted by a regulator, and the electric power can be supplied to the first secondary battery 130 in the assembled battery 100, the second secondary battery 430, and the load 440. The alternator 410 can also generate electricity by regeneration, for example when the vehicle slows down. The electric power that the alternator 410 generates by regeneration is used to charge the first secondary battery 130 and the second secondary battery 430.
[0045] The starter 420 includes a starter motor, for example. The starter 420 receives a power supply from at least one of the first secondary battery 130 and the second secondary battery 430 and starts the engine of the vehicle.
[0046] The second secondary battery 430 is, for example, constituted by a lead storage battery. The second secondary battery 430 supplies electric power to the load 440.
[0047] The load 440 includes, for example, the audio, air-conditioner, navigation system, and the like provided in the vehicle. The load 440 operates by consuming the supplied electric power. The load 440 operates by receiving the electric power supplied from the first secondary battery 130 while driving of the engine is suspended, and operates by receiving the electric power supplied from the alternator 410 and the second secondary battery 430 during driving of the engine.
[0048] The switch 450 is connected in series to the starter 420. The switch 450 connects the starter 420 in parallel with other constituent elements or disconnects the starter 420.
[0049] The controller 460 controls overall operations of the power supply system 400. The controller 460 is, for example, constituted by the electronic control unit or engine control unit (ECU) of the vehicle. The controller 460 controls operations of the switch 450, the MOSFET 210, and the relay 220, to supply power with the alternator 410, the first secondary battery 130, and the second secondary battery 430 and charge the first secondary battery 130 and the second secondary battery 430.
[0050] In the assembled battery 100 in this embodiment, the MOSFET 210, the relay 220, the current sensor 230, the fusible link 240, the SSG terminal 250, the LOAD terminal 260 and the GND terminal 270 are attached to the auxiliary module 3. In the assembled battery 100 in this embodiment, the three terminals, i.e. the SSG terminal 250, the LOAD terminal 260 and the GND terminal 270, project to the outside of the upper case 300 when the upper case 300 is attached.
[0051] The assembled battery 100 in this embodiment will be described in detail below.
[0052] As illustrated in
[0053] The battery cells 150 have a substantially cuboid shape. The assembled battery 100 in this embodiment includes the plurality of battery cells 150. Specifically, the assembled battery 100 in this embodiment houses five battery cells 150. However, the number of battery cells 150 that the assembled battery 100 can house is not limited to five, and may be appropriately determined in accordance with factors such as the maximum output of the battery cells 150 and the electric power consumed by driven devices of the vehicle or the like.
[0054]
[0055] As illustrated in
[0056] The surfaces of the battery cell 150 other than the cap surface 151 are even flat surfaces. Specifically, a lower surface 7 of the battery cell 150 opposite to the cap surface 151 and four side surfaces 8 of the battery cell 150 other than the cap surface 151 and the lower surface 7 are even flat surfaces.
[0057]
[0058] As illustrated in
[0059] The side walls 112b and 112d each include an attachment mechanism 114 for attaching the assembled battery 100 to the vehicle on the outside of the lower case 110 (i.e. on the opposite side from the space 110a). The shape of the attachment mechanism 114 and the position on the side walls 112b and 112d are determined appropriately in accordance with the method of attachment to the vehicle.
[0060] The side walls 112 have engaging holes 115 for engagement with the cell holder 120 on the opening 113 side. In this embodiment, each side wall 112 has three engaging holes 115, located at the center and near the edges of the opening 113.
[0061] Ribs 116 as a first frame body that project upward and extend in a direction orthogonal to the vertical direction are provided on the upper surface of the bottom wall 111 on the inside of the lower case 110 (i.e. the space 110a side). The ribs 116 as the first frame body indicate the position of the battery cells 150 to be housed, and prevent misalignment of the housed battery cells 150. The ribs 116 are also spacers for maintaining a space between battery cells 150. The below-described insulation sheet 6 is inserted in the space between adjacent battery cells 150 formed by the ribs 116.
[0062] The height of the ribs 116 as the first frame body is less than the height of the side walls 112. In this embodiment, four ribs 116 are provided parallel to the side walls 112b and 112d at equal intervals, as illustrated in
[0063] The position and size of the ribs 116 are appropriately determined in accordance with the shape, number, and the like of the battery cells 150 housed by the lower case 110, and are not limited to the position and size described in this embodiment.
[0064] Although the first frame body in this embodiment is constituted by the ribs 116 that project upward from the upper surface of the bottom wall 111 of the lower case 110 and extend in a direction orthogonal to the vertical direction (the direction in which the side walls 112a and 112c face in this embodiment), the first frame body is not limited to the shape of the ribs 116 described this embodiment, and may be any first frame body that defines the plurality of first housing spaces 15 for housing one end side of the battery cells 150. For example, a first frame body extending across the facing side walls 112 without being connected to the bottom wall 111, unlike the ribs 116 projecting from the upper surface of the bottom wall 111 in this embodiment, may be used.
[0065] The cell holder 120 is attached at the cap surface 151 side of the battery cell 150, i.e. at the opening 113 side of the lower case 110.
[0066] As illustrated in
[0067] The outer frame 121 has four side walls 121a, 121b, 121c, and 121d. The four side walls 121a, 121b, 121c, and 121d are disposed at positions corresponding to the four side walls 112a, 112b, 112c, and 112d of the lower case 110 when the outer frame 121 and the lower case 110 are engaged.
[0068] The outer frame 121 includes screw hole forming portions 123, at the edges of the side walls 121b and 121d, that each have a screw hole 123a for fixing the auxiliary module 3 to the cell holder 120 by screwing. The screw hole forming portion 123 is formed to project outward from the side walls 121b and 121d. The screw hole 123a is formed in the screw hole forming portion 123 to allow insertion of a screw from the upper side.
[0069] The outer frame 121 has screw holes 123b, at the upper side of the side walls 121b and 121d, for screwing bus bars of the auxiliary module 3, i.e. the below-described total plus copper bus bar 286 and total minus copper bus bar 285 (
[0070] The outer frame 121 has an engaging insertion portion 121e with a predetermined height around the entire periphery, as illustrated in
[0071] On each of the side walls 121a, 121b, 121c, and 121d, the engaging insertion portion 121e includes three engaging claws 128 located at the center and near the edges. The engaging claws 128 are provided at positions corresponding to the engaging holes 115 of the lower case 110. To engage the cell holder 120 with the lower case 110, the engaging claws 128 of the cell holder 120 are fitted into and engaged with the engaging holes 115 of the lower case 110. The cell holder 120 is thus engaged with the lower case 110. The positions and numbers of the engaging holes 115 and the engaging claws 128 are not limited to the example illustrated in this embodiment, and may be determined as appropriate.
[0072] The outer frame 121 has engaging holes 129a on the upper side of the side walls 121a and 121c near the screw holes 123b. The engaging holes 129a are provided to project to the outside from the outer frame 121, and are substantially rectangular holes in a top view. The engaging holes 129a are used when the cell holder 120 and the auxiliary module 3 are attached.
[0073] The outer frame 121 has an engaging hole 129b at the upper side near the center of each side wall 121a, 121b, 121c, and 121d. The engaging holes 129b are provided to project to the outside from the outer frame 121, and are substantially rectangular holes in a top view. The engaging holes 129b are used when attaching the cell holder 120 and the upper case 300 (
[0074] The holding lid 122 will be described in detail below. The holding lid 122 holds the battery cells 150 housed in the lower case 110, from the upper side.
[0075] The holding lid 122 has openings 124a at positions corresponding to the positive electrode terminals 152 and negative electrode terminals 153 of the battery cells 150 when the cell holder 120 and the lower case 110 are engaged. Hence, the positive electrode terminals 152 and negative electrode terminals 153 of the battery cells 150 are exposed to the upper side of the holding lid 122 through the openings 124a when the cell holder 120 and the lower case 110 are engaged.
[0076] The holding lid 122 has openings 124b at positions corresponding to the safety valves 154 of the battery cells 150 when the cell holder 120 and the lower case 110 are engaged. Hence, gas discharged from the safety valves 154 is discharged outside the battery cells 150 through the openings 124b when the cell holder 120 and the lower case 110 are engaged.
[0077] Adjacent terminals from among the positive electrode terminals 152 and the negative electrode terminals 153, which are exposed through the openings 124a and arranged in a line, are electrically connected through the inter-cell bus bars 160, except for a positive electrode terminal 152 connected to the fusible link 240 and a negative electrode terminal 153 connected to the GND terminal 270.
[0078] The holding lid 122 includes beads 125 between inter-cell bus bars 160 that are attached to the cell holder 120 and between an inter-cell bus bar 160 and the total plus terminal bus bar 165 or the total minus terminal bus bar 164, to prevent electrical connection between the bus bars and to position the bus bars. The beads 125 project toward the upper side of the holding lid 122.
[0079] The holding lid 122 also includes screw hole forming portions 126 for fixing the LBC 140 to the upper side, as illustrated in
[0080] Ribs 127 as a second frame body that project downward and extend in a direction orthogonal to the vertical direction are provided on the lower surface of the holding lid 122 of the cell holder 120 facing the battery cells 150. The rib 127 as the second frame body prevent misalignment of the housed battery cells 150. The ribs 127 are also spacers for maintaining a space between battery cells 150.
[0081] The height of the rib 127 as the second frame body from the lower surface of the holding lid 122 is less than the height of the part of the outer frame 121 projecting from the lower surface of the holding lid 122. In this embodiment, four ribs 127 are provided parallel to the side walls 121b and 121d at equal intervals, as illustrated in
[0082] The rib 127 as the second frame body of the cell holder 120 are provided in a direction and at positions corresponding to the ribs 116 as the first frame body of the lower case 110 when the cell holder 120 and the lower case 110 are engaged. More specifically, when the cell holder 120 and the lower case 110 are engaged, the upper end of each battery cell 150 is housed in the second housing space 16, and the lower end of each battery cell 150 is housed in the first housing space 15, and the ribs 116 as the first frame body and the rib 127 as the second frame body face each other in the vertical direction at positions between adjacent battery cells 150. Therefore, the space between adjacent battery cells 150 formed by the ribs 116 described above is the same as the space between adjacent battery cells 150 formed by the ribs 127. The below-described insulation sheet 6 is placed in this space.
[0083] The bus bars that electrically connect the plurality of battery cells 150 held by the lower case 110 and the cell holder 120 will be described below.
[0084] The terminal connectors 162 have openings for welding 162a at the center, for example as illustrated in
[0085] Each terminal connector 162 has a voltage sensor attachment terminal 163 that projects toward the opening 124b (
[0086] The total plus terminal bus bar 165 (
[0087] The total minus terminal bus bar 164 (
[0088] The total plus terminal bus bar 165 and the total minus terminal bus bar 164 are, for example, made of a conductive metal such as aluminum. The total plus terminal bus bar 165 and the total minus terminal bus bar 164 each have one terminal connector 162 (
[0089] The adhesive portion 5 is in contact with each battery cell 150 and the housing 4, and adheres the battery cell 150 to the housing 4. The adhesive portion 5 in this embodiment is constituted by an adhesive interposed between each battery cell 150 and the housing 4. The adhesive as the adhesive portion 5 may be any adhesive that can adhere the battery cells 150 to the housing 4, such as an epoxy adhesive.
[0090]
[0091] The adhesive as the adhesive portion 5 need not necessarily be in contact with the whole battery cell 150. The adhesive as the adhesive portion 5 in this embodiment is in contact with the cap surface 151 of each battery cell 150, the lower surface 7 of the battery cell 150 opposite to the cap surface 151, and the lower end and the upper end of the side surfaces 8 of the battery cell 150.
[0092] More specifically, in this embodiment, an adhesive portion (hereafter referred to as first adhesive portion 5a) in contact with the cap surface 151 of the battery cell 150 from among the adhesive portions 5 is in contact with only the periphery of the cap surface 151 so as not to be in contact with the positive electrode terminal 152, the negative electrode terminal 153, and the safety valve 154 and is interposed between the cap surface 151 and the lower surface of the holding lid 122 of the cell holder 120, thus adhering the cap surface 151 to the lower surface of the holding lid 122 .
[0093] An adhesive portion (hereafter referred to as second adhesive portion 5b) in contact with the lower surface 7 of the battery cell 150 from among the adhesive portions 5 is in contact with at least part of the lower surface 7 and is interposed between the lower surface 7 and the upper surface of the bottom wall 111 of the lower case 110, thus adhering the lower surface 7 to the upper surface of the bottom wall 111.
[0094] An adhesive portion (hereafter referred to as third adhesive portion Sc) in contact with the upper end of the side surface 8 of the battery cell 150 from among the adhesive portions 5 is interposed between the upper end of the side surface 8 and the side surface of the rib 127 as the second frame body of the cell holder 120, thus adhering the upper end of the side surface 8 to the side surface of the rib 127.
[0095] An adhesive portion (hereafter referred to as fourth adhesive portion 5d) in contact with the lower end of the side surface 8 of the battery cell 150 from among the adhesive portions 5 is interposed between the lower end of the side surface 8 and the side surface of the ribs 116 as the first frame body of the lower case 110, thus adhering the lower end of the side surface 8 to the side surface of the rib 116.
[0096] In other words, of the adhesive portions 5, the first adhesive portion 5a and the third adhesive portion 5c are holder adhesive portions adhering the battery cell 150 to the cell holder 120, and the second adhesive portion 5b and the fourth adhesive portion 5d are case adhesive portions adhering the battery cell 150 to the lower case 110.
[0097] The position of the adhesive as the adhesive portion 5 may be any position where each battery cell 150 can be adhesively fixed to the housing 4 and the below-described insulation sheet 6 can be adhesively fixed, and is not limited to the position illustrated in
[0098] Although the first adhesive portion 5a and the third adhesive portion 5c as the holder adhesive portions in this embodiment are connected and form a single adhesion region, the first adhesive portion 5a and the third adhesive portion 5c may be separate from each other. Although the second adhesive portion 5b and the fourth adhesive portion 5d as the case adhesive portions in this embodiment are connected and form a single adhesion region, the second adhesive portion 5b and the fourth adhesive portion 5d may be separate from each other.
[0099] Although the adhesive as the second adhesive portion 5b is applied between the battery cell 150 and the bottom surface of the lower case 110 (in this embodiment, the upper surface of the bottom wall 111) in this embodiment, another filler may be interposed instead of the adhesive. The filler preferably has elasticity. By applying the filler with elasticity between the battery cells 150 and the bottom surface of the lower case 110, vibration occurring during running of the vehicle provided with the assembled battery 100 is absorbed by the filler. Therefore, vibration is not easily transmitted to the battery cells 150.
[0100] The insulation sheet 6 is located between the plurality of battery cells 150, as illustrated in
[0101] The insulation sheet 6 is interposed between the rib 116 as the first frame body and the rib 127 as the second frame body, and also in contact with the adhesive portion 5. Thus, the insulation sheet 6 is fixed in place by the adhesive as the adhesive portion 5, between the ribs 116 and 127. In this way, the insulation sheet 6 is prevented from moving between the battery cells 150 due to, for example, vibration during running of the vehicle on which the assembled battery 100 is mounted, so that abnormal noise can be suppressed.
[0102] More specifically, the third adhesive portion 5c in this embodiment spreads more downward than the lower end of the rib 127 as the second frame body, and the upper end of the insulation sheet 6 is in contact with the third adhesive portion 5c at a position lower than the lower end of the rib 127. The fourth adhesive portion 5d in this embodiment spreads more upward than the upper end of the rib 116 as the first frame body, and the lower end of the insulation sheet 6 is in contact with the fourth adhesive portion 5d at a position higher than the upper end of the rib 116.
[0103] Although the insulation sheet 6 in this embodiment is fixed in place in a state of being in contact with the third adhesive portion 5c as the holder adhesive portion and the fourth adhesive portion 5d as the case adhesive portion, the present disclosure is not limited to this structure. For example, the insulation sheet 6 may be fixed in place in contact with only one of the holder adhesive portion and the case adhesive portion.
[0104] Assembly of the battery module 2 will be described below.
[0105]
[0106] The positions to which the adhesive is applied are not limited to the positions illustrated in
[0107]
[0108] Here, the adhesive as the third adhesive portion 5c applied in the step illustrated in
[0109]
[0110]
[0111] In this embodiment, when the lower case 110 is engaged with the cell holder 120, the end of each battery cell 150 on the lower surface 7 side is housed in the first housing space 15 (
[0112] When each battery cell 150 is housed in the first housing space 15 of the lower case 110 and the second housing space 16 of the cell holder 120, the distance between the battery cell 150 and the rib 127 is shorter than the distance between the battery cell 150 and the rib 116. The shorter distance between the battery cell 150 and the rib 127 is intended to enhance the positioning accuracy of the positive electrode terminal 152, the negative electrode terminal 153, etc. on the cap surface 151 with respect to the cell holder 120. The positioning accuracy of the lower surface 7 with respect to the lower case 110 need not be as high as the positioning accuracy of the cap surface 151 with respect to the cell holder 120. Hence, the distance between the battery cell 150 and the rib 116 is relatively long so that assembling tolerance can be absorbed. As illustrated in
[0113]
[0114] Following this, the LBC 140 (
[0115] Although the battery module 2 in this embodiment is assembled through these steps, the assembly is not limited to these steps. For example, without turning the lower case 110 and the cell holder 120 upside down, the battery cells 150 may be inserted in the space 110a (
[0116] The auxiliary module 3 of the assembled battery 100 in this embodiment will be described below. As illustrated in
[0117] As illustrated in
[0118] The upper case 300 will be described below. As illustrated in
[0119] The upper case 300 also includes engaging claws 320 for engaging with the cell holder 120 at the lower side of the four side surfaces. The engaging claws 320 are provided at positions corresponding to the engaging holes 129b when the cell holder 120 and the upper case 300 are attached together. The engaging claws 320 extend toward the bottom from the outer side of each side surface. The tips of the engaging claws 320 are wedge-shaped in a side view. The engaging claws 320 engage with the engaging holes 129b by the tips of the engaging claws 320 being fitted into the engaging holes 129b.
[0120] The upper case 300 includes bus bar protectors 330 for protecting the total plus copper bus bar 286 and the total minus copper bus bar 285 when the cell holder 120 and the upper case 300 are attached together.
[0121] Assembly of the entire assembled battery 100 will be described below. First, attachment of the battery module 2 and the auxiliary module 3 will be described. The battery module 2 and the auxiliary module 3 are attached together by attaching the cell holder 120 to the auxiliary pedestal 200. The cell holder 120 and the auxiliary pedestal 200 are attached together by the engaging claws 205 being fitted into and engaged with the engagement holes 129a (
[0122] Furthermore, as illustrated in
[0123] The upper case 300 is then attached. The upper case 300 is engaged with the cell holder 120 by the engaging claws 320 being fitted into and engaged with the engagement holes 129b of the cell holder 120. By the upper case 300 thus being engaged with the cell holder 120, assembly of the entire assembled battery 100 is complete.
[0124] A modification of the ribs 116 as the first frame body, the ribs 127 as the second frame body, and the insulation sheets 6 in this embodiment will be described below, with reference to
[0125]
[0126] The rib 116 as the first frame body illustrated in
[0127]
[0128] With the rib 127 as the second frame body illustrated in
[0129] The thickness of the rib 127 at the position of the groove 9b is preferably less than the thickness of the insulation sheet 6. With such a structure, the adhesive as the third adhesive portion 5c moving through the groove 9b can easily come into contact with not only the surface of the insulation sheet 6 in the thickness direction but also the upper end surface of the insulation sheet 6 at the open position of the lower end of the groove 9b. As a result of the adhesive being in contact with the upper end surface, too, the area of the insulation sheet 6 in contact with the adhesive increases, so that the insulation sheet 6 can be adhesively fixed more firmly.
[0130] While
[0131] The grooves 9a and 9b as the adhesion facilitating portion illustrated in
[0132] Although both of the grooves 9a and 9b are formed in
[0133]
[0134] In the example illustrated in
[0135] The insulation sheet 6 differs from the insulation sheet 6 in the foregoing embodiment in that it has the projections 6a at the upper end and the lower end, but is the same as the insulation sheet 6 in the other structures. The rib 116 differs from the rib 116 in the foregoing embodiment in that it has, at the top end surface, a groove 10a that passes through the rib 116 in the thickness direction and into which the projection 6a at the lower end of the insulation sheet 6 is fitted, but is the same as the rib 116 in the other structures. The rib 127 differs from the rib 127 in the foregoing embodiment in that it has, at the top end surface, a groove 10b that passes through the rib 127 in the thickness direction and into which the projection 6a at the upper end of the insulation sheet 6 is fitted, but is the same as the rib 127 in the other structures.
[0136] With the projections 6a at the upper and lower ends of the insulation sheet 6, the groove 10a of the rib 116, and the groove 10b of the rib 127, the third adhesive portion 5c and the fourth adhesive portion 5d (
[0137] In the example illustrated in
[0138] As illustrated in
[0139]
[0140] More specifically, a top end surface 516a of the rib 516 as the first frame body and a top end surface 527a of the rib 527 as the second frame body are each a uniform inclined surface that is inclined with respect to the thickness direction of the rib as the frame body, as illustrated in
[0141] As a result of at least one of the top end surface 516a of the rib 516 and the top end surface 527a of the rib 527 being an inclined surface with respect to the thickness direction, the insulation sheet 6 is guided by the inclined surface and approaches one side of the adjacent battery cells 150. At this side, the insulation sheet 6 can be brought into contact with the adhesive portion 5 (
[0142]
[0143] As illustrated in
[0144] As a result of forming the housing grooves 11a and 11b for housing the insulation sheet 6 at the end surfaces of the first frame body and the second frame body, the positioning of the insulation sheet 6 can be performed more reliably. In the case where such housing grooves 11a and 11b are provided, there is a possibility that the groove walls defining the housing grooves 11a and 11b hinder the contact of the adhesive as the adhesive portion 5 with the insulation sheet 6. Accordingly, it is preferable to form an opening 12a from the housing groove 11a through to the lateral side of the rib 616 at a groove wall 11a1 defining the housing groove 11a of the rib 616 as the first frame body, as illustrated in
[0145] Although the opening 12a is formed in the rib 616 as the first frame body and the opening 12b is formed in the rib 627 as the second frame body in the example illustrated in
[0146] Although the housing grooves 11a and 11b in the example illustrated in
[0147] The assembled battery according to the present disclosure is not limited to the specific structures illustrated in the foregoing embodiments and modifications, and various changes are possible without departing from the scope of the claims. For example, appropriately combining structures illustrated in the foregoing embodiments and modifications to form another structure is also included in the technical scope of the present disclosure.
REFERENCE SIGNS LIST
[0148] 2 battery module [0149] 3 auxiliary module [0150] 4, 4, 4, 504, 604 housing [0151] 5 adhesive portion [0152] 5a first adhesive portion (holder adhesive portion) [0153] 5b second adhesive portion (case adhesive portion) [0154] 5c third adhesive portion (holder adhesive portion) [0155] 5d fourth adhesive portion (case adhesive portion) [0156] 6, 6 insulation sheet [0157] 6a projection [0158] 7 lower surface of battery cell [0159] 8 side surface of battery cell [0160] 9a, 9b groove [0161] 10a, 10b groove [0162] 11a, 11b housing groove [0163] 11a1, 11b1 groove wall [0164] 12a, 12b opening [0165] 15 first housing space [0166] 16 second housing space [0167] 100 assembled battery [0168] 110, 110, 110, 510, 610 lower case [0169] 110a space [0170] 111, 111 bottom wall [0171] 112, 112a, 112b, 112c, 112d, 121a, 121b, 121c, 121d side wall [0172] 113, 124a, 124b, 310a, 310b, 310c opening [0173] 114 attachment mechanism [0174] 115, 129a, 129b engaging hole [0175] 116, 116, 116, 516, 616 rib (first frame body) [0176] 120, 120, 120, 520, 620 cell holder [0177] 121 outer frame [0178] 121e engaging insertion portion [0179] 122, 122 holding lid [0180] 122a frame portion [0181] 123, 126 screw hole forming portion [0182] 123a, 123b, 126a, 163a screw hole [0183] 123c bus bar support [0184] 125 bead [0185] 127, 127, 127, 527, 627 rib (second frame body) [0186] 128, 205, 320 engaging claw [0187] 130 first secondary battery [0188] 140 LBC (battery controller) [0189] 150 battery cell [0190] 151 cap surface of battery cell [0191] 152 positive electrode terminal [0192] 153 negative electrode terminal [0193] 154 safety valve [0194] 160 inter-cell bus bar [0195] 161 convex portion [0196] 162 terminal connector [0197] 162a opening for welding [0198] 163 voltage sensor attachment terminal [0199] 164 total minus terminal bus bar [0200] 165 total plus terminal bus bar [0201] 166 external connector [0202] 166a insertion hole [0203] 200 auxiliary pedestal [0204] 210 MOSFET [0205] 220 relay [0206] 230 current sensor [0207] 240 fusible link [0208] 250 SSG terminal [0209] 260 LOAD terminal [0210] 270 GND terminal [0211] 280, 281, 282, 283, 284 copper bus bar [0212] 285 total minus copper bus bar [0213] 286 total plus copper bus bar [0214] 300 upper case [0215] 330 bus bar protector [0216] 340, 350 bolt [0217] 400 power supply system [0218] 410 alternator [0219] 420 starter [0220] 430 second secondary battery [0221] 440 load [0222] 450 switch [0223] 460 controller [0224] 516a, 616a, 527a, 627a top end surface [0225] W groove width