The technology disclosed herein relates to a connection module.
A connection module for an electric automobile or a hybrid automobile includes a battery block and a connection module. The battery block includes battery cells and the connection module is attached to the battery block to connect the battery cells. A flexible printed wiring board with bus bars has been known as such a connection module (refer to Patent Document 1). The flexible printed wiring board includes a flexible printed circuit board (FPC) and bus bars that are connected to the flexible printed circuit board and connect electrode terminals of adjacent power storage elements.
[Patent Document 1] Japanese Unexamined Patent Application Publication No. 2014-86246
In the above configuration, a great number of bus bars are necessary for a great number of battery cells. If one flexible printed circuit board includes wirings for all of the bus bars, a width of the flexible printed circuit board is increased. However, the connection module arranged on the battery block has a limited wire routing space. Therefore, mounting of the connection module may be difficult if the width of the flexible printed circuit board becomes too large.
A connection module described herein is a connection module to be mounted on a power storage element group including power storage elements having electrode terminals and connecting the power storage elements. The connection module includes a flexible printed circuit board including routing portions, and connection members connected to the routing portions and connecting the electrode terminals of the power storage elements that are adjacent to each other. The flexible printed circuit board includes a multi-layered portion including the routing portions that are overlapped with each other by folding the flexible printed circuit board.
According to such a configuration, the width of the wiring portions can be reduced compared to a configuration in which the wirings for all the connecting members are arranged in a single layer routing structure. Therefore, the routing portions can be mounted within a limited routing space on the power storage element group.
In the above configuration, the connection module may further include a holding member that holds the connection members and the multi-layered portion.
According to such a configuration, the wiring portions that are overlapped with each other and the connecting members are collectively held and collectively mounted in a predefined position on the power storage element group. This improves operability of mounting the connection module on the power storage element group.
According to the connection module described herein, routing portions can be arranged within a limited wire routing space on a power storage element group.
One embodiment will be described with reference to
[Power Storage Element 150 and Power Storage Element Group 150G]
The power storage element 150 is a secondary battery, for example. As illustrated in
As illustrated in
[Connection Module 1]
The connection module 1 is mounted on a surface (an upper surface in
(Bus Bar 10)
Each of the bus bars 10 is made of metal and includes an electrode connection portion 11, a FPC connection portion 15, and a stopper wall 16, as illustrated in
The electrode connection portion 11 has a rectangular plate shape as a whole and has two electrode insertion holes 12 through which the electrode terminals 151A, 151B are inserted, respectively, and two recessed portions 13 to be fitted to the resin protector 50. The electrode connection portion 11 includes one of the electrode insertion holes 12 close to one of short sides 11S thereof and another one close to another one of the short sides 11S. One of the two recessed portions 13 is recessed from one of the short sides 11S of the electrode connection portion 11 and another one is recessed from the other one of the short sides 11S.
The electrode connection portion 11 has two long sides 11LA, 11LB and a connection recess 14 recessed from the long side 11LA. The connection recess 14 is defined by a first edge 14A that is parallel to the long side 11LA and two first side edges 14B that connect ends of the first edge 14A to the long side 11LA. The FPC connection portion 15 is a quadrangular plate portion that extends from the first edge 14A along a same plane surface as the electrode connection portion 11. The stopper wall 16 is a short wall plate portion that extends vertically from a distal end of the FPC connection portion 15.
(FPC 20)
The FPC 20 is for electrically connecting the bus bars 10 and an ECU (electric control unit, not illustrated) and is not illustrated in detail. The FPC 20 includes conductive wirings made of a copper foil and an insulating resin film that covers both surfaces of the conductive wirings. As illustrated in
As illustrated in
The first wiring portion 23 includes a first expandable/contractable portion 23A extending from the external connection portion 22 and a first bus bar mount portion 23B that is continuous from an extended end of the first expandable/contractable portion 23A. The first wiring portion 23 is a thin elongated belt shaped portion as a whole. The first expandable/contractable portion 23A is slightly bent along fold lines 29 so as to be bent in a waveform including projection portions and recess portions alternately (refer to
The second wiring portion 24 similarly includes a second expandable/contractable portion 24A extending from the external connection portion 22 and a second bus bar mount portion 24B that is continuous from an extended end of the second expandable/contractable portion 24A. The fourth wiring portion 26 similarly includes a fourth expandable/contractable portion 26A extending from the external connection portion 22 and a fourth bus bar mount portion 26B that is continuous from an extended end of the fourth expandable/contractable portion 26A. The fifth wiring portion 27 similarly includes a fifth expandable/contractable portion 27A extending from the external connection portion 22 and a fifth bus bar mount portion 27B that is continuous from an extended end of the fifth expandable/contractable portion 27A. The second expandable/contractable portion 24A, the fourth expandable/contractable portion 26A, and the fifth expandable/contractable portion 27A have configurations similar to that of the first expandable/contractable portion 23A except for having different lengths.
Each of the third wiring portion 25 and the sixth wiring portion 28 extends from the external connection portion 22. The third wiring portion 25 differs from the four wiring portions 23, 24, 26, 27 and does not include an expandable/contractable portion.
The six wiring portions 23, 24, 25, 26, 27, 28 extend in the same direction from the external connection portion 22 and are arranged in parallel to each other.
As illustrated in
The external connection portion 22 of the FPC body member 21 is folded along mountain fold lines illustrated by broken lines and valley fold lines illustrated by dashed-dotted lines illustrated in
As illustrated in
Similarly, the second multi-layered portion 32 has a two-layer structure including a first layer and a second layer disposed on the first layer. The first layer includes the fifth wiring portion 27 and the sixth wiring portion 28. The second layer includes the fourth wiring portion 26. In the second multi-layered portion 32, the sixth wiring portion 28, the fifth bus bar mount portion 27B, and the fourth bus bar mount portion 26B are arranged along a line in this order from the external connection portion 22. The first deformable portions 41 that are continuous to the sixth wiring portion 28, the fifth bus bar mount portion 27B, and the fourth bus bar mount portion 26B are arranged in a row.
The first bus bar mount portion 23B is allowed to move in the direction to be closer to and farther away from the second bus bar mount portion 24B that is disposed adjacent thereto by the expansion and contraction of the first expandable/contractable portion 23A. The second bus bar mount portion 24B is allowed to move in the direction to be closer to and farther away from the first bus bar mount portion 23B and the third wiring portion 25 that are disposed adjacent thereto by the expansion and contraction of the second expandable/contractable portion 24A. Similarly, the fourth bus bar mount portion 26B is allowed to move in the direction to be closer to and farther away from the fifth bus bar mount portion 27B that is disposed adjacent thereto by the expansion and contraction of the fourth expandable/contractable portion 26A. The fifth bus bar mount portion 27B is allowed to move in the direction to be closer to and farther away from the fourth bus bar mount portion 26B and the sixth wiring portion 28 that are disposed adjacent thereto by the expansion and contraction of the fifth expandable/contractable portion 27A. Such configurations solve problems caused by the position displacement of the electrode terminals 151A, 151B due to the dimension tolerance of the power storage group 150G.
(Resin Protector 50)
The resin protector 50 is made of synthetic resin and includes a first protector 50A that holds the first multi-layered portion 31 and a second protector 50B that holds the second multi-layered portion 32, as illustrated in
The first protector 50A holds the first multi-layered portion 31. As illustrated in
As illustrated in
As illustrated in
As illustrated in
Similarly, the second holding unit 71 includes a second mount plate 72, a second side rib 73 projecting from the second mount plate 72, and the retaining pieces 64 that are continuous from the second side rib 73. The third holding unit 81 includes a third mount plate 82, a third side rib 83 projecting from the third mount plate 82, and retaining pieces 84 that are continuous from the third side rib 83.
As illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
As illustrated in
The fixed bus bar holding portion 131 does not have the second deformable portion 111 but has a configuration similar to that of the movable bus bar holding portion 121. The fixed bus bar holding portion 131 includes a back plate extending from the long side 62LB of the first mount plate 62. The components of the fixed bus bar holding portion 131 same as those of the movable bus bar holding portion 121 are represented by the same symbols as those of the movable bus bar holding portion 121 and will not be described.
As illustrated in
[Assembling of Connection Module 1]
One example of steps of assembling the connection module 1 having the above configuration will be described below.
First, the bus bars 10 are connected to the FPC 20. The FPC connection portions 15 of the respective bus bars 10 are put on the respective connection portions of the FPC 20 and the FPC connection portions 15 and the connection portions are connected to each other, respectively, with reflow soldering. The bus bars 10 are connected to the FPC body member 21 via the first deformable portions 41. Accordingly, the bus bars 10 can freely move to some extent with respect to the FPC body member 21 by the deformation of the first deformable portions 41.
Next, the FPC 20 connected to the bus bars 10 is mounted on the resin protector 50.
First, the first multi-layered portion 31 is mounted on the first protector 50. The first multi-layered portion 31 is inserted into spaces between the mount plates 62, 72, 82 and the retaining pieces 64, 84 to be placed on the mount plates 62, 72, 82. Thus, the first multi-layered portion 31 is held by the first FPC holding portion 51. A distance between the retaining pieces 64 and the first mount plate 62 is greater than the thickness of the first multi-layered portion 31. As illustrated in
The second multi-layered portion 32 is similarly mounted on the second protector 50B.
Next, the bus bars 10 are mounted on the bus bar holding portions 121, 131, respectively. Each electrode connection portion 11 is pushed toward the bottom plate portion 123 while the first bus bar stopper 126 and the second bus bar stoppers 127 being warped. When the electrode connection portion 11 is contacted with the bottom plate portion 123, as illustrated in
[Mounting of Connection Module 1 on Power Storage Element Group 150G]
One example of steps of mounting the connection module 1 having the above configuration on the power storage element group 150G will be described below.
As illustrated in
As illustrated in
The first multi-layered portion 31 that is connected to the electrode terminals 151A, 151B of the one row includes the wiring portions 23, 24, 25 that are overlapped each other. According to such a configuration, the width of each wiring portion 23, 24, 25 and the width of the first multi-layered portion 31 including the overlapped wiring portions 23, 24, 25 can be reduced compared to a configuration in which the wirings for all the bus bars 10 to be connected to the electrode terminals 151A, 151B of the one row are arranged in a single layer routing structure. The same effects can be obtained in the second multi-layered portion 32. Accordingly, the routing portions can be mounted within a limited routing space on the power storage element group 150G.
The connection module 1 includes the resin protector 50 and the resin protector 50 includes the first protector 50A and the second protector 50B. The first protector 50A holds the first multi-layered portion 31 and the bus bars 10 that are connected to the wirings 23, 24, 25 of the first multi-layered portion 31. According to such a configuration, the first protector 50A collectively holds the wirings 23, 24, 25 that are overlapped with each other and the bus bars 10 and collectively mount the wirings 23, 24, 25 and the bus bars 10 in a predefined position on the power storage element group 150G. Similarly, the second protector 50B collectively holds the wiring portions 26, 27, 28 that are overlapped with each other and the bus bars 10 and collectively mount the wiring portions 26, 27, 28 and the bus bars 10 in a predefined position on the power storage element group 150G. This improves operability of mounting the connection module 1 on the power storage element group 150G.
As previously described, in the first multi-layered portion 31, the first bus bar mount portion 23B, the second bus bar mount portion 24B, and the third wiring portion 25 are movable with respect to each other. According to such a configuration, problems caused by the position displacement of the electrode terminals 151A, 151B due to the dimension tolerance of the power storage element group 150G can be solved.
For example, if the distance between the electrode terminals 151A, 151B is smaller than the predefined design dimension, the first expandable/contractable portion 23A is deformed and bent to reduce the length thereof and the distance between the first bus bar mount portion 23B and the second bus bar mount portion 24B becomes smaller, as illustrated in
The distances between the adjacent ones of the three holding units 61, 71, 81 of the first protector 50A can be changed according to the change in the distances between the first bus bar mount portion 23B, the second bus bar mount portion 24B, and the third wiring portion 25. Therefore, the movement of the first bus bar mount portion 23B, the second bus bar mount portion 24B, and the third wiring portion 25 is not hindered by the first protector 50A. The same effects are obtained in the second protector 50B.
As previously described, according to the present embodiment, the connection module 1 is a module that is mounted on the power storage element group 150G including the power storage elements 150 having the electrode terminals 151A, 151B and connects the power storage elements 150. The connection module 1 includes the FPC 20 including the wiring portions 23, 24, 25, 26, 27, 28 and the bus bars 10 that are connected to the wiring portions 23, 24, 25, 26, 27, 28 and connect the electrode terminals 151A, 151B of the adjacent power storage elements 150. By folding the FPC 20, the wiring portions 23, 24, 25 are overlapped with each other to be configured as the first multi-layered portion 31 and the wiring portions 26, 27, 28 are overlapped with each other to be configured as the second multi-layered portion 32.
According to such a configuration, the width of each wiring portion 23, 24, 25, 26, 27, 28 can be reduced compared to a configuration in which the wirings (a conductive routing structure) for all the bus bars 10 are arranged in a single layer routing structure. Therefore, the routing portions can be mounted within a limited routing space on the power storage element group 150G.
The connection module 1 includes the resin protector 50 that holds the bus bars 10, the first multi-layered portion 31, and the second multi-layered portion 32.
According to such a configuration, the wiring portions 23, 24, 25, 26, 27, 28 that are overlapped with each other and the bus bars 10 are collectively held and collectively mounted in a predefined position on the power storage element group 150G. This improves operability of mounting the connection module 1 on the power storage element group 150G.
The technology disclosed herein is not limited to the embodiment described above and illustrated in the drawings. For example, the following embodiments will be included in the technical scope of the technology.
(1) In the above embodiment, the first multi-layered portion 31 includes three wiring portions 23, 24, 25; however, a multi-layered portion may include two, four or more routing portions.
(2) In the above embodiment, the first multi-layered portion 31 has a two-layer structure; however, a multi-layered portion may include three layers or more. In the above embodiment, the first layer includes the second wiring portion 24 and the third wiring portion 25 and the second layer includes the first wiring portion 23; however, one layer may include three or more routing portions.
(3) The configuration of folding of the flexible printed circuit board for the multi-layered portion is not limited to the one in the above embodiment. For example, a long flexible printed circuit board may be folded along a fold line that is vertical to a side edge.
(4) In the above embodiment, the resin protector 50 includes the retaining pieces 64, 84; however, the holding member does not necessarily have the configuration for holding the flexible printed circuit board described in the above embodiment. For example, the holding member may include a pin and the pin may be inserted in a pin hole provided in the flexible printed circuit board, or the holding member may include a stopper and the flexible printed circuit board may be fitted to the stopper.
Number | Date | Country | Kind |
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2018-219300 | Nov 2018 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2019/043019 | 11/1/2019 | WO | 00 |