The present invention relates to a power supply device in which a plurality of battery cells are stacked with a separator interposed therebetween.
A power supply device including a plurality of battery cells is used, for example, for a power supply for driving a vehicle. Such a power supply device includes a plurality of battery cells, a plurality of separators, a pair of bind bars, and a pair of end plates. Each of the separators is disposed between adjacent battery cells so as to insulate the adjacent battery cells from each other. The plurality of battery cells and the plurality of separators are stacked in an alternating fashion to form a battery assembly. The end plates are disposed on both respective end surfaces of the battery assembly in a stacking direction in which the battery cells are stacked. The battery cells are connected by the end plates disposed on the respective end surfaces so as to be fixed in a stacked state. Each of the battery cells is configured such that positive and negative electrode plates and an electrolyte are sealed in an exterior can made of a metal, and therefore the exterior can has a potential. It is therefore necessary to insulate a surface of the exterior can in order to prevent electrical leakage caused by dew condensation water of an adjacent battery cell. For example, condensed water droplets flow toward bottom surfaces of the battery cells, and therefore the bottom surfaces of the exterior cans need to be insulated from each other. Furthermore, the stacked battery cells are connected by the bind bars that are metal plates so that the battery assembly is maintained in a bound state, and the bind bars made of a metal and the battery cells need also be insulated from each other.
As such an insulating structure, a configuration in which a surface of an exterior can is covered with an insulating sheet formed from a resin such as polyethylene terephthalate (PET) is known, for example (see PTL 1 and PTL 2, for example). Specifically, a shrink tube that can cover a surface of an exterior can in close contact therewith due to heat shrinkage is used as such an insulating sheet. However, in such a configuration in which an exterior can is covered with an insulating sheet, each battery cell need be covered with the insulating sheet in advance. Therefore, this configuration entails problems of poor workability and rise in production cost. Furthermore, even in a case where a battery cell is configured such that a surface of an exterior can is insulated by an insulating sheet, the insulating sheet is sometimes broken. For this reason, sufficient safety cannot be sometimes secured in the case where the surface of the exterior can is insulated by the insulating sheet only.
A structure in which a separator made of plastic is molded integrally with an insulating rib part that covers a bottom surface of a battery cell has been developed in order to improve insulation of the bottom surface of the battery cell. (See PTL 3)
PTL 1: Unexamined Japanese Patent Publication No. 2013-033668
PTL 2: Unexamined Japanese Patent Publication No. 2008-166191
PTL 3: Unexamined Japanese Patent Publication No. 2010-287550
In the power supply device of PTL 3, insulating rib part 93 that covers a bottom surface of battery cell 91 is provided along a bottom edge of separator 92 so as to protrude toward both sides of separator 92 as illustrated in the exploded perspective view of
The present invention has been accomplished to solve the above problems. A main object of the present invention is to provide a power supply device that can effectively prevent electrical leakage caused, for example, by dew condensation water by prolonging a creepage distance on a bottom surface of a battery cell with an extremely simple structure.
In order to attain the above object, a power supply device according to the present invention has the following configuration. The power supply device includes a plurality of battery cells 1 each having a rectangular outer shape thinner than a width of a main surface 1X; a separator 2 that is disposed between the battery cells 1 and is a molded member made of an insulating material; a pair of end plates 4 that are disposed on respective ends of a battery assembly 9 in which the battery cells 1 insulated by the separator 2 are stacked so that the main surfaces 1X face each other; and a bind bar 5 that binds the pair of end plates 4, wherein the separator 2 has insulating rib parts 21 that protrude from both surfaces of the separator 2 so as to be disposed on the bottom surfaces 1T of the battery cells 1 stacked on both sides of the separator 2, and wherein the insulating rib parts 21 of separator 2 stacked on each surface of the battery cell 1 are stacked on each other on the bottom surface 1T of the battery cell 1. One of stacked the insulating rib parts 21 has an insertion groove 22, the other of the stacked insulating rib parts 21 has an insertion rib 23 to be inserted into the insertion groove 22, and the insulating rib parts 21 are stacked on each other on the bottom surface 1T of the battery cell 1 by inserting the insertion rib 23 into the insertion groove 22 so that a creepage distance is U-curved.
The power supply device can effectively prevent electrical leakage caused, for example, by dew condensation water by prolonging a creepage distance on a bottom surface of a battery cell with an extremely simple structure. This is because the power supply device is configured such that insulating rib parts of separators stacked on each side of a battery cell are stacked on each other on a bottom surface of the battery cell and a creepage distance on the bottom surface of the battery cell is prolonged by the insulating rib parts stacked in multiple layers. In particular, the above power supply device can more effectively prevent electrical leakage caused by condensation water and achieve extremely high safety since one of the stacked insulating rib parts has an insertion groove, the other of the stacked insulating rib parts has an insertion rib to be inserted into the insertion groove, and the insulating rib parts are stacked in multiple layers by inserting the insertion rib into the insertion groove. This is because the creepage distance can be further prolonged by inserting the insertion rib into the insertion groove and thereby making the creepage distance U-curved. Furthermore, by inserting the insertion rib into the insertion groove, a gap between the insertion groove and the insertion rib can be narrowed, and the narrow gap can be maintained. It is therefore possible to make a thickness of dew condensation water entering the gap between the insertion groove and the insertion rib thin and further include electrical leakage resistance.
In a conventional power supply device, a bottom surface of an exterior can of a battery cell is insulated by coating a surface of the exterior can with a heat shrinkable tube in order to insulate the exterior can. Meanwhile, the insulating structure using the stacked insulating rib parts of the present invention can be made thicker than the heat shrinkable tube, a creepage distance can be markedly prolonged by the stacked structure, and a strong insulating structure can be realized by the insulating rib parts provided in the separator. It is therefore possible to markedly inhibit a decrease in insulation properties caused by dew condensation water attached onto a surface of the exterior can and flowing to a bottom surface, as compared with a heat shrinkable tube. In particular, a creepage distance can be markedly prolonged with a unique structure in which insulating rib parts are stacked in multiple layers, and therefore a decrease in insulation resistance can be reduced by the long creepage distance even if dew condensation water flows down and enters a gap between the stacked insulating rib parts. Because of the good insulation properties, the power supply device according to the present invention can realize good insulation properties by using a battery cell in which a surface of an exterior can is not insulated by a heat shrinkable tube and can effectively suppress a decrease in insulation resistance caused by dew condensation water. Therefore, the power supply device that uses a battery cell in which a heat shrinkable tube is not used can be safely used even under a bad external condition in which dew condensation water tends to occur. The battery cell in which a heat shrinkable tube is not used can be produced at low cost in large quantities since both a material cost and a production cost are reduced. Therefore, a power supply device produced by using this battery cell can achieve good insulation properties while reducing whole cost. This is because a separator that has an insulating rib parts on both sides can be produced at low cost in large quantities by integral molding of plastic.
A power supply device in which a large number of battery cells are stacked to constitute a battery assembly is often mounted on a vehicle and used as a power supply for supplying power to a driving motor. The power supply device for this use is used in an extremely wide temperature range and used even under an extremely bad external condition. Furthermore, the power supply device is used even under a strict environment in which use restriction caused by electrical leakage threatens life. For these reasons, it is especially important that the power supply device can be safely used even under a strict environment by making use restriction caused by electrical leakage less likely. Furthermore, the power supply device for this use cannot eliminate dew condensation of water in air since a gap for cooling is provided on a surface of a battery in order to keep a battery temperature constant and the battery surface makes contact with air. Dew condensation water attached onto the surface is electrically conductive and therefore causes electrical leakage. In particular, dew condensation water attached onto the surface of the exterior can flows down to a bottom surface and causes electrical leakage on the bottom surface.
The above power supply device, in which insulating rib parts are stacked on each other on a bottom surface of a battery cell, effectively prevents electrical leakage from occurring in this part. In particular, electrical leakage is prevented since an insertion rib is inserted into an insertion groove so that a creepage distance becomes U-curved and long. Therefore, even if dew condensation water flows down onto a bottom surface of a battery and makes contact with metal bind bar or case disposed below the battery, the dew condensation water makes contact with the metal bind bar and the like over the long creepage distance. This can increase insulation resistance Therefore, even if electrical leakage occurs due to dew condensation water, negative effects caused by electrical leakage can be markedly reduced.
The power supply device according to the present invention can be configured such that the bind bar 5 is a metal plate, and the bind bar 5 made of a metal has a horizontal plate part 5A disposed on lower surfaces of the insulating rib parts 21; and an insulating sheet 7 is disposed between the horizontal plate part 5A and the insulating rib parts 21, and the insulating sheet 7 insulates the horizontal plate part 5A made of the metal and the insulating rib parts 21 from each other.
The above power supply device can more effectively insulate bottom surfaces of battery cells and further reduce a decrease in insulation resistance caused by dew condensation water. This is because insulation properties are improved by stacked insulating rib parts and the insulating rib parts and a horizontal plate part of a bind bar made of a metal are insulated from each other by an insulating sheet.
The power supply device according to the present invention can be configured such that the bind bar 5 has a side surface plate part 5X that is connected to horizontal plate part 5A and is disposed on a side surface 1S of battery cell 1; and a continuous insulating sheet 7 can be disposed at least on a surface of a bottom part of the side surface plate part 5X and a surface of the horizontal plate part 5A.
The above power supply device can more effectively insulate a battery cell side surface and a metal bind bar from each other by using an insulating sheet.
The power supply device according to the present invention can be configured such that the separator 2 has position determining ribs 24 that protrude from a surface of the separator 2 so as to make contact with side surfaces 1S of the battery cell 1 and place the battery cell 1 at a fixed position; and the position determining ribs 24 each have an upper surface that is inclined downward from an outer periphery of the battery cell 1 toward a central part.
The power supply device allows dew condensation water to smoothly flow down and be discharged without remaining on an upper surface of a position determining rib.
The power supply device according to the present invention can be configured such that the bind bar 5 is a metal plate, and the bind bar 5 has a horizontal plate part 5A disposed on lower surfaces of the insulating rib parts 21; the insulating rib parts 21 are disposed between the horizontal plate part 5A of the bind bar 5 and a bottom surface 1T of the battery cell 1 and are disposed at respective ends of a lower part of the separator 2; the separator 2 has, between the insulating rib parts 21 on respective sides provided at respective ends of a bottom edge, a position determining rib 24 that protrudes from a surface of the separator 2 so as to make contact with a bottom surface 1T of the battery cell 1 and place the battery cell 1 at a fixed position; and a water discharge gap 29 can be provided between the insulating rib parts 21 and the position determining rib 24.
The power supply device can promptly discharge dew condensation water flowing down to a bottom part of a battery cell through a water discharge gap provided between an insulating rib part and a position determining rib. This prevents dew condensation water from accumulating in the bottom part and decreasing insulation properties, thereby preventing a decrease in insulation properties caused by dew condensation water with more certainty.
The power supply device according to the present invention can be configured such that the separator 2 has a plurality of position determining ribs 24 between the insulating rib parts 21 disposed at the respective ends of a bottom part, and the water discharge gap 29 can be provided between the position determining ribs 24.
The above power supply device allows a battery cell to be accurately placed at a fixed position due to a plurality of position determining ribs and allows dew condensation water flowing down to a bottom part of the battery cell to be promptly discharged through a water discharge gap provided between the plurality of position determining ribs. This prevents dew condensation water from accumulating in the bottom part and decreasing insulation properties, thereby preventing a decrease in insulation properties caused by dew condensation water with more certainty.
The power supply device according to the present invention can be configured such that the separator 2 has a position determining rib 24 that makes contact with an outer peripheral surface 1R of the battery cell 1 and places the battery cell 1 at a fixed position; and a deformed rib 25 that is deformed by being pressed against the outer peripheral surface 1R of battery cell 1 can be provided on a contact surface of the position determining rib 24 with the outer peripheral surface 1R of the battery cell.
The power supply device allows a battery cell having a dimensional error to be accurately placed at a fixed position without looseness by causing position determining ribs to make contact with an outer peripheral surface of the battery cell. In the power supply device in which the battery cell can be accurately placed at a fixed position, a bus bar that is a thick metal plate can be fixed to an electrode terminal of the battery cell with ease. In a structure in which a bus bar that is a metal plate is laser-welded to the electrode terminal of the battery cell, the bus bar can be stably laser-welded while relative displacement between the electrode terminal and the bus bar is reduced.
The power supply device of the present invention can be configured such that an air path 6 is provided between the separator 2 and the battery cell 1.
The power supply device of the present invention can be configured such that the battery cells 1 each have an exterior can 11 made of a metal, and the separator 2 can be disposed between the battery cells 1 in which a surface metal of the exterior can 11 is exposed.
A power supply device according to an exemplary embodiment of the present invention is illustrated in
Battery cell 1 is a lithium-ion secondary battery with wide main surface 1X having a rectangular outer shape, and has a thickness smaller than the width of main surface 1X. However, in the power supply device according to the present invention, battery cell 1 is not limited to the lithium-ion secondary battery. As battery cell 1, any other batteries that are currently used or will be developed in the future can also be used, such as a non-aqueous electrolyte secondary battery or a nickel-hydrogen battery cell other than the lithium ion secondary battery.
Battery cell 1 is configured such that exterior can 11 made of a metal in which an electrode assembly (not illustrated) formed by stacking positive and negative electrode plates is stored is filled with an electrolyte, and is sealed in an airtight manner. Exterior can 11 is a columnar shape having a closed bottom, and an upper opening thereof is closed in an airtight manner by a sealing plate formed from a metal plate. Exterior can 11 is formed by deep-drawing a metal plate made of aluminum, aluminum alloy, or the like.
The sealing plate is formed from a metal plate made of aluminum, aluminum alloy, or the like as in the case of exterior can 11. The sealing plate is inserted into the opening of exterior can 11, and the boundary between an outer periphery of the sealing plate and an inner periphery of exterior can 11 is irradiated with a laser beam to fix the sealing plate to exterior can 11 in an airtight manner by laser welding.
Battery cell 1 is provided with positive and negative electrode terminals 13 fixed on both respective ends of the sealing plate so as to project therefrom. Positive and negative electrode terminals 13 are connected to bus bars (not illustrated) that are metal plates so that battery cells 1 are connected in series. Power supply device 100 in which battery cells 1 are connected in series can increase an output voltage to increase an output. Notably, the power supply device can be configured such that battery cells 1 are connected in parallel and in series.
Whole separator 2 is integrally molded by using an insulating material. The insulating material is thermoplastic. Separator 2 made of plastic can be produced at low cost in large quantities while realizing a good insulation property. However, in the present invention, the insulating material for the separator is not limited to plastic. For example, any other moldable insulating materials such as ceramics and paper can also be used. Separator 2 is sandwiched between battery cells 1 that are stacked so that adjacent battery cells 1 are insulated from each other and are placed at fixed positions away from each other.
Separator 2 illustrated in
Body plate part 20 is provided with a plurality of air blowing grooves 30 that are provided in parallel with each other on both surfaces of body plate part 20 so that air path 6 through which cooling air is blown is created between body plate part 20 and a surface of adjacent battery cell 1. Air blowing grooves 30 extend to both sides of body plate part 20 so that air path 6 opened at both ends thereof is created between body plate part 20 and main surface 1X of battery cell 1. Air for cooling is forcibly blown from a cooling fan (not illustrated) through air path 6 so as to cool a surface of battery cell 1 whose temperature has risen. The cooling fan operates upon detection of a rise in battery temperature and keeps battery cells 1 at a set temperature. Power supply device 100 mounted on a vehicle cools battery cells 1 by forcibly blowing indoor or outdoor air through air path 6 as cooling air.
Insulating rib parts 21 protrude from both surfaces of body plate part 20 and are disposed on bottom surfaces 1T of battery cells 1. Power supply device 100 of
Insulating rib parts 21 protruding from both surfaces of body plate parts 20 are stacked on each other on bottom surface 1T of battery cell 1 so as to prolong a creepage distance between battery cell bottom surface 1T and a metal disposed below battery cell bottom surface 1T, specifically, horizontal plate parts 5A made of a metal in illustrated power supply device 100. On bottom surface 1T of battery cell 1, insulating rib parts 21 of separators 2 stacked on both surfaces of battery cell 1 are stacked on each other. Each separator 2 illustrated in the cross-sectional views of
Power supply device 100 illustrated in the cross-sectional views of
The structure in which insertion groove 22 is provided in one of insulating rib parts 21, insertion rib 23 is provided in the other of insulating rib parts 21, and insulating rib parts 21 are stacked on each other by inserting insertion rib 23 into insertion groove 22 can prolong a creepage distance while two insulating rib parts 21 are linked at fixed positions since a water path created in a gap between insulating rib parts 21 is U-curved. In particular, insulating rib parts 21 having this structure can further prolong a creepage distance by making insertion groove 22 deeper and making insertion rib 23 longer and thereby prolonging a distance over which insertion rib 23 is inserted into insertion groove 22. Each separator 2 of
In
Furthermore, separator 2 is molded integrally with position determining ribs 24 that protrude from both surfaces of body plate part 20 and place battery cell 1 at a fixed position. Separator 2 of
Separator 2 of
In order to prevent horizontal displacement of battery cell 1 with certainty, each end position determining rib 24A is configured such that two horizontal ribs 24a extending in a horizontal direction are provided away from each other in an up-down direction and are linked by vertical rib 24b and deformed rib 25 is provided so as to protrude from a surface of vertical rib 24b. As illustrated in
A dimensional error occurs in outer shape of battery cell 1 in a production process. Each position determining rib 24 is molded integrally with narrow deformed rib 25 that protrudes from a contact surface with outer peripheral surface 1R of battery cell 1 and is deformed by being pressed against outer peripheral surface 1R of battery cell 1 in order to place battery cell 1 having a dimensional error in height and horizontal width of main surface 1X at a fixed position so as to be sandwiched between upper, lower, left, and right position determining ribs 24.
Deformed rib 25 is illustrated in the cross-sectional view of
As illustrated in the cross-sectional view of
End plates 4 are plates that are disposed at respective ends of battery assembly 9 and have a strength that can pressurize and fix battery cells 1 in a stacking direction and are connected to bind bars 5 so as to fix battery cells 1 in a pressurized state. Power supply device 100 illustrated in
As illustrated in
Bind bars 5 illustrated in
Insulating sheet 7 is disposed between insulating rib parts 21 and bind bar 5 in order to further improve insulation properties between bind bar 5 made of a metal and battery cell 1. An inner surface of bind bar 5 illustrated in
In addition, bind bar 5 made of a metal is provided with air blowing openings 5D in inner parts of side surface plate part 5X except for an outer perimeter part of side surface plate part 5X so that cooling air can be blown into air paths 6 of battery assembly 9. Side surface plate part 5X of bind bar 5 made of a metal is disposed away from side surfaces 1S of battery cells 1, is insulated from exterior cans 11 of battery cells 1, and is provided with air blowing gap 28 for cooling air. In order to realize this, separator 2 of
Each vertical wall 26 of separator 2 of
Outer peripheral surface 1R on both sides of battery cell 1 is disposed on an inner side relative to both side edges of separator 2 and is therefore disposed away from side surface plate part 5X of bind bar 5. Since bind bar 5 is disposed on an outer side of both side edges of separator 2, power supply device 100 in which this separator 2 is provided between battery cells 1 is configured such that a gap is provided between side surface plate part 5X of bind bar 5 and outer peripheral surface 1R on both sides of battery cell 1. This can insulate side surface 1S on both sides of battery cell 1 from bind bar 5 made of a metal and can provide air blowing gap 28. In this power supply device 100, battery cell 1 is insulated from bind bar 5 by providing a gap between bind bar 5 and battery cell 1, and the lower part of side surface plate part 5X is covered with insulating sheet 7 so that a decrease in insulation resistance caused by dew condensation water is prevented.
The exemplary embodiment of the present invention has been described with reference to the drawings. The exemplary embodiment is merely preferable illustration for embodying the technical ideas of the present invention. The present invention is not limited to the above exemplary embodiment. Further, in the present description, components shown in the scope of claims are not limited to the components of the exemplary embodiment. In particular, it is not intended to limit the sizes, materials, and shapes of components and relative arrangement between the components, which are described in the exemplary embodiment, to the scope of the present invention unless otherwise specified. The sizes and the like are mere explanation examples. However, the sizes and the positional relation of the components in each drawing are exaggerated for clearing the explanation in some cases.
The power supply device according to the present invention is optimally used for a power supply device that supplies power to a motor of a vehicle which requires large power or a power storage device that stores natural energy or night power.
100: power supply device
1: battery cell
1X: main surface
1R: outer peripheral surface
1S: side surface
1T: bottom surface
2: separator
2X: separator
4: end plate
5: bind bar
5X: side surface plate part
5A: horizontal plate part
5C: fixed part
5D: air blowing opening
6: air path
7: insulating sheet
9: battery assembly
11: exterior can
13: electrode terminal
19: fastener
20: body plate part
20X: body plate part
21: insulating rib part
22: insertion groove
23: insertion rib
24: position determining rib
24A: end position determining rib
24B: intermediate position determining rib
24
a: horizontal rib
24
b: vertical rib
25: deformed rib
26: vertical wall
27: horizontal wall
28: air blowing gap
29: water discharge gap
30: air blowing groove
91: battery cell
92: separator
93: insulating rib part
Number | Date | Country | Kind |
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2016-167394 | Aug 2016 | JP | national |
Filing Document | Filing Date | Country | Kind |
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PCT/JP2017/017452 | 5/9/2017 | WO | 00 |