Power supply device, electric vehicle equipped with the power supply device, and power storage device
By using a separator laminate of an elastomer and plastic foam layers in power supply devices, the issue of sudden surface pressure increases due to battery cell expansion is addressed, resulting in a lighter, more cost-effective, and efficient power supply solution.
Patent Information
- Application Number
- JP2022511540
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-31
- Filing Date
- 2020-12-28
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2040-12-28
AI Technical Summary
Existing power supply devices with stacked battery cells face challenges due to the sudden increase in surface pressure between battery cells and separators as battery cells expand, requiring extremely strong materials for end plates and bind bars, which increases weight, size, and material costs.
The power supply device incorporates a separator made of a laminate of an elastomer layer and a plastic foam layer, where the plastic foam layer is more easily deformed than the elastomer layer, allowing it to absorb the expansion of battery cells and reduce surface pressure.
This solution effectively absorbs both small and large expansions of battery cells, reducing stress on end plates and bind bars, allowing for a lighter and more cost-effective power supply device while maintaining electrical connection integrity.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present invention relates to a power supply device in which many battery cells are stacked, and an electric vehicle and a power storage device equipped with this power supply device. [Background technology]
[0002] Power supply devices with many stacked battery cells are suitable as power sources mounted on electric vehicles to supply power to the motor that runs the vehicle, as power sources charged with natural energy such as solar cells or overnight power, and as backup power sources during power outages. Power supply devices with this structure have separators sandwiched between the stacked battery cells. Power supply devices in which many battery cells are stacked with separators sandwiched between them fix the stacked battery cells in a pressurized state to prevent displacement due to battery cell expansion. To achieve this, the power supply device has a pair of end plates disposed on both end faces of a battery block in which many battery cells are stacked, and the pair of end plates are connected by a bind bar. (See Patent Document 1) [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2018-204708 A Summary of the Invention [Problem to be solved by the invention]
[0004] The power supply unit stacks multiple battery cells to form a battery block, and a pair of end plates are placed on both end faces of the battery block, which are held in a pressurized state with a fairly strong pressure from both ends and connected with a bind bar. The power supply unit fixes the battery cells under strong pressure to prevent malfunctions due to relative movement or vibration of the battery cells. For example, this power supply unit can be used with a stacked surface area of about 100 cm2. 2In a device that uses battery cells having the above structure, the end plates are pressed with a strong force of several tons and fixed with a bind bar. In a power supply device with this structure, adjacent stacked battery cells are insulated by separators, and plate-shaped insulating plastic plates are used for the separators. When the internal pressure of the battery cells increases and they expand, the plastic plate separators cannot absorb the expansion of the battery cells, and in this state the surface pressure between the battery cells and the separators increases suddenly, and extremely strong forces are applied to the end plates and bind bars. For this reason, the end plates and bind bars are required to be made of extremely strong materials and shapes, which has the disadvantages of making the power supply device heavy and large, as well as increasing material costs.
[0005] The present invention was developed with the objective of eliminating the above-mentioned drawbacks, and one of the objects of the present invention is to provide a technique for absorbing expansion of a battery cell with a separator. [Means for solving the problem]
[0006] A power supply device according to one embodiment of the present invention includes a battery block formed by stacking multiple battery cells in the thickness direction with separators sandwiched between them, a pair of end plates disposed on both end faces of the battery block, and bind bars connected to the pair of end plates and fixing the battery block in a pressurized state via the end plates. The separator is a laminate of an elastomer layer and a plastic foam layer that deforms more in response to a compressive force than the elastomer layer. The elastomer layer has a surface of the plate-shaped portion, which faces the battery cell, and has multiple rows of parallel ridges and multiple rows of parallel grooves arranged alternately, giving the elastomer layer a comb-like cross-sectional shape.
[0007] An electric vehicle according to one embodiment of the present invention comprises the above-mentioned power supply device, a motor for driving that is supplied with power from the power supply device, a vehicle body equipped with the power supply device and the motor, and wheels driven by the motor to drive the vehicle body.
[0008] An energy storage device according to one embodiment of the present invention includes the above-mentioned power supply device and a power supply controller that controls charging and discharging to the power supply device, and the power supply controller enables charging of the battery cells using external power and controls the charging of the battery cells. Effect of the Invention
[0009] In the power supply device described above, the expansion of the battery cells is absorbed by the separators, making it possible to prevent a sudden increase in surface pressure between the battery cells and the separators. [Brief description of the drawings]
[0010] [Figure 1] 1 is a perspective view of a power supply device according to an embodiment of the present invention; [Diagram 2] 2 is a vertical sectional view of the power supply device shown in FIG. 1. [Diagram 3] 2 is a horizontal sectional view of the power supply device shown in FIG. 1. [Figure 4] FIG. 2 is an exploded perspective view showing the stacked structure of battery cells and separators. [Diagram 5] FIG. 2 is a partially enlarged cross-sectional view showing the stacked structure of the battery cells and separators. [Figure 6] FIG. 11 is an enlarged cross-sectional view of a main portion showing the state in which the surface of an expanding battery cell is pressed by parallel ridges and deformed into a wavy shape. [Figure 7] FIG. 4 is a perspective view showing another example of a separator. [Figure 8] FIG. 4 is a partially enlarged cross-sectional view showing another example of a separator. [Figure 9] FIG. 4 is a partially enlarged cross-sectional view showing another example of a separator. [Figure 10] FIG. 11 is an exploded perspective view showing another example of a stacked structure of battery cells and separators. [Figure 11] 1 is a block diagram showing an example of a power supply device mounted on a hybrid vehicle that runs on an engine and a motor. [Figure 12] FIG. 1 is a block diagram showing an example in which a power supply device is mounted on an electric vehicle that runs only on a motor. [Figure 13]FIG. 11 is a block diagram showing an example of application to a power supply device for power storage. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] The present invention will be described in detail below with reference to the drawings. In the following description, terms indicating specific directions or positions (e.g., "upper", "lower", and other terms including these terms) are used as necessary, but the use of these terms is for the purpose of facilitating understanding of the invention with reference to the drawings, and the meanings of these terms do not limit the technical scope of the present invention. In addition, parts with the same reference numerals appearing in multiple drawings indicate the same or equivalent parts or members. Furthermore, the embodiments shown below are specific examples of the technical ideas of the present invention, and do not limit the present invention to the following. Furthermore, unless otherwise specified, the dimensions, materials, shapes, relative positions, etc. of the components described below are intended to be illustrative and not to limit the scope of the present invention. Furthermore, the contents described in one embodiment or example can be applied to other embodiments or examples. Furthermore, the sizes and positional relationships of the components shown in the drawings may be exaggerated to clarify the explanation.
[0012] The power supply device of the first embodiment of the present invention includes a battery block formed by stacking multiple battery cells in the thickness direction with separators sandwiched between them, a pair of end plates arranged on both end faces of the battery block, and bind bars connected to the pair of end plates and fixing the battery block in a pressurized state via the end plates. The separator is a laminate of an elastomer layer and a plastic foam layer that deforms more in response to a pressing force than the elastomer layer.
[0013] The separator of the above power supply device is made by laminating an elastomer layer and a plastic foam layer that is more easily deformed than the elastomer layer, so that both the elastomer layer and the plastic foam layer elastically deform to absorb the expansion of the battery cell. The plastic foam layer is easily deformed compared to the elastomer layer because countless air bubbles are crushed and deformed thin, so it has a small Young's modulus and absorbs the expansion of the battery cell more effectively. When the expansion of the battery cell increases and the pressure of the separator increases, the plastic foam layer, which is easily deformed, exceeds its elastic limit and is unable to absorb the expansion of the battery cell. The elastomer layer is less deformable than the plastic foam layer, and absorbs the expansion of the battery cell by elastically deforming in the area where the plastic foam exceeds its elastic limit. Therefore, the separator, which is made by laminating an elastomer layer and a plastic foam layer, absorbs small expansion of the battery cell easily with the plastic foam layer, which is easily deformed, and in the area where the expansion of the battery cell increases and the pressure of the separator increases, the elastomer layer, which is less deformable, absorbs the expansion. Therefore, the separator described above has the advantage of being able to absorb the frequent small expansions of the battery cells more smoothly while also absorbing large expansions. The plastic foam layer is also expected to have the effect of absorbing the dimensional tolerances of the battery cells and separators.
[0014] Furthermore, in the above power supply device, the elastomer layer and the plastic foam layer, which is more easily deformed than the elastomer layer, suppress the increase in surface pressure due to the expansion of the battery cells, so that it is possible to prevent excessive stress acting on the end plates and the bind bars due to the expansion of the battery cells. The plastic foam layer can efficiently absorb small expansions of the battery cells, but when the expansion of the battery cells becomes large and exceeds its elastic limit, it is no longer able to elastically deform, causing the stress on the end plates and the bind bars to increase rapidly. However, in the region where the plastic foam layer exceeds its elastic limit, the elastomer layer laminated thereon elastically deforms and suppresses the increase in stress on the end plates and the bind bars, so that it is possible to suppress an increase in the maximum stress acting on the end plates and the bind bars due to the large expansion of the battery cells. A power supply device that can suppress the maximum stress acting on the end plates and the bind bars can be made lighter by making the end plates and the bind bars thinner.
[0015] In addition, a power supply device in which both the elastomer layer and the plastic foam layer are elastically deformed to effectively absorb the expansion of the battery cells can also prevent the battery cells from shifting out of position relative to each other due to expansion. This also prevents problems with the electrical connections of the battery cells. The stacked battery cells are electrically connected by fixing metal bus bars to the electrode terminals, but if the battery cells shift out of position relative to each other, excessive stress is applied to the bus bars and electrode terminals, causing failure.
[0016] In the power supply device according to the second embodiment of the present invention, the elastomer layer is made of non-foamed synthetic rubber.
[0017] In the power supply device according to the third embodiment of the present invention, the synthetic rubber of the elastomer layer is selected from the group consisting of fluororubber, isoprene rubber, styrene butadiene rubber, butadiene rubber, chloroprone rubber, nitrile rubber, hydrogenated nitrile rubber, P The rubber may be any of the following: triisobutylene rubber, ethylene propylene rubber, ethylene vinyl acetate copolymer rubber, chlorosulfonated polyethylene rubber, acrylic rubber, epichlorohydrin rubber, urethane rubber, silicone rubber, thermoplastic olefin rubber, ethylene propylene diene rubber, butyl rubber, and polyether rubber.
[0018] In the power supply device according to the fourth embodiment of the present invention, the plastic foam layer is made of open-cell plastic foam.
[0019] In this power supply device, the open-cell plastic foam layer is crushed more smoothly, absorbing the expansion of the battery cells more effectively. Furthermore, the open-cell plastic foam layer equalizes the surface pressure distribution on the battery cell surface, preventing the adverse effect of high pressure in certain areas. This is because when open-cell plastic foam is pressed and crushed, the air in the cells flows to the surrounding area through the interconnected cells, making it more susceptible to deformation.
[0020] In the power supply device according to the fifth embodiment of the present invention, the plastic foam layer is made of closed-cell plastic foam.
[0021] In this power supply device, the closed cells in the plastic foam layer of the separator act as an air cushion that elastically deforms, allowing the foaming rate of the plastic foam layer to be increased and reducing material costs. Furthermore, the air cushion of the closed cells elastically deforms over a wide pressure range and can absorb the expansion of the battery cells.
[0022] In the power supply device according to the sixth embodiment of the present invention, the plastic foam layer is made of urethane foam.
[0023] In a seventh embodiment of the power supply device of the present invention, the elastomer layer is the surface of a plate-shaped portion, and on the surface facing the battery cell, multiple rows of parallel ridges and multiple rows of parallel grooves are arranged alternately, giving the cross-sectional shape a comb-like shape.
[0024] In the power supply device described above, the parallel ridges of the separator locally press against the electrodes of the battery cells, improving the fluidity of the electrolyte. A comb-shaped separator with alternating parallel ridges and parallel grooves on the surface facing the battery cells improves the fluidity of the electrolyte because the electrodes become highly dense in the areas pressed by the parallel ridges, but become less dense in the areas facing the parallel grooves that are not pressed by the parallel ridges, making it easier for the electrolyte to move.
[0025] In the power supply device according to the eighth embodiment of the present invention, the width (W1) of the parallel convex strip and the opening width (W2) of the parallel groove are set to be equal to or greater than 1 mm and equal to or less than 20 mm.
[0026] In the power supply device according to the ninth embodiment of the present invention, the height (h) of the parallel ridges is set to be equal to or greater than 0.1 mm and equal to or less than 2 mm.
[0027] In the power supply device of the tenth embodiment of the present invention, the ratio (W1 / W2) of the width (W1) of the parallel convex stripe to the opening width (W2) of the parallel groove is 0.1 or more and 10 or less.
[0028] In an eleventh embodiment of the power supply device of the present invention, the electrodes of the battery cells are plate-shaped electrodes formed by spirally winding strip-shaped positive and negative electrode layers and pressing them into a flat shape, and the elastomer layer of the separator has parallel ridges and parallel grooves arranged in a position that extends in the width direction of the strip-shaped positive and negative electrode layers.
[0029] In a power supply device according to a twelfth embodiment of the present invention, the separator has a two-layer structure consisting of an elastomer layer and a plastic foam layer.
[0030] In a power supply device according to a thirteenth embodiment of the present invention, the separator has a three-layer structure in which elastomer layers are laminated on both sides of a plastic foam layer.
[0031] (Embodiment 1) A power supply device 100 shown in the oblique view of Figure 1, the vertical cross-sectional view of Figure 2, and the horizontal cross-sectional view of Figure 3 comprises a battery block 10 in which multiple battery cells 1 are stacked in the thickness direction with separators 2 sandwiched between them, a pair of end plates 3 arranged on both end faces of the battery block 10, and a bind bar 4 that connects the pair of end plates 3 and fixes the battery block 10 in a pressurized state via the end plates 3.
[0032] (Battery block 10) The battery block 10 is formed by stacking multiple battery cells 1, which are rectangular battery cells with an external shape of a rectangle, in the thickness direction with separators 2 sandwiched between them. The multiple battery cells 1 are stacked so that their upper surfaces are flush with each other to form the battery block 10.
[0033] (Battery cell 1) As shown in Figures 4 and 5, the battery cell 1 has an internally sealed structure in which electrodes 15 are inserted into a battery case 11 whose bottom is closed, and a sealing plate 12 is laser-welded to the upper opening to airtightly secure it. Furthermore, the inside of the battery case 11 is filled with an electrolyte (not shown). As shown in Figure 1, the sealing plate 12 has a pair of positive and negative electrode terminals 13 that protrude upward from both ends of the upper surface. A safety valve 14 is provided between the electrode terminals 13. The safety valve 14 opens when the internal pressure of the battery cell 1 rises above a predetermined value to release internal gas. The safety valve 14 prevents the internal pressure of the battery cell 1 from increasing.
[0034] The battery cell 1 is a lithium ion secondary battery. The power supply device 100, which uses a lithium ion secondary battery as the battery cell 1, has the feature of being able to increase the charging capacity relative to the capacity and weight. However, the battery cell 1 can be any other rechargeable battery, such as a non-aqueous electrolyte secondary battery other than a lithium ion secondary battery.
[0035] (3 end plates, 4 bind bars) The end plates 3 are metal plates with an outline roughly equal to the outline of the battery cells 1 so that they do not deform when pressed by the battery block 10, and have bind bars 4 connected to their opposite edges. The bind bars 4 connect the stacked battery cells 1 with the end plates 3 in a pressurized state, and fix the battery block 10 in a pressurized state at a specified pressure.
[0036] (Separator 2) Separators 2 are sandwiched between stacked battery cells 1 to absorb expansion of the battery cells 1 due to increased internal pressure, while suppressing a decrease in the fluidity of the electrolyte, and insulate adjacent battery cells 1. A battery block 10 connects the battery cells 1 in series or parallel by fixing bus bars (not shown) to the electrode terminals 12 of adjacent battery cells 1. Battery cells 1 connected in series are stacked and insulated with separators 2 because a potential difference occurs in the battery case 11. Battery cells 1 connected in parallel do not generate a potential difference in the battery case 11, but are stacked and insulated with separators 2 to prevent the induction of thermal runaway.
[0037] The separator 2 shown in the enlarged cross-sectional view of Figure 5 has a laminated structure of an elastomer layer 5 and a plastic foam layer 6, which have different deformation amounts in response to a pressing force. The elastomer layer 5 and the plastic foam layer 6, which have different deformation amounts in response to a pressing force, are pressed by the expanding battery cell 1 and elastically deform to become thinner, absorbing the expansion of the battery cell 1. In order to miniaturize the battery block 10 and increase the charging capacity of the power supply device 100, it is important that the separator 2 is made thin to absorb the expansion of the battery cell 1. For this reason, the laminated separator 2 has an overall thickness (d) of, for example, 2 mm or more and 8 mm or less, and more preferably 1.5 mm or more and 5 mm or less.
[0038] The elastomer layer 5 of the separator 2 is a non-foamed rubber-like elastic body or foamed rubber. The elastomer layer 5 has a hardness of, for example, A30 to A90 degrees, and can absorb the expansion of the battery cell 1 by elastically deforming. A synthetic rubber sheet is suitable for the elastomer layer 5. Synthetic rubber sheets include fluororubber, isoprene rubber, styrene butadiene rubber, butadiene rubber, chloroprone rubber, nitrile rubber, hydrogenated nitrile rubber, P Any of the following synthetic rubber sheets can be used alone or in combination: isobutylene rubber, ethylene propylene rubber, ethylene vinyl acetate copolymer rubber, chlorosulfonated polyethylene rubber, acrylic rubber, epichlorohydrin rubber, urethane rubber, silicone rubber, thermoplastic olefin rubber, ethylene propylene diene rubber, butyl rubber, and polyether rubber. In particular, ethylene propylene rubber, ethylene vinyl acetate copolymer rubber, chlorosulfonated polyethylene rubber, acrylic rubber, fluororubber, and silicone rubber have excellent heat insulating properties, so that high safety can be achieved until the temperature of the battery cell 1 rises to a high temperature. In addition, when the elastomer layer 5 is made of urethane rubber, it is particularly preferable to use thermoplastic polyurethane rubber or foamed polyurethane rubber.
[0039] The separator 2 shown in Figs. 4 and 5 has a comb-like cross-sectional shape with multiple parallel ridges 21 and multiple parallel grooves 22 arranged alternately on the surface of the plate-shaped portion 20 that faces the battery cell surface. In this separator 2, the multiple parallel ridges 21 locally press the surface of the expanding battery cell 1. In the battery cell 1 whose surface is pressed by the multiple parallel ridges 21, the areas pressed by the parallel ridges 21 become recessed, and the areas facing the parallel grooves 22 protrude and are deformed into a corrugated shape. The enlarged cross-sectional view of the main part in Fig. 6 exaggerates the state in which the surface of the battery cell 1 is pressed by the parallel ridges 21 and deformed into a corrugated shape. The battery cell 1 whose surface has been deformed into a corrugated shape deforms the surface of the laminated electrode 15 housed inside the battery case 11 into a corrugated shape. In the laminated electrode 15, regions A that have been pressed into recesses by the multiple rows of parallel ridges 21 have a high density, while protruding regions B that face the parallel grooves 22 have a low density, resulting in striped low-density regions B that improve the fluidity of the electrolyte. Furthermore, the separator 2 described above absorbs the expansion of the battery cell 1 through the elastic deformation of the elastomer layer 5 while generating striped low-density regions B in the electrode 15, so that even when the battery cell 1 expands and the fluidity of the electrolyte decreases, the electrode 15 has the characteristic of generating striped low-density regions B, thereby improving the fluidity of the electrolyte.
[0040] The battery cell 1 shown in Figs. 4 to 6 is a prismatic battery in which the stacking surface of the battery case 11 on which the separators 2 are stacked is rectangular, and the positive and negative electrode layers 15a, 15b, which are elongated strips, are wound to form a spiral electrode 15, which is then pressed into a flat plate shape and stored in the battery case 11. The electrode 15 is formed by stacking the positive and negative electrode layers 15a, 15b, which are elongated strips, with an insulating sheet 15c sandwiched between them, and then rolling them up to form the spiral electrode 15. The spiral electrode 15 is then pressed into a flat shape and stored in the prismatic battery case 11. As shown in Fig. 4, the separator 2 of the elastomer layer 5 has the parallel ridges 21 and parallel grooves 22 arranged in an orientation that extends in the width direction of the strip-shaped positive and negative electrode layers 15a, 15b. In this separator 2, the parallel ridges 21 are arranged parallel to the extension direction of the U-shaped portion 15A of the spiral electrode 15, and high density regions A and low density regions B extending in the width direction of the electrode layers 15a, 15b are formed in a striped pattern on the surface of the electrode 15. This allows the high density regions A and low density regions B to be naturally provided in a striped pattern on the spiral electrode 15, thereby improving the fluidity of the electrolyte.
[0041] The width (W1) and height (h) of the parallel ridges 21 and the opening width (W2) of the parallel grooves 22 are set to dimensions that enable the parallel ridges 21 to press against the surface of the battery case 11 and deform into a wavy shape, taking into account the hardness of the elastomer layer 5. In the separator 2 having the hardness of the elastomer layer 5 of A30 to A90 degrees, the width (W1) of the parallel ridge 21 is, for example, 1 mm or more and 20 mm or less, preferably 2 mm or more and 10 mm or less, the height (h) is 0.1 mm or more and 2 mm or less, preferably 0.2 mm or more and 1.5 mm or less, the opening width (W2) of the parallel groove 22 is 1 mm or more and 20 mm or less, preferably 2 mm or more and 10 mm or less, and the ratio (W1 / W2) of the width (W1) of the parallel ridge 21 to the opening width (W2) of the parallel groove 22 is 0.1 or more and 10 or less, preferably 0.5 or more and 2 or less, so that the separator 2 can be deformed into a corrugated shape by pressing against the metal battery case 11 of the expanding battery cell 1.
[0042] The separator 2 of the elastomer layer 5 can increase the deformation amount of the battery case 11 by increasing the height (h) of the parallel convex strips 21 and widening the opening width (W2) of the parallel grooves 22. However, if the parallel convex strips 21 are too high, the separator 2 becomes thick and is prone to buckling, so the height (h) of the parallel convex strips 21 is set to the above range taking into consideration the allowable thickness of the separator 2 and the ability to locally press the battery case 11 and deform it into a waveform. In addition, the opening width (W2) of the parallel grooves 22 and the ratio (W1 / W2) of the horizontal width (W1) of the parallel convex strips 21 to the opening width (W2) of the parallel grooves 22 specify the pitch at which the surface of the battery case 11 is deformed into a waveform, and are therefore set to the above range taking into consideration the favorable fluidity of the electrolyte while supporting the expansion of the battery cell 1 with the multiple rows of parallel convex strips 21. For example, the battery cell 1 is a rectangular lithium ion battery, the battery case 11 is an aluminum plate with a thickness of 0.3 mm, and the area of the laminated surface is 100 cm 2 In a power supply device 100 having a width (W1) of the parallel ridges 21 and an opening width (W2) of the parallel grooves 22 of 5 mm, a height of the parallel ridges 21 of 0.5 mm, a hardness of the elastomer layer 5 of A60 degrees, and 12 stacked battery cells 1, when the battery cells 1 expand, the surface facing the separator 2 deforms into a wavy shape, improving the fluidity of the electrolyte.
[0043] The separator 2 shown in FIG. 4 has a structure in which the total length of the parallel ridges 21 extending in the width direction of the battery cell 1 (horizontal direction in the figure) is approximately equal to the width of the battery cell 1, and the parallel ridges 21 extending in parallel stripes press the opposing surfaces of the battery cell 1. Furthermore, as shown in FIG. 7, the separator 2 can also divide the parallel ridges 21 extending in the longitudinal direction into a plurality of parts. The separator 2 shown in FIG. 7 divides one parallel ridge 21 into a plurality of ridges 23 by providing a cutout 24 in the middle of the parallel ridge 21. Furthermore, the arrangement of the ridges 23 between adjacent parallel ridges 21 is made to be staggered when viewed from the front. That is, the positions of the ridges 23 between adjacent parallel ridges 21 are shifted in the left-right direction so that the ridges 23 of one parallel ridge 21 are located at a position opposite the cutout 24 provided on the other parallel ridge 21. The separator 2 shown in the figure has cutouts 24 at both ends of every other row of parallel ridges 21 to form a staggered shape for the ridges 23 of adjacent parallel ridges 21. This structure in which multiple divided ridges 23 are arranged in a staggered shape has the advantage of evenly distributing the pressure from the battery cells 1. However, the multiple divided ridges can also be arranged vertically and horizontally, or randomly. A separator 2 with parallel ridges 21 of the above shape has the advantage of being easier to elastically deform than a separator 2 with an undivided parallel ridge 21, and can effectively absorb the expansion of the battery cells 1.
[0044] Furthermore, in the separator 2 having the shape shown in FIG. 7, the ease of elastic deformation of the parallel ridges 21 can be adjusted by adjusting the length (L1) of the ridges 23 and the length (L2) of the cutouts 24. For example, the separator 2 can be made to be more elastically deformable by increasing the ratio (L2 / L1) of the length (L2) of the cutouts 24 to the length (L1) of the ridges 23, and conversely, the ratio (L2 / L1) can be made to be less elastically deformable. That is, by dividing the parallel ridges 21 into a plurality of parts, the separator 2 is made more deformable than a structure in which the parallel ridges 21 are not divided, and the ease of deformation can be further adjusted by adjusting the ratio (L2 / L1). Furthermore, the ratio (L2 / L1) of the length (L2) of the cutouts 24 to the length (L1) of the ridges 23 can be changed depending on the region even on one surface facing the battery cell 1. For example, in the region facing the central portion where the amount of deformation is large when the battery cell 1 expands, the ratio (L2 / L1) can be increased to make it easier to absorb the deformation, and in the region facing the outer periphery where the amount of deformation is small when the battery cell 1 expands, the ratio (L2 / L1) can be decreased to suppress the deformation.
[0045] The plastic foam layer 6 is more easily deformed than the elastomer layer 5, and when the expansion of the battery cell 1 is small, the deformation of the plastic foam layer 6 is larger than that of the elastomer layer 5, and the proportion of the expansion of the battery cell 1 absorbed by the plastic foam layer 6 is greater than that of the elastomer layer 5. When the expansion of the battery cell 1 becomes large and the deformation of the plastic foam layer 6 exceeds the elastic limit, the elastomer layer 5, which is less likely to deform, deforms and absorbs the expansion. The plastic foam layer 6, which is more easily deformed than the elastomer layer 5, is an open-cell or closed-cell foam. Open-cell plastic foam has a smaller Young's modulus than closed-cell plastic foam. Therefore, the open-cell plastic foam layer elastically deforms in the region where the expansion of the battery cell 1 is small, and effectively absorbs the expansion. This is because when the open-cell foam is pressed and the air bubbles are crushed, the air inside is smoothly exhausted. In the case of bubbles that have had their internal air exhausted, the thin membrane that constitutes the bubble deforms, so the amount of deformation in response to the pressure is large. In contrast, when closed-cell foam is compressed by pressure, the air inside the cells is pressurized, and the air cushion inside the cells suppresses the deformation of the bubbles, so the deformation in response to the pressure is smaller than that of open-cell foam. Open-cell plastic foams, which deform more in response to pressure, can have their Young's modulus adjusted by the expansion ratio and porosity, and the Young's modulus can be reduced by increasing the porosity.
[0046] Even when the closed-cell plastic foam layer is pressed against the battery cell 1 and the bubbles are compressed, the air inside the bubbles is not pushed out, and the air pressure inside the bubbles increases, preventing the bubbles from deforming. Furthermore, as the bubbles are crushed into smaller pieces, the internal pressure increases, suppressing the deformation of the bubbles. Since the closed-cell plastic foam layer suppresses deformation when the air cushion of the bubbles is pressed, it is possible to increase the Young's modulus while maintaining a high expansion ratio. Therefore, it is possible to absorb the expansion of the battery cell 1 while reducing material costs and weight.
[0047] The separator 2 shown in the partially enlarged view of Figure 5 has a non-foamed layer 6B provided on the surface of an open-cell plastic foam layer 6. When this separator 2 is sandwiched between battery cells 1, the non-foamed layer 6B on the surface is in surface contact with the surface of the battery cell 1. With the non-foamed layer 6B in close contact with the surface of the battery cell 1, this separator 2 absorbs the expansion of the battery cell 1 through elastic deformation of the foamed layer 6A. Therefore, this separator 2 can absorb the expansion of the battery cell 1 by deforming into a shape that follows the expansion of the battery cell 1 while the non-foamed layer 6B deforms into a curved shape that follows the surface of the expanding battery cell 1.
[0048] The separator 2 shown in the enlarged cross-sectional view of FIG. 8 is the surface of an open-cell plastic foam layer 6, and the surface of the separator 2 is cut to expose the air bubbles of the foam layer 6C, which has numerous irregularities on the surface due to the open cells. The numerous open cells of the separator 2 absorb the condensed water that adheres to the surface of the battery cell 1, and can suppress leakage and a decrease in insulation resistance due to the condensed water. Since the power supply device is used in various temperature environments, condensed water may adhere to the surface due to changes in the temperature environment. The condensed water that adheres to the surface of the battery cell 1 may flow down to the surface of the current-carrying part and cause leakage or reduce the insulation resistance of the current-carrying part. The separator 2 with open cells exposed on the surface absorbs the condensed water and prevents the harmful effects of condensed water. Furthermore, the separator 2 with open cells exposed on the surface and elastically deformed to adhere to the surface of the battery cell 1 can transfer the absorbed condensed water to the inside, and has the characteristic of being able to absorb a large amount of condensed water and effectively prevent the harmful effects of condensed water.
[0049] The plastic foam layer 6 is adjusted in elasticity and thickness to absorb the expansion by deforming under pressure from the expanding battery cell 1. The amount of deformation of the plastic foam layer 6 caused by the expansion of the battery cell can be adjusted by the type and apparent density of the foamed plastic, and the apparent density can be adjusted by the foaming rate. The open-cell plastic foam layer 6 has an apparent density of, for example, 150 kg / m 3 More than 750kg / m 3 Less than 200 kg / m 3 More than 500kg / m 3Hereinafter, for example, the thickness is set to 0.2 mm or more and 7 mm or less, preferably 1 mm or more and 5 mm or less. Urethane foam is suitable for the open-cell plastic foam layer 6. The urethane foam separator has excellent temperature characteristics, and for example, when compressed to 50% at 100°C for 22 hours, the compression set can be 20% or less.
[0050] The above separator 2 has a plastic foam layer 6 laminated on one side of an elastomer layer 5. As shown in Figures 4 and 5, this separator 2 is laminated between adjacent battery cells 1 and sandwiched from both sides. In this separator 2, the elastomer layer 5 presses against the surface of one of the adjacent battery cells 1, and the plastic foam layer 6 presses against the surface of the other battery cell 1. In this separator 2, the parallel ridges 21 of the elastomer layer 5 press against one side of the battery cell 1, improving the fluidity of the electrolyte on the battery cell surface facing the elastomer layer 5. As shown in Figure 4, separator 2 with this structure is stacked alternately with multiple battery cells 1 and separators 2 to form battery block 10, and is stacked so that the surface of elastomer layer 5 on which parallel ridges 21 and parallel grooves 22 are provided faces the same direction. This allows parallel ridges 21 of elastomer layer 5 to abut against the stacked surfaces of all of the battery cells 1, improving the fluidity of the electrolyte in all of the battery cells 1.
[0051] 9 has a plastic foam layer 6 sandwiched in the middle, and elastomer layers 5 on both sides. This separator 2 has parallel ridges 21 and parallel grooves 22 in the elastomer layers 5 on both sides, and the parallel ridges 21 on both sides press the battery cells 1, improving the fluidity of the electrolyte on the surface of each battery cell.
[0052] As shown in Fig. 4, the above battery cell 1 has the plate-shaped spiral electrode 15 housed in the battery case 11 with its axial direction aligned with the width direction of the battery cell 1. The separator 2 is therefore stacked on the opposing surface of the battery cell 1 with the extension direction of the parallel ridges 21 and parallel grooves 22 aligned with the width direction of the battery cell 1. By stacking the separators 2 so that the parallel ridges 21 and parallel grooves 22 extend horizontally in the figure, the parallel ridges 21 and parallel grooves 22 can be arranged on the surface of the battery cell 1 so as to be parallel to the axial direction of the spiral electrode 15. As a result, when the battery cell 1 expands, high-density regions and low-density regions extending in the width direction of the electrode layers 15a, 15b are formed in a striped pattern on the surface of the spiral electrode 15, improving the fluidity of the electrolyte.
[0053] However, as shown in FIG. 10, the battery cell 1 can also be housed in the battery case 1 with the plate-shaped spiral electrode 15 so that the axial direction is the height direction of the battery cell 1 and the depth direction of the battery case 11. The separator 2 to be stacked on the battery cell 1 with this structure is stacked on the opposing surface of the battery cell 1 so that the extension direction of the parallel ridges 21 and parallel grooves 22 is the height direction of the battery cell 1. With this structure, by stacking the separator 2 on the battery cell 1 so that the parallel ridges 21 and parallel grooves 22 of the separator 2 are oriented to extend in the vertical direction in the figure, the parallel ridges 21 and parallel grooves 2 can be arranged on the surface of the battery cell 1 so that they are parallel to the axial direction of the spiral electrode 15. As a result, when the battery cell 1 expands, high-density regions and low-density regions extending in the width direction of the electrode layers 15a, 15b are formed in a striped pattern on the surface of the spiral electrode 15, improving the fluidity of the electrolyte.
[0054] The power supply device described above can be used as a vehicle power source that supplies power to a motor that runs an electric vehicle. Electric vehicles equipped with the power supply device include hybrid cars and plug-in hybrid cars that run on both an engine and a motor, and electric cars that run only on a motor, and the power supply device is used as a power source for these vehicles. Note that an example will be described in which a large capacity, high output power supply device 100 is constructed by connecting a large number of the above-mentioned power supply devices in series or in parallel to obtain power to drive a vehicle, and further adding necessary control circuits.
[0055] (Power supply unit for hybrid vehicles) FIG. 11 shows an example of a power supply device mounted on a hybrid vehicle that runs on both an engine and a motor. The vehicle HV equipped with the power supply device shown in this figure includes a vehicle body 91, an engine 96 and a motor 93 for running the vehicle body 91, wheels 97 driven by the engine 96 and the motor 93 for running, a power supply device 100 that supplies power to the motor 93, and a generator 94 that charges the battery of the power supply device 100. The power supply device 100 is connected to the motor 93 and the generator 94 via a DC / AC inverter 95. The vehicle HV runs on both the motor 93 and the engine 96 while charging and discharging the battery of the power supply device 100. The motor 93 is driven in an area where the engine efficiency is poor, such as during acceleration or low-speed running, to run the vehicle. The motor 93 is driven by power supplied from the power supply device 100. The generator 94 is driven by the engine 96 or by regenerative braking when braking the vehicle, and charges the battery of the power supply device 100. 11, the vehicle HV may be provided with a charging plug 98 for charging the power supply device 100. The power supply device 100 can be charged by connecting this charging plug 98 to an external power source.
[0056] (Power supply unit for electric vehicles) FIG. 12 shows an example of a power supply device mounted on an electric vehicle that runs only on a motor. The vehicle EV equipped with the power supply device shown in this figure includes a vehicle body 91, a motor 93 for driving the vehicle body 91, wheels 97 driven by the motor 93, a power supply device 100 that supplies power to the motor 93, and a generator 94 that charges the battery of the power supply device 100. The power supply device 100 is connected to the motor 93 and the generator 94 via a DC / AC inverter 95. The motor 93 is driven by power supplied from the power supply device 100. The generator 94 is driven by energy generated when the vehicle EV is subjected to regenerative braking, and charges the battery of the power supply device 100. The vehicle EV also includes a charging plug 98, which can be connected to an external power source to charge the power supply device 100.
[0057] (Power supply device for power storage device) Furthermore, the present invention does not limit the use of the power supply device to a power supply for a motor that runs a vehicle. The power supply device according to the embodiment can also be used as a power supply for a power storage device that charges a battery with power generated by solar power generation, wind power generation, or the like and stores the power. Fig. 13 shows a power storage device that charges a battery of a power supply device 100 with a solar cell 82 and stores the power.
[0058] The power storage device shown in FIG. 13 charges a battery of a power supply device 100 with power generated by a solar cell 82 arranged on the roof or rooftop of a building 81 such as a house or a factory. This power storage device charges the battery of the power supply device 100 with a charging circuit 83 using the solar cell 82 as a charging power source, and then supplies power to a load 86 via a DC / AC inverter 85. For this reason, this power storage device has a charging mode and a discharging mode. The power storage device shown in the figure connects the DC / AC inverter 85 and the charging circuit 83 to the power supply device 100 via a discharge switch 87 and a charge switch 84, respectively. The discharge switch 87 and the charge switch 84 are switched ON / OFF by a power storage device power supply controller 88. In the charge mode, the power supply controller 88 switches the charge switch 84 ON and the discharge switch 87 OFF to allow charging from the charging circuit 83 to the power supply device 100. Furthermore, when charging is completed and the battery is fully charged, or when a predetermined charged capacity or more has been reached, the power supply controller 88 switches the charging switch 84 OFF and the discharging switch 87 ON to switch to a discharging mode, permitting discharging from the power supply device 100 to the load 86. Furthermore, if necessary, the charging switch 84 can be turned ON and the discharging switch 87 can be turned ON to supply power to the load 86 and charge the power supply device 100 at the same time.
[0059] Furthermore, although not shown, the power supply device can also be used as a power source for a power storage device that uses late-night power at night to charge and store electricity in a battery. A power supply device that is charged with late-night power is charged with late-night power, which is surplus electricity from power plants, and outputs electricity during the day when the power load is high, making it possible to limit daytime peak power to a low level. Furthermore, the power supply device can also be used as a power source that charges with both the output of solar cells and late-night power. This power supply device effectively uses both the power generated by solar cells and the late-night power, and can efficiently store electricity while taking into account the weather and power consumption.
[0060] The above-described power storage device can be suitably used for applications such as a backup power supply device that can be mounted on a computer server rack, a backup power supply device for wireless base stations for mobile phones and the like, a power supply for home or factory storage, a power supply for street lights, a power storage device combined with a solar cell, and a backup power supply for traffic lights and road traffic indicators. [Industrial Applicability]
[0061] The power supply device according to the present invention can be suitably used as a large current power supply for the power supply of motors for driving electric vehicles such as hybrid cars, fuel cell cars, electric cars, and electric motorcycles. Examples of such power supply devices include plug-in hybrid electric cars, hybrid electric cars, electric cars, and the like that can switch between EV driving mode and HEV driving mode. The power supply device can also be suitably used for applications such as a backup power supply device that can be mounted on a rack for a computer server, a backup power supply device for wireless base stations for mobile phones, and the like, a power storage power supply for home and factory use, a power supply for street lights, and the like, a power storage device combined with a solar cell, and a backup power supply for traffic lights, and the like. [Explanation of symbols]
[0062] 100...Power supply device 1. Battery cell 2...Separator 3…End plate 4. Binding bar 5...Elastomer layer 6…Plastic foam layer 6A…Foam layer 6B: Non-foamed layer 6C…Foam layer with exposed bubbles 10…Battery block 11…Battery case 12...Sealing plate 13...Electrode terminal 14...Safety valve 15...Electrode 15A…U curve section 15a...electrode layer 15b...electrode layer 15c…Insulating sheet 20…Plate-shaped part 21...Parallel convex stripes 22...Parallel groove 23…Convex part 24...Resection part 81…Building 82…Solar cell 83…Charging circuit 84…Charging switch 85…DC / AC inverter 86…Load 87…Discharge switch 88…Power supply controller 91…Vehicle body 93…Motor 94…Generator 95…DC / AC inverter 96…Engine 97...Wheel 98…Charging plug HV, EV...Vehicles
Claims
1. a battery block formed by stacking a plurality of battery cells in a thickness direction with separators sandwiched between the battery cells; a pair of end plates disposed on both end surfaces of the battery block; a bind bar that is connected to the pair of end plates and that fixes the battery block in a pressurized state via the end plates; A power supply device comprising: The separator is An elastomer layer; a plastic foam layer having a larger deformation amount against a pressing force than the elastomer layer is laminated thereon; The elastomer layer comprises: The surface of the plate-shaped portion facing the battery cell has: A plurality of parallel ridges and a plurality of parallel grooves are alternately arranged, A power supply device having a comb-like cross-sectional shape.
2. 2. The power supply device according to claim 1, The power supply device, wherein the elastomer layer is a non-foamed synthetic rubber.
3. 3. The power supply device according to claim 2, The synthetic rubber of the elastomer layer is The power supply device is made of any of fluororubber, isoprene rubber, styrene butadiene rubber, butadiene rubber, chloroprone rubber, nitrile rubber, hydrogenated nitrile rubber, polyisobutylene rubber, ethylene propylene rubber, ethylene vinyl acetate copolymer rubber, chlorosulfonated polyethylene rubber, acrylic rubber, epichlorohydrin rubber, urethane rubber, silicone rubber, thermoplastic olefin rubber, ethylene propylene diene rubber, butyl rubber, and polyether rubber.
4. 4. The power supply device according to claim 1, The power supply device, wherein the plastic foam layer is an open-cell plastic foam.
5. 4. The power supply device according to claim 1, The power supply device, wherein the plastic foam layer is a closed cell plastic foam.
6. 6. A power supply device according to claim 1, The power supply device wherein the plastic foam layer is a urethane foam.
7. 7. The power supply device according to claim 1, The width (W1) of the parallel convex strip and the opening width (W2) of the parallel groove are A power supply device having a thickness of 1 mm or more and 20 mm or less.
8. 8. A power supply device according to claim 1, A power supply device in which the height (h) of the parallel ridges is 0.1 mm or more and 2 mm or less.
9. 9. A power supply device according to claim 1, The ratio (W1 / W2) of the width (W1) of the parallel convex strip to the opening width (W2) of the parallel groove is A power supply device having a ratio of 0.1 or more and 10 or less.
10. 10. A power supply device according to claim 1, The electrode of the battery cell is A plate-shaped electrode in which positive and negative electrode layers extending in a strip shape are wound in a spiral shape and pressed into a flat surface. The elastomer layer of the separator is The parallel ridges and the parallel grooves, A power supply device characterized in that strip-shaped positive and negative electrode layers are arranged in a position extending in the width direction.
11. A battery block formed by stacking a plurality of battery cells in the thickness direction with separators sandwiched therebetween; a pair of end plates disposed on both end surfaces of the battery block; a bind bar that is connected to the pair of end plates and that fixes the battery block in a pressurized state via the end plates; A power supply device comprising: The separator is An elastomer layer; a plastic foam layer having a larger deformation amount against a pressing force than the elastomer layer is laminated thereon; The power supply device has a two-layer structure of the elastomer layer and the plastic foam layer.
12. A battery block formed by stacking a plurality of battery cells in the thickness direction with separators sandwiched therebetween; a pair of end plates disposed on both end surfaces of the battery block; a bind bar that is connected to the pair of end plates and that fixes the battery block in a pressurized state via the end plates; A power supply device comprising: The separator is An elastomer layer; a plastic foam layer having a larger deformation amount against a pressing force than the elastomer layer is laminated thereon; The power supply device has a three-layer structure in which the elastomer layer is laminated on both sides of the plastic foam layer.
13. An electric vehicle comprising the power supply device according to any one of claims 1 to 12, The power supply device; a driving motor supplied with power from the power supply device; and a vehicle body having the power supply device and the motor mounted thereon; a wheel driven by the motor to move the vehicle body; An electric vehicle equipped with
14. A power storage device comprising the power supply device according to any one of claims 1 to 12, The power supply device; a power supply controller for controlling charging and discharging of the power supply device; Equipped with The power storage device enables charging of the battery cells with external power by the power supply controller, and controls the charging of the battery cells.
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