Power supply device, vehicle equipped with same, and power storage device
The power supply device addresses the challenge of safely discharging high-temperature, high-pressure gas by using a reinforced metal cover and baffle system to prevent duct deformation, ensuring controlled and safe gas discharge.
Patent Information
- Application Number
- JP2022511563
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-03-31
- Filing Date
- 2021-01-20
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2041-01-20
AI Technical Summary
Existing power supply devices face challenges in safely discharging high-temperature, high-pressure gas from battery cells without causing deformation of the gas duct, which can lead to unintended gas exhaust paths and potential hazards.
A power supply device design featuring a metal third cover that reinforces the second cover, combined with a baffle system, to prevent deformation and ensure safe gas discharge, along with a two-layer gas duct structure to disperse the gas effectively.
The design effectively suppresses deformation of the gas duct, ensuring safe and controlled discharge of high-temperature, high-pressure gas, reducing the risk of unintended paths and enhancing safety.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present disclosure relates to a power supply device, a vehicle including the same, and a power storage device. [Background technology]
[0002] 2. Description of the Related Art Power supply devices such as battery modules and battery packs each having a plurality of battery cells are used as power sources for vehicles such as hybrid cars and electric cars, and as power sources for factory and home power storage systems (see, for example, Patent Document 1).
[0003] The battery cells that make up such power supply devices are equipped with gas exhaust valves that open to release gas if high pressure occurs inside the outer casing due to an abnormality. If high pressure occurs inside any of the battery cells for some reason, such as thermal runaway, high-temperature, high-pressure gas is released from the gas exhaust valve.
[0004] To prevent this from happening, a structure has been proposed in which a baffle plate is provided inside the gas duct, as shown in the cross-sectional view of Figure 4. With this structure, the gas exhaust path is bent to reduce the momentum and temperature, making it possible to safely exhaust the gas to the outside.
[0005] However, because the gas pressure was high, as shown in the cross-sectional view of Figure 5, the gas pressure caused the duct to deform, resulting in the formation of an exhaust path for the gas that avoided the baffle plate, and there was a possibility that the gas would be exhausted to the outside of the power supply unit at high pressure and temperature. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] International Publication No. 2014 / 024452 Summary of the Invention [Problem to be solved by the invention]
[0007] An object of one embodiment of the present invention is to provide a power supply device that can safely discharge gas to the outside when gas is discharged from a battery cell, and a vehicle and a power storage device including the power supply device. [Means for solving the problem]
[0008] A power supply device according to one aspect of the present invention comprises a battery stack made up of a plurality of stacked battery cells, each of which has a gas exhaust valve that opens when the internal pressure of an outer can rises and an electrode terminal formed on its upper surface, a first cover provided on the upper surface of the battery stack and which has openings at positions corresponding to the gas exhaust valves, and a second cover provided on the upper surface of the first cover and defining a gas duct between itself and the first cover, wherein the gas duct forms a baffle between the first cover and the second cover, and the power supply device further comprises a metal third cover provided on the upper surface of the second cover and abutting the upper surface of the second cover. Effect of the Invention
[0009] In a power supply device according to one aspect of the present invention, even if high-temperature, high-pressure gas is discharged from the gas exhaust valve, the upper surface of the second cover can be reinforced with a metal third cover to suppress deformation of the second cover and prevent the formation of an unintended gas exhaust path that avoids the baffle. [Brief description of the drawings]
[0010] [Figure 1] 1 is a perspective view showing a power supply device according to a first embodiment of the present invention. [Diagram 2] FIG. 2 is an exploded perspective view of the power supply device shown in FIG. [Diagram 3] 3 is an enlarged schematic cross-sectional view showing a gas duct portion of the power supply device according to the first embodiment. FIG. [Figure 4] FIG. 11 is a cross-sectional view of a power supply device showing a conventional outer edge prevention structure. [Diagram 5] 5 is a cross-sectional view showing a state in which gas is discharged from the power supply device of FIG. 4. [Figure 6]3 is an exploded perspective view showing a state in which a reinforcing cover is removed from the cover assembly of FIG. 2. FIG. [Figure 7] FIG. 7 is an exploded perspective view of FIG. 6. [Figure 8] FIG. 8 is an exploded perspective view of FIG. 7 as seen obliquely from below. [Figure 9] 2 is an exploded perspective view showing the power supply device of FIG. 1 with a reinforcing cover removed. FIG. [Figure 10] 2 is a plan view of the power supply device of FIG. 1 with a reinforcing cover seen through. FIG. [Figure 11] 11 is a cross-sectional view with an enlarged view of a main part taken along line XI-XI in FIG. [Figure 12] FIG. 13 is an enlarged schematic cross-sectional view showing a gas duct portion of a power supply device that is not provided with a communication rib. [Figure 13] 13 is an enlarged schematic cross-sectional view showing a gas duct portion of a power supply device provided with a communication rib; FIG. [Figure 14] FIG. 11 is a perspective view showing a power supply device according to a second embodiment of the present invention. [Figure 15] 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 16] 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 17] 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 embodiment of the present invention may be specified by the following configurations.
[0012] In addition to the above configuration, a power supply device according to one embodiment of the present invention further includes end plates that cover the sides of the battery stack, and the third cover is fixed to the end plates. With the above configuration, the third cover can be firmly fixed to the power supply device using the end plates, and the third cover can prevent deformation of the second cover.
[0013] In a power supply device according to another embodiment of the present invention, in addition to any of the configurations described above, the battery stack further includes a pair of fastening members that fasten the end plates to each other on both side surfaces of the battery stack, and the battery stack fastens the multiple battery cells with the pair of fastening members and a third cover on the top surface. With the above configuration, the fastened state can be maintained not only by the fastening members that fasten the multiple battery cells in a stacked state, but also by the third cover on the top surface, so that the third cover can be used as a fastening member to more firmly maintain the fastened state of the battery stack.
[0014] In addition to any of the configurations described above, a power supply device according to another embodiment of the present invention further includes a bus bar that connects the electrode terminals of the battery cells that make up the battery stack and a terminal piece connected to the bus bar, and the third cover forms an exposed portion that exposes the terminal piece. With the above configuration, while using a metal third cover, it is possible to ensure an insulation distance by separating it from the terminal piece, thereby avoiding the risk of an unintended short circuit.
[0015] Furthermore, in a power supply device according to another embodiment of the present invention, in addition to any of the configurations described above, the third cover has a bead formed thereon. With the above configuration, it is possible to improve strength by a simple process of forming a bead on the third cover.
[0016] Furthermore, in addition to any one of the configurations described above, the power supply device according to another embodiment of the present invention is configured such that the first cover and the second cover are made of resin.
[0017] Furthermore, an electric vehicle according to another embodiment of the present invention includes any of the power supply devices described above, a motor for driving supplied with power from the power supply device, a vehicle body mounting the power supply device and the motor, and wheels driven by the motor to drive the vehicle body.
[0018] Furthermore, an energy storage device according to another embodiment of the present invention comprises any of the power supply devices described above 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 charging of the battery cells.
[0019] Hereinafter, an embodiment of the present invention will be described based on the drawings. However, the embodiment shown below is an example for embodying the technical idea of the present invention, and the present invention is not limited to the following. In addition, this specification never specifies the members shown in the claims to the members of the embodiment. In particular, the dimensions, materials, shapes, and relative arrangements of the components described in the embodiment are not intended to limit the scope of the present invention to those, and are merely explanatory examples, unless otherwise specified. Note that the size and positional relationship of the components shown in each drawing may be exaggerated to clarify the explanation. Furthermore, in the following explanation, the same name and symbol indicate the same or similar components, and detailed explanations will be omitted as appropriate. Furthermore, each element constituting the present invention may be configured as a form in which multiple elements are composed of the same member, and one member serves multiple elements, or conversely, the function of one member can be shared and realized by multiple members. In addition, the contents described in some examples and embodiments may be applicable to other examples, embodiments, etc.
[0020] The power supply device according to the embodiment is used for various purposes, such as a power supply mounted on an electric vehicle such as a hybrid car or an electric car to supply power to a driving motor, a power supply for storing power generated by natural energy such as solar power generation or wind power generation, or a power supply for storing late-night power, and is particularly used as a power supply suitable for large power and large current applications. In the following example, an embodiment applied to a power supply device for driving an electric vehicle will be described. [Embodiment 1]
[0021] A power supply device 100 according to a first embodiment of the present invention is shown in Figures 1 and 2. In these figures, Figure 1 shows an exploded perspective view of the power supply device 100 according to the first embodiment, and Figure 2 shows an exploded perspective view of the power supply device 100 shown in Figure 1.
[0022] The power supply device 100 shown in these figures comprises a battery stack 10 made up of multiple stacked battery cells 1, a pair of end plates 20 covering both side ends of the battery stack 10, a number of fastening members 15 fastening the end plates 20 together, and a cover assembly 40 provided on the top surface of the battery stack 10.
[0023] The fastening members 15 are formed in a plate shape that extends along the stacking direction of the multiple battery cells 1. The fastening members 15 are disposed on opposing side surfaces of the battery stack 10 and fasten the end plates 20 together. (Battery stack 10)
[0024] As shown in FIG. 2, the battery stack 10 includes a plurality of battery cells 1 each having positive and negative electrode terminals 2, and bus bars that are connected to the electrode terminals 2 of the battery cells 1 and connect the battery cells 1 in parallel and in series. The battery cells 1 are connected in parallel and in series via these bus bars. The battery cells 1 are secondary batteries that can be charged and discharged. In the power supply device 100, the battery cells 1 are connected in parallel to form parallel battery groups, and the parallel battery groups are connected in series to connect many battery cells 1 in parallel and in series. The power supply device 100 shown in FIG. 2 stacks the battery cells 1 to form the battery stack 10. A pair of end plates 20 are arranged on both end faces of the battery stack 10. The ends of fastening members 15 are fixed to the end plates 20 to fix the stacked battery cells 1 in a pressed state. (Battery cell 1)
[0025] As shown in FIG. 2, the battery cells 1 are rectangular batteries that are wider than their thickness, in other words thinner than their width, and are stacked in the thickness direction to form a battery stack 10. The battery cells 1 can be, for example, lithium-ion secondary batteries. The battery cells can also be any rechargeable secondary batteries, such as nickel-metal hydride batteries and nickel-cadmium batteries. The battery cells 1 house positive and negative electrode plates together with an electrolyte in an outer can 1a with a sealed structure. The outer can 1a is formed by pressing a metal plate such as aluminum or an aluminum alloy into a rectangular shape, and the opening is airtightly sealed with a sealing plate 1b. The sealing plate 1b is made of the same aluminum or aluminum alloy as the rectangular outer can 1a, and has positive and negative electrode terminals 2 fixed to both ends. Furthermore, the sealing plate 1b is provided with a gas exhaust valve 1c, which is a safety valve that opens in response to pressure changes inside the battery cells 1, between the positive and negative electrode terminals 2.
[0026] A plurality of battery cells 1 are stacked such that the thickness direction of each battery cell 1 is the stacking direction to form a battery stack 10. In this case, by stacking a larger number of battery cells than usual, it is possible to increase the output of the battery stack 10. In such a case, the battery stack 10 becomes elongated in the stacking direction. The battery cells 1 are arranged with their terminal surfaces 1X, on which the positive and negative electrode terminals 2 are provided, on the same plane, and the plurality of battery cells 1 are stacked to form the battery stack 10. The upper surface of the battery stack 10 is the surface on which the gas release valves 1c of the plurality of battery cells 1 are provided. (electrode terminal 2)
[0027] 2 etc., the battery cell 1 has a terminal surface 1X formed by a sealing plate 1b, which is the top surface, and positive and negative electrode terminals 2 are fixed to both ends of this terminal surface 1X. The electrode terminals 2 have cylindrical protrusions. However, the protrusions do not necessarily have to be cylindrical, and can also be polygonal or elliptical.
[0028] The positions of the positive and negative electrode terminals 2 fixed to the sealing plate 1b of the battery cell 1 are such that the positive and negative electrodes are symmetrical. As a result, as shown in FIG. 2, the battery cells 1 are stacked in a reversed state, and adjacent positive and negative electrode terminals 2 that are close to each other are connected by a bus bar, so that adjacent battery cells 1 can be connected in series. Note that the present invention does not specify the number of battery cells that make up the battery stack and their connection state. The number of battery cells that make up the battery stack and their connection state can be changed in various ways, including other embodiments that will be described later.
[0029] Multiple battery cells 1 are stacked so that the thickness direction of each battery cell 1 is the stacking direction to form a battery stack 10. In the battery stack 10, multiple battery cells 1 are stacked so that the terminal surfaces 1X on which the positive and negative electrode terminals 2 are provided, that is, the sealing plate 1b in FIG. 2, are on the same plane.
[0030] The battery stack 10 may have an insulating spacer 16 between adjacent stacked battery cells 1. The insulating spacer 16 is made of an insulating material such as resin in the shape of a thin plate or sheet. The insulating spacer 16 is in the shape of a plate having a size almost equal to the size of the opposing surfaces of the battery cells 1. The insulating spacer 16 can be stacked between adjacent battery cells 1 to insulate the adjacent battery cells 1 from each other. Note that, as the spacer to be placed between adjacent battery cells, a spacer having a shape that forms a flow path for cooling gas between the battery cell and the spacer can also be used. The surface of the battery cell can also be covered with an insulating material. For example, the surface of the exterior can excluding the electrode terminal portion of the battery cell can be covered with a shrink film such as PET resin. In this case, the insulating spacer may be omitted. In addition, in a power supply device in which multiple battery cells are connected in parallel or in series, insulating spacers are interposed between the battery cells connected in series to insulate them from each other, while no voltage difference occurs between adjacent exterior cans between battery cells connected in parallel to each other, so the insulating spacer between these battery cells can also be omitted.
[0031] Furthermore, the power supply device 100 shown in Fig. 2 has end plates 20 disposed on both end faces of the battery stack 10. Note that end plate 20 and battery stack 10 may be insulated by interposing end spacers 17 between them. The end spacers 17 can also be made into thin plate or sheet shapes from an insulating material such as resin.
[0032] In the power supply device 100 according to the first embodiment, a battery stack 10 in which a plurality of battery cells 1 are stacked on top of one another is configured such that the electrode terminals 2 of adjacent battery cells 1 are connected by a bus bar to connect the plurality of battery cells 1 in parallel and in series. A bus bar holder may be disposed between the battery stack 10 and the bus bar. By using the bus bar holder, the plurality of bus bars can be disposed in fixed positions on the upper surface of the battery stack while insulating the plurality of bus bars from one another and insulating the terminal surfaces 1X of the battery cells from the bus bar. A cover assembly 40, which will be described later, may be integrated with the bus bar holder.
[0033] Busbars are manufactured by cutting and processing metal sheets into a desired shape. The metal sheets that make up the busbars can be made of metals that have low electrical resistance and are lightweight, such as aluminum sheets or copper sheets, or alloys of these. However, other metals that have low electrical resistance and are lightweight, or alloys of these metals, can also be used for the metal sheets of the busbars. (End plate 20)
[0034] 2, the end plates 20 are arranged on both ends of the battery stack 10 and are fastened via a pair of left and right fastening members 15 arranged along both side surfaces of the battery stack 10. The end plates 20 are located on the outsides of the end spacers 17, at both ends of the battery stack 10 in the stacking direction of the battery cells 1, and sandwich the battery stack 10 from both ends. (Fastening member 15)
[0035] Both ends of the fastening members 15 are fixed to end plates 20 arranged on both end faces of the battery stack 10. The end plates 20 are fixed using a plurality of fastening members 15, thereby fastening the battery stack 10 in the stacking direction. As shown in FIG. 2 etc., each fastening member 15 is made of metal and has a predetermined width and thickness that fits along the side of the battery stack 10, and is arranged facing both side faces of the battery stack 10. These fastening members 15 can be made of a metal plate such as iron, preferably a steel plate. The fastening members 15 made of metal plate are bent by press forming or the like to be formed into a predetermined shape.
[0036] The fastening member 15 is formed by bending the top and bottom of the plate-shaped fastening main surface 15a into a U-shape to form bent pieces 15d. The top and bottom bent pieces 15d cover the top and bottom corners of the left and right side surfaces of the battery stack 10. The fastening member 15 is fixed to the outer circumferential surface of the end plate 20 by screwing bolts 15f into multiple screw holes opened in the fastening main surface 15a. Note that the method of fixing the fastening main surface 15a to the end plate 20 is not necessarily limited to screwing using bolts, and pins, rivets, etc. may also be used.
[0037] A power supply device 100 in which many battery cells 1 are stacked is configured to restrain the multiple battery cells 1 by connecting end plates 20 arranged on both ends of a battery stack 10 made up of the multiple battery cells 1 with fastening members 15. By restraining the multiple battery cells 1 via the highly rigid end plates 20 and fastening members 15, it is possible to suppress the expansion, deformation, relative movement, and malfunction due to vibration of the battery cells 1 that accompanies charging / discharging and deterioration. (Insulation sheet 30)
[0038] An insulating sheet 30 is interposed between the fastening members 15 and the battery stack 10. The insulating sheet 30 is made of an insulating material, such as resin, and provides insulation between the metal fastening members 15 and the battery cells. The insulating sheet 30 shown in FIG. 2 and other figures is made of a flat plate 31 that covers the side surfaces of the battery stack 10, and folded covering portions 32 provided above and below the flat plate 31. The folded covering portions 32 are folded in a U-shape from the flat plate 31 so as to cover the folded pieces 15d of the fastening members 15, and then folded back again. In this way, the folded pieces 15d are covered from the top surface to the side surfaces and bottom surface with the insulating folded covering portions, thereby preventing unintended electrical connection between the battery cells 1 and the fastening members 15.
[0039] Additionally, the bent pieces 15d press against the top and bottom surfaces of the battery cells 1 of the battery stack 10 via the folded covering portions 32. As a result, each battery cell 1 is pressed from above and below by the bent pieces 15d to hold it in the height direction, and even if vibrations, shocks, etc. are applied to the battery stack 10, each battery cell 1 can be kept from shifting position in the vertical direction.
[0040] Note that if the battery stack or the surface of the battery stack is insulated, for example, if the battery cells are housed in an insulating case or covered with a resin heat-shrinkable film, or if the surfaces of the fastening members are coated with an insulating paint or coating, or if the fastening members are made of an insulating material, the insulating sheet may be unnecessary. Also, if there is no need to consider insulation from the folded pieces 15d of the fastening members 15 on the underside of the battery stack 10, the folded covering portion 32 may be formed only on the upper end side of the insulating sheet 30. For example, this would be the case if the battery cells 1 are covered with a heat-shrinkable film. The insulating sheet 30 may also be configured to double as a bus bar holder that holds the bus bars described above. (Cover assembly 40)
[0041] The power supply device 100 has a cover assembly 40 provided on the top surface of the battery stack 10. The cover assembly 40 constitutes a gas exhaust path that exhausts high-temperature, high-pressure gas to the outside of the power supply device 100 when the gas is exhausted from any of the battery cells 1 that make up the battery stack 10. The cover assembly 40 may also be configured to function as a busbar holder that holds the busbars.
[0042] 3, the cover assembly 40 includes a first cover 41, a second cover 42, and a third cover 39. The first cover 41 is provided on the top surface of the battery stack 10. This first cover 41 has gas inlet ports 47 opened at positions corresponding to the gas exhaust valves 1c of the battery cells 1 that make up the battery stack 10.
[0043] In addition, the second cover 42 is provided on the upper surface of the first cover 41, and defines the gas duct 38 between this cover and the first cover 41. A baffle plate 48 is formed inside the gas duct 38 between the first cover 41 and the second cover 42. As a result, even if high-temperature, high-pressure gas GS is discharged from the gas discharge valve 1c, the progress of the gas GS is impeded before it is discharged to the side surface of the battery stack 10, reducing the pressure and temperature, and allowing the gas to be safely discharged to the outside.
[0044] Furthermore, the third cover 39 is provided on the upper surface of the second cover 42 and abuts against the upper surface of the second cover 42. The third cover 39 is made of metal. With this configuration, even if high-temperature, high-pressure gas GS is discharged from the gas discharge valve 1c, the upper surface of the second cover 42 is reinforced with the metal third cover 39, thereby suppressing deformation of the second cover 42 and preventing the formation of an unintended gas discharge path that avoids the baffle plate 48.
[0045] As shown in the schematic cross-sectional view of FIG. 4, a power supply device 800 according to a comparative example is provided with a number of baffle plates 48 in the gas duct 38, and the gas GS is bent so as to be discharged along the baffle plates 48, thereby reducing the momentum and temperature, and enabling the gas to be safely discharged to the outside.
[0046] However, if the pressure of the exhausted gas GS is high, the gas pressure may deform the gas duct 38, forming a gas exhaust path that avoids the baffle plate 48, and the gas GS may be exhausted to the outside of the power supply device while still at high pressure and temperature, as shown in the cross-sectional view of Fig. 5. In particular, when the first cover 41 and the second cover 42 constituting the gas duct 38 are made of resin from the viewpoint of insulation, etc., there is a limit to the resistance to deformation.
[0047] In contrast, in the power supply device 100 according to this embodiment, as shown in FIG. 3, the upper surface of the second cover 42 is covered with a metallic third cover 39, thereby making it possible to suppress deformation due to gas pressure.
[0048] The third cover 39 also improves the rigidity against the swelling of the battery cells. Because the battery cells 1 expand when they are charged and discharged, this deformation accumulates and changes the overall length of the battery stack 10. To resist the swelling force of the battery stack 10, end plates 20 are arranged on the end faces of the battery stack 10 as shown in FIG. 2, and the end plates 20 are fastened to each other at the side faces of the battery stack 10 with fastening members 15. By fixing the third cover 39 to the end plates 20, the rigidity against the swelling force of the battery cells can be improved even on the top surface of the battery stack 10. Meanwhile, the first cover 41 and the second cover 42 are made of resin that ensures insulation and that makes it easy to form a baffle plate 48 inside the gas duct 38, and different functions are assigned to each cover and the covers are made of materials according to the functions assigned to them.
[0049] A specific configuration of the cover assembly 40 will be described below with reference to Figs. 6 to 11. In these figures, Fig. 6 is an exploded perspective view showing a state in which the reinforcing cover 60 is removed from the cover assembly 40 in Fig. 2, Fig. 7 is an exploded perspective view of Fig. 6, Fig. 8 is an exploded perspective view of Fig. 7 seen obliquely from below, Fig. 9 is an exploded perspective view showing a state in which the reinforcing cover 60 is removed from the power supply device 100 in Fig. 1, Fig. 10 is a plan view of the power supply device 100 in Fig. 1 in a see-through state of the reinforcing cover 60, and Fig. 11 is a cross-sectional view with an enlarged view of a main part taken along line XI-XI in Fig. 10. The cover assembly 40 shown in these figures includes a lower cover 46, an upper cover 50, and a reinforcing cover 60. The lower cover corresponds to the first cover 41 described above, the upper cover 50 corresponds to the second cover 42, and the reinforcing cover 60 corresponds to the third cover 39, respectively. (Lower cover 46)
[0050] The lower cover 46 is provided on the upper surface of the battery stack 10, and defines a first gas duct that communicates with the gas exhaust valve 1c. As shown in Figs. 7-8, the lower cover 46 has a gas inlet 47 at a position corresponding to the gas exhaust valve 1c of the battery cell 1. As shown in Figs. 7-8, 11, etc., the lower cover 46 is formed with a number of baffle plates 48, which reduce the momentum of the high-temperature, high-pressure gas by changing its direction of travel before it is exhausted, thereby lowering its temperature. Gas exhaust paths are provided not only in the stacking direction of the battery cells 1, but also in a direction that intersects this direction. The lower cover 46 is made of resin with excellent insulating properties, such as polycarbonate. (Intermediate plate 49)
[0051] An intermediate plate 49 is provided on the upper surface of the lower cover 46. The intermediate plate 49 is provided in the center of the width of the battery stack 10 and is positioned so as to face the gas exhaust valve 1c. The intermediate plate 49 is made of a material with excellent strength, such as metal. As a result, even if high-temperature, high-pressure gas is exhausted from the gas exhaust path, it is received by the metal intermediate plate 49, which has higher strength than a resin cover, and this prevents the gas from being ejected directly through the power supply device 100. (Top cover 50)
[0052] The upper cover 50 is provided on the upper surface of the lower cover 46, and defines a second gas duct on the upper surface of the first gas duct. The upper cover 50 is made of resin. In addition, a plurality of communication holes 51 that communicate the first gas duct and the second gas duct are formed on the upper surface of the upper cover 50. By making the gas duct 38 into a two-layer structure of the first gas duct and the second gas duct in this way, even if gas is discharged from the battery cell, the gas is branched into the first gas duct and the second gas duct and dispersed and discharged, thereby preventing the gas from accumulating inside the power supply device and suppressing the situation where the gas discharged to the outside ignites. In addition, by providing a plurality of gas discharge outlets, the cross-sectional area of each outlet can be reduced, and the risk of ignition can be reduced even if high-temperature gas is discharged. (Communication hole 51)
[0053] It is preferable that the communication holes 51 are not opened for all the battery cells, but are opened discretely to serve multiple battery cells. In the example of Fig. 7 etc., three communication holes 51 are opened in the stacking direction for a battery stack 10 in which 12 battery cells 1 are stacked.
[0054] Furthermore, it is preferable that the communication hole 51 is provided at an offset position rather than facing the gas exhaust valve 1c. By not having the communication hole 51 open directly to the gas exhaust valve 1c, it is possible to facilitate dispersion of the gas. In the example shown in Fig. 2, the gas exhaust valve 1c is provided in the center of the sealing plate 1b of the battery cell 1. Meanwhile, the communication holes 51 are opened at positions corresponding to the left and right of the sealing plate 1b of the battery cell 1, as shown in Fig. 7 etc.
[0055] The communication hole 51 is preferably formed in a slit shape. The width and length of the slit, the height of the second gas duct, etc. can be adjusted to set the path area of the second gas duct, and the amount of gas discharged can be controlled. In the example of Fig. 11 etc., the height of the second gas duct is determined by the height of the communication rib 52 described later. (Communicating rib 52)
[0056] The upper cover 50 is provided with a communication rib 52 protruding toward the reinforcing cover 60 around the communication hole 51. This prevents the path for introducing gas into the second gas duct from being blocked. In a configuration without a communication rib, as in the power supply device 700 shown in the schematic cross-sectional view of FIG. 12, when high-pressure gas is discharged from the gas exhaust valve 1c, the periphery of the communication hole 51 opened in the upper cover 50 may be deformed by the gas pressure, blocking the gas exhaust path. In this state, the gas is not guided to the second gas duct, and the gas cannot be dispersed and discharged through the second gas duct. In contrast, as shown in the schematic cross-sectional view of FIG. 13, by providing a communication rib 52 around the communication hole 51, deformation around the communication hole 51 is prevented, an open end to the second gas duct is secured, and the high-pressure gas can be guided to the second gas duct.
[0057] The communication rib 52 is provided on a part of the circumference of the communication hole 51, not on the whole circumference, so as not to obstruct the flow of gas into the second gas duct. Preferably, as shown in the plan view of FIG. 10, a pair of communication ribs 52 are provided on both sides of the communication hole 51 so as to face each other. In the case of a slit-shaped communication hole 51, it is preferable to arrange the pair of communication ribs 52 so as to cross the longitudinal direction of the slit. In this example, the communication rib 52 is integrally molded with the resin upper cover 50. With this configuration, the communication rib 52 can be easily formed by positioning it around the communication hole 51. However, it goes without saying that the communication rib may be provided on the reinforcing cover side. In particular, by making the communication rib protrude from the metal reinforcing cover by punching or the like, a stronger and less deformable communication rib can be formed. (Dividing rib 53)
[0058] Furthermore, the upper cover 50 is provided with a partitioning rib 53 that partitions the spaces between adjacent communication holes 51. This allows the second gas duct to be partitioned for each communication hole 51, and prevents the high-pressure gas introduced into the second gas duct from the communication holes 51 from concentrating and being discharged in one place.
[0059] In the example in Figure 7 etc., a battery stack 10 in which 12 battery cells 1 are stacked is divided into three sections of four cells each, and these are further divided into two sections, one on the left and one on the right of the battery cells 1, for a total of six sections. Also, in the example in Figure 7, a dividing rib protrudes from the top surface of the upper cover 50, but it goes without saying that the present invention is not limited to this configuration, and the dividing rib may protrude from the reinforcing cover side, for example.
[0060] Furthermore, it is preferable to provide gas exhaust paths not only in the stacking direction of the battery cells 1, but also in a direction intersecting this direction. By exhausting gas from the intersecting direction in this way, it is possible to efficiently exhaust gas to the outside of the power supply device, thereby improving safety. In the example of Figure 10, gas exhaust paths are formed in the first gas duct and the second gas duct so that gas can also be exhausted in the vertical direction in the figure. (Reinforcement cover 60)
[0061] The reinforcing cover 60 is provided on the upper surface of the upper cover 50. A second gas duct is formed between the reinforcing cover 60 and the upper cover 50. The reinforcing cover 60 abuts against the upper surface of the upper cover 50 via the communication rib 52. With this configuration, even if high-temperature, high-pressure gas is discharged from the gas discharge valve 1c, the upper surface of the upper cover 50 is reinforced with a metal reinforcement, so that deformation of the upper cover 50 can be suppressed. In particular, if the upper cover 50 is deformed, there is a risk that an unintended gas discharge path that avoids the baffle plate 48 will be formed. However, by preventing the deformation of the upper cover 50 with the reinforcing cover 60, such a situation can be avoided.
[0062] 8, the reinforcing cover 60 is fixed with bolts 29 or the like to the top surfaces of the end plates 20. This allows the reinforcing cover 60 to be fastened to the top surface of the battery stack 10, in addition to fastening the sides of the battery stack 10 with fastening members 15, increasing the rigidity with which the end plates 20 press against the end surfaces of the battery stack 10. In other words, the reinforcing cover 60 is also used as an additional fastening member.
[0063] Furthermore, the reinforcing cover 60 may be formed with a bead 61 in order to increase rigidity. In the power supply device 200 according to the second embodiment shown in the perspective view of Fig. 14, the bead 61 is formed in the center along the longitudinal direction of the reinforcing cover 60. In this way, the strength can be improved by the simple process of forming the bead 61 on the reinforcing cover 60 made of a metal plate. (Total terminal pieces 70)
[0064] As described above, the electrode terminals 2 of the battery cells 1 constituting the battery stack 10 are connected to each other by a bus bar. The power supply device is provided with a terminal strip 70 that extracts a total output by connecting a plurality of battery cells 1 in series and in parallel via a bus bar. The terminal strip 70 is made of a metal plate with excellent conductivity. In order to insulate the metal reinforcing cover 60 from the terminal strip 70, the terminal strip 70 is exposed from the reinforcing cover 60 as shown in Figs. 7 and 8. For this reason, the reinforcing cover 60 forms an exposed portion 62 that exposes the terminal strip 70. In this way, while using the metal reinforcing cover 60, it is possible to ensure an insulating distance by separating the terminal strip 70 from the metal reinforcing cover 60, and to avoid the risk of an unintended short circuit.
[0065] 7 and other figures, the exposed portion 62 can be an exposure cutout formed by cutting out a corner of the reinforcing cover 60 to expose the terminal piece 70. This increases safety by separating the metal reinforcing cover 60 and the terminal piece 70 in the horizontal plane so that they do not overlap. Alternatively, the exposed portion 62 can be an exposure window that exposes the terminal piece.
[0066] In the example of Fig. 9 etc., the terminal piece 70 is provided on one side (the lower side in the figure) of the upper surface of the end plate 20. Accordingly, the exposed portion 62 may be formed only on the lower corner of the end of the reinforcing cover 60, or may be provided on both sides of the end as shown in Fig. 9 etc. This makes it possible to attach the reinforcing cover 60 even if it is turned left and right, improving the ease of assembly.
[0067] The above power supply device 100 can be used as a vehicle power source that supplies power to a motor that runs an electric vehicle. Electric vehicles that can be equipped with the power supply device 100 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 100 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 is constructed by connecting a large number of the above-mentioned power supply devices 100 in series or parallel to obtain power to drive an electric vehicle, and further adding a necessary control circuit. (Power supply unit for hybrid vehicles)
[0068] FIG. 15 shows an example of a power supply device 100 mounted on a hybrid vehicle that runs on both an engine and a motor. The vehicle HV mounted with the power supply device 100 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 the vehicle is braked, and charges the battery of the power supply device 100. 15, 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. (Power supply unit for electric vehicles)
[0069] FIG. 16 shows an example in which the power supply device 100 is mounted on an electric vehicle that runs only by a motor. The vehicle EV equipped with the power supply device 100 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, the 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. (Power supply device for power storage device)
[0070] 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. 17 shows a power storage device that charges a battery of the power supply device 100 with a solar cell 82 and stores the power.
[0071] The power storage device shown in FIG. 17 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 to ON and the discharge switch 87 to 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.
[0072] 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.
[0073] The above-described power storage system 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 storage power source for home or factory use, a power source 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]
[0074] The power supply device and the vehicle and power storage device equipped therewith according to the present invention can be suitably used as a large current power supply used for the power supply of motors driving electric vehicles such as hybrid cars, fuel cell cars, electric cars, and electric motorcycles. Examples include power supply devices for plug-in hybrid electric cars, hybrid electric cars, electric cars, etc. that can switch between EV driving mode and HEV driving mode. They can also be suitably used for applications such as backup power supply devices that can be mounted on the racks of computer servers, backup power supply devices for wireless base stations for mobile phones, etc., power supplies for home and factory storage, power supplies for street lights, power storage devices combined with solar cells, and backup power supplies for traffic lights, etc. [Explanation of symbols]
[0075] 100, 200, 700, 800…power supply 1. Battery cell 1X…Terminal surface 1a…Outer can 1b...Sealing plate 1c…Gas exhaust valve 2...Electrode terminal 10...Battery stack 15... fastening member; 15a... fastening main surface; 15d... bent piece 15f…Bolt 16…Insulating spacer 17...End face spacer 20…End plate 29…Bolt 30: Insulation sheet; 31: Flat plate; 32: Folded covering portion 38...Gas duct 39…Third cover 40…Cover assembly 41…First cover 42…Second cover 46…Lower cover 47…Gas inlet 48…Baffle plate 49…Intermediate plate 50…Top cover 51...Communication hole 52...Connecting rib 53…Dividing rib 60…Reinforcement cover 61...Bead 62…Expression 70…Total terminal pieces 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 GS…Gas HV, EV...Vehicles
Claims
1. a gas release valve that opens when the internal pressure of the outer can increases, and a battery stack formed by stacking multiple battery cells on whose upper surfaces electrodes are formed; a first cover provided on an upper surface of the battery stack and having openings at positions corresponding to the gas exhaust valves; A second cover is provided on an upper surface of the first cover to define a gas duct between the first cover and the second cover; A power supply device comprising: The gas duct forms a baffle between the first cover and the second cover, The power supply device further comprises: a third cover made of metal and provided on an upper surface of the second cover and in contact with the upper surface of the second cover;
2. 2. The power supply device of claim 1, further comprising: end plates covering the side surfaces of the battery stack; The third cover is fixed to the end plate.
3. 3. The power supply device according to claim 2, further comprising: the battery stack includes a pair of fastening members that fasten the end plates to each other on both side surfaces of the battery stack, The battery stack is a power supply device in which the battery cells are fastened by the pair of fastening members and a third cover on the top surface.
4. The power supply device according to any one of claims 1 to 3, further comprising: a bus bar that connects electrodes of the battery cells that constitute the battery stack; A terminal piece connected to the bus bar; It is equipped with The third cover forms an exposure portion that exposes the terminal pieces.
5. The power supply device according to any one of claims 1 to 4, The third cover has a bead formed thereon.
6. The power supply device according to any one of claims 1 to 5, The power supply device, wherein the first cover and the second cover are made of resin.
7. A vehicle equipped with the power supply device according to any one of claims 1 to 6, A vehicle comprising the power supply device, a motor for driving supplied with power from the power supply device, a vehicle body mounting the power supply device and the motor, and wheels driven by the motor to drive the vehicle body.
8. A power storage device comprising the power supply device according to any one of claims 1 to 6, A power storage device comprising the power supply device and a power supply controller that controls charging and discharging to the power supply device, the power supply controller enabling charging of the battery cells using external power and controlling the charging of the battery cells.
Citation Information
Patent Citations
Vehicle power supply device and vehicle with the same, and method for manufacturing vehicle power supply device
JP2011100699A
Gas exhaust pipe
JP2013218790A
Power supply device, and vehicle and power storage device provided with the same
JP2015133169A
Battery module
JP2015138673A
Battery system, and electric vehicle and electricity storage device both having said battery system
WO2014024452A1
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