All-solid-state battery assembly
The curved contact surface on the guide member of all-solid-state battery assemblies addresses the separation and rattling issues by maintaining continuous contact with the pressure plate, enhancing stability and shock resistance.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- NISSAN MOTOR CO LTD
- Filing Date
- 2022-09-09
- Publication Date
- 2026-04-13
AI Technical Summary
The end plates in all-solid-state battery assemblies are prone to separation and rattling due to high loads and volume expansion, leading to inadequate fixation of the battery module, especially under external vibrations and impacts.
The guide member's contact surface with the pressure plate is designed as a curved surface that curves towards the pressure plate's expansion direction, increasing curvature as it moves, ensuring continuous contact and reducing separation risk.
This design maintains stable fixation of the battery module, reducing rattling and enhancing resistance to vibrations and shocks by preventing separation of the end plate and guide member.
Smart Images

Figure 0007844292000001 
Figure 0007844292000002 
Figure 0007844292000003
Abstract
Description
Technical Field
[0001] The present invention relates to an all-solid-state battery assembly, and more particularly to a structure for pressurizing a battery module.
Background Art
[0002] A battery includes a plurality of stacks connected in series or in parallel to each other. Each stack includes a plurality of cells, a pair of end plates that sandwich and fix the plurality of cells, and a plurality of restraint bands that connect the pair of end plates (see Patent Document 1). The plurality of cells are restrained by the pair of end plates and the plurality of restraint bands under an applied restraint load.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] When using an all-solid-state battery cell, the volume expansion amount of the battery module during charging becomes large. Therefore, in order to set the load by the end plate to an appropriate size, the end plate can be moved according to the volume expansion of the battery module. In this case, it is necessary to provide a guide member for guiding the movement of the end plate.
[0005] On the other hand, since it is necessary to apply a high load to a battery module composed of all-solid-state battery cells, when the battery module expands, the end plate receives a high load from the battery module. For this reason, the end plate may bend and the end plate may separate from the guide member. Then, there is a problem that the end plate cannot sufficiently fix the battery module, and the battery module is likely to rattle against external vibration and impact.
[0006] The problem that this invention aims to solve is to provide an all-solid-state battery assembly in which the end plate and guide member are less likely to separate when the battery module expands. [Means for solving the problem]
[0007] The present invention solves the above problem by making the contact surface of the guide member with the pressure plate a curved surface that curves toward the pressure plate as it moves in the direction of expansion of the battery module, and whose curvature increases as it moves in the direction of expansion. [Effects of the Invention]
[0008] According to the present invention, even if the pressure plate bends due to the expansion of the battery module, the contact surface is a curved surface with a shape that corresponds to the deformation of the pressure plate, making it difficult for the pressure plate and the guide member to separate. As a result, the battery module becomes less prone to rattling, and the all-solid-state battery assembly can be made more resistant to vibration and shock. [Brief explanation of the drawing]
[0009] [Figure 1] Figure 1 is a front view showing an example of an embodiment of the all-solid-state battery assembly of the present invention. [Figure 2] Figure 2 is a side view showing an example of an embodiment of the all-solid-state battery assembly of the present invention. [Figure 3] Figure 3 is a cross-sectional view along the line III-III in Figure 1. [Figure 4] Figure 4 is an enlarged view of section IV in Figure 1, and is an explanatory diagram illustrating the contact state between the movable end plate and the guide member according to the state of charge (SOC) of the all-solid-state battery. [Figure 5] Figure 5(A) is a top view showing an excerpt of the portion of the guide member of the all-solid-state battery assembly in this embodiment in which the contact surface is formed, and Figure 5(B) is a top view showing an excerpt of the portion of the guide member of the all-solid-state battery assembly in the first modified example in which the contact surface is formed. [Figure 6]Figure 6 is a cross-sectional view showing a first modified example of the all-solid-state battery assembly of the present invention. [Figure 7] Figure 7 is a cross-sectional view showing a second modified example of the all-solid-state battery assembly of the present invention. [Modes for carrying out the invention]
[0010] A solid-state battery assembly 1 according to an embodiment of the present invention will be described with reference to the drawings. Figure 1 is a front view showing an example of an embodiment of the solid-state battery assembly 1 of the present invention. Figure 2 is a side view showing an example of an embodiment of the solid-state battery assembly 1 of the present invention. Figure 3 is a cross-sectional view along the line III-III in Figure 1.
[0011] The all-solid-state battery assembly 1 in this embodiment is not particularly limited, but is mounted in an automobile. As shown in Figure 1, this all-solid-state battery assembly 1 comprises a battery module 2 and a load application mechanism 3.
[0012] The battery module 2 is a battery pack containing multiple solid-state battery cells 21. In this battery module 2, the multiple solid-state battery cells 21 are stacked on top of each other along the Z direction (stacking direction). Although not specifically shown in the figures, the electrodes of the multiple solid-state battery cells 21 are interconnected via busbars.
[0013] The all-solid-state battery cell 21, although not specifically shown, contains a power generation element in which a negative electrode, a negative electrode current collector, a solid electrolyte, a positive electrode, and a positive electrode current collector are stacked. The negative electrode is, for example, a lithium metal layer. The lithium metal layer is a layer that deposits on the negative electrode current collector during charging of the all-solid-state battery cell 21, increasing in volume, and decreases in volume during discharge. The negative electrode may also include layers other than the lithium metal layer, for example, an auxiliary layer that assists in the deposition of the lithium metal layer. The negative electrode current collector is a metal foil, and copper foil can be an example of this metal foil. As for the solid electrolyte, for example, a sulfide solid electrolyte or an oxide solid electrolyte can be used, but the use of a sulfide solid electrolyte is preferred.
[0014] The positive electrode contains at least a positive electrode active material capable of releasing and storing lithium (Li), and is not particularly limited, but preferably contains a positive electrode active material containing sulfur. The sulfur-containing positive electrode active material can be any material that can release lithium ions during charging and store them during discharge by utilizing the oxidation-reduction reaction of sulfur. The type of sulfur-containing positive electrode active material is not particularly limited, but elemental sulfur (S), organic sulfur compounds, or particles or thin films of inorganic sulfur compounds can be used. The positive electrode current collector is a metal foil, and copper foil can be an example of this metal foil.
[0015] The battery module 2, composed of multiple all-solid-state battery cells 21, experiences significant volume changes in the lithium metal layer during charging and discharging. In this embodiment, the battery module 2 expands in the +Z direction during charging and contracts in the -Z direction during discharging. The +Z direction in this embodiment corresponds to an example of the "expansion direction" in the present invention, and the -Z direction in this embodiment corresponds to an example of the "contraction direction" in the present invention.
[0016] Such a battery module 2 is subjected to a load in the -Z direction by a load application mechanism 3. As shown in Figures 1 to 3, this load application mechanism 3 comprises a first fixed end plate 31, a second fixed end plate 32, a movable end plate 33, a restraint band 34, and a plurality of guide members 4a to 4c (in the following description, the plurality of guide members 4a to 4c may be collectively referred to as guide member 4). The movable end plate 33 in this embodiment corresponds to an example of a "pressure plate" in the present invention.
[0017] As shown in Figure 1, the first fixed end plate 31 is a rigid plate-shaped member. The first fixed end plate 31 is positioned below the battery module 2 and supports the battery module 2 from below. As shown in Figure 2, this first fixed end plate 31 is fixed to the guide member 4 by fastening bolts 35 and cannot be moved.
[0018] As shown in Fig. 1, the second fixed end plate 32 is also a plate-like member having rigidity. The second fixed end plate 32 is disposed at the upper end of the load applying mechanism 3. This second fixed end plate 32 is also fixed to the guide member 4 by fastening bolts 35 and cannot move.
[0019] The movable end plate 33 is also a plate-like member having rigidity. The movable end plate 33 is placed on the upper surface of the battery module 2. The movable end plate 33 pressurizes the battery module 2 by transmitting the load applied from a restraint band 34 described later to the battery module 2.
[0020] This movable end plate 33 is in contact with the guide member 4 but not fixed to the guide member 4. Therefore, it can move in the stacking direction (Z direction in the figure) along with the expansion and contraction during charging and discharging of the battery module 2.
[0021] As shown in Fig. 3, the movable end plate 33 has a pair of wide portions 331 and a narrow portion 333. The pair of wide portions 331 are located at both ends of the movable end plate 33 in the Y direction in the figure and have a rectangular planar shape wider than the narrow portion 333. The guide member 4 contacts a pair of end portions 332 of the wide portion 331 in the X direction. [[ID=I4]]
[0022] Fig. 4 is an enlarged view of part IV of Fig. 1 and is an explanatory diagram for explaining the contact state between the movable end plate 33 and the guide member 4a according to the state of charge (SOC) of the battery module 2. The lower diagram of Fig. 4 shows the relative positional relationship between the end portion 332 and the guide member 4a when the SOC (State of Charge) of the battery module 2 is 0%, and the upper diagram of Fig. 4 shows the relative positional relationship between the end portion 332 and the guide member 4a when the SOC (State of Charge) of the battery module 2 is 100%.
[0023] As shown in Figure 4, the end portion 332 includes a curved end surface 322a. This end surface 322a is in direct contact with the guide member 4. If the end surface were flat, the end portion would include a corner, and if this corner contacted the guide member 4, stress would concentrate at the corner, causing the movable end plate 33 to become loose, and the battery module 2 to become loose as well. On the other hand, if the end surface 322a is curved, the contact area between the end surface 322a and the guide member 4 can be increased, making stress concentration less likely and the movable end plate 33 less likely to become loose. However, the end surface 322a is not limited to a curved surface; it may also be flat.
[0024] As shown in Figure 3, the narrow portion 333 is interposed between the pair of wide portions 331. The narrow portion 333 is the part that directly contacts the battery module 2 and presses the battery module 2 from above. A restraint band 34 is also wrapped around this narrow portion 333.
[0025] As shown in Figure 1, the restraint band 34 is an expandable, annular elastic member, though not particularly limited, and is wrapped around the first fixed end plate 31 and the movable end plate 33. Since the restraint band 34 is wrapped around the first fixed end plate 31 and the movable end plate 33 in an extended state from its natural length, the restoring force presses the movable end plate 33 in the -Z direction in the figure.
[0026] As shown in Figures 1 to 3, multiple guide members 4 (four in this example) guide the movement of the movable end plate 33 in the expansion and contraction directions. In this embodiment, the guide member 4 is a wall-shaped (flat plate-shaped) member extending along the Z direction in the figures. By making the guide member 4 a wall-shaped member, the size of the guide member 4 can be reduced.
[0027] The shape of the guide member 4 is not limited to a wall shape. For example, the shape of the guide member 4 may be a pole shape. In this case, the guide member 4 is inserted through the through hole formed in the movable end plate 33, and both ends of the guide member 4 are fixed to the through holes formed in the first and second fixed end plates 31 and 32 using fasteners or the like.
[0028] In such cases, it is preferable to increase the diameter of the through hole to prevent the movable end plate from bending and interfering too much with the guide member. However, doing so makes the movable end plate more prone to rattling. In contrast, in this embodiment, the movable end plate can be made less prone to rattling by forming a contact surface 41 on the guide member, which will be described later.
[0029] As shown in Figures 1 and 2, the guide members 4 are fixed to the first and second fixed end plates 31 and 32 by fastening bolts 35. As shown in Figure 3, the multiple guide members 4 are arranged to contact the respective end faces 332a of the end 332 of the movable end plate 33.
[0030] As shown in Figure 4, the guide member 4a includes a contact surface 41 that contacts the end face 332a of the movable end plate 33. The contact surface 41 is formed on the inner surface of the guide member 4a and includes an upper end 41a, a lower end 41b, a left end (the end on the far side of the page in Figures 1 and 4) 41c, and a right end (the end on the near side of the page in Figures 1 and 4) 41d.
[0031] As shown in Figure 4, the contact surface 41 is a curved surface that curves toward the movable end plate 33 side (-X direction in the figure) as it moves toward the expansion direction (+Z direction in the figure). The curvature of this contact surface 41 increases toward the expansion direction. In other words, the region on the upper end 41a side of this contact surface 41 is more curved than the region on the lower end 41b side, and the amount of protrusion toward the movable end plate 33 side is larger.
[0032] As described above, as the battery module 2 expands during charging, a high load is applied to the movable end plate 33 in the expansion direction. On the other hand, since the end face 332a of the movable end plate 33 is in contact with the contact surface 41 of the guide member 4a, the end face 332a is subjected to a frictional force in the direction opposite to the expansion direction. Therefore, as shown in Figure 4, as the SOC increases, the movable end plate 33 gradually bends into a convex shape while rising.
[0033] At this time, the end face 332a also moves in the -X direction in the figure so as to gradually move away from the contact surface 41 of the guide member 4a. Furthermore, as the movable end plate 33 rises, the amount of movement of the end face 332a in the -X direction gradually increases.
[0034] As in conventional designs, if the end face separates from the contact surface of the guide member due to this movement, the movable end plate will no longer be able to securely fix the battery module. Furthermore, since the restraint band is an elastic material, if vibration or shock is applied to the all-solid-state battery assembly, it will expand and contract in accordance with the rattle of the battery module, and will not be able to securely fix the battery module.
[0035] In contrast, the contact surface 41 of the guide member 4a in this embodiment has a surface shape that curves more toward the movable end plate 33 as it approaches the upper end 41a, so as to correspond to the movement of the end face 332a caused by the movable end plate 33 as described above. In other words, the contact surface 41 is curved toward the -X direction so as to correspond to the movement of the end face 332a toward the -X direction. Therefore, when the battery module 2 is being charged, the end face 332a of the movable end plate 33 and the contact surface 41 of the guide member 4a are less likely to separate, and contact between the two can be maintained. As a result, the battery module 2 is less likely to rattle due to vibration or shock, and the all-solid-state battery assembly 1 becomes more resistant to vibration and shock.
[0036] Although not specifically shown in the diagram, the contact surfaces of guide members 4b to 4d are also curved surfaces that curve toward the movable end plate 33 as they move in the direction of expansion, similar to guide member 4a, and the curvature of these contact surfaces increases as they move in the direction of expansion.
[0037] Figure 5(A) is a top view showing an extracted portion of the guide member 4a of the all-solid-state battery assembly 1 in this embodiment, specifically the portion where the contact surface 41 is formed. As shown in Figure 5(A), in this embodiment, the curvature of the contact surface 41 of the guide member 4a increases as it approaches the center of the battery module 2 (see Figure 3) in the direction perpendicular to the stacking direction of the all-solid-state battery cells (the Y direction in the figure). Therefore, as shown in Figures 5(A) and 4, the curvature of the contact surface 41 gradually increases in the width direction of the contact surface 41 from the right end 41d to the left end 41c, and the amount of protrusion of the contact surface 41 toward the movable end plate 33 gradually increases from the right end 41d to the left end 41c.
[0038] Since the amount of deflection of the movable end plate 33 is greater the closer it is to the center of the battery module 2 (see Figure 3), the contact surface 41 as described above can accommodate the change in the amount of deflection caused by the distance from the center of the battery module 2. Therefore, the guide member 4a can contact the end face 332a of the movable end plate 33 along the Y direction, which widens the contact range between the movable end plate 33 and the guide member 4a, and suppresses rattle of the battery module 2, including precession.
[0039] Furthermore, the curvature of the contact surfaces of guide members 4b to 4d (see Figure 3) also increases as it approaches the center of the battery module 2 in a direction perpendicular to the stacking direction. In other words, the contact surface of guide member 4b has a surface shape that is symmetrical with respect to the Y-axis to the contact surface of guide member 4a shown in Figure 5(A).
[0040] Furthermore, the contact surfaces of guide members 4c and 4d protrude gradually from the left end (the +Y direction in the figure) towards the movable end plate 33, increasing from the left end (the +Y direction in the figure) to the right end (the -Y direction in the figure). In other words, the contact surface of guide member 4c has a surface shape that is line-symmetric with respect to the X-axis to the contact surface of guide member 4a, and the contact surface of guide member 4d has a surface shape that is point-symmetric with respect to the contact surface of guide member 4a (i.e., a surface shape that is line-symmetric with respect to the Y-axis to the contact surface of guide member 4c).
[0041] Furthermore, in this embodiment, the first coefficient of friction between the movable end plate 33 and the contact surface 41 when the movable end plate 33 moves in the expansion direction is greater than the second coefficient of friction between the movable end plate 33 and the contact surface 41 when the movable end plate 33 moves in the contraction direction.
[0042] Therefore, the frictional force acting on the movable end plate 33 in the contraction direction increases, which can suppress rattling and lifting of the battery module 2 in the expansion direction when shocks or vibrations are applied to the all-solid-state battery assembly 1.
[0043] In order to achieve the above-described relationship between the first and second friction coefficients, it is not limited to forming a minute surface shape like the one shown in the lower right of Figure 4. Note that in the lower right of Figure 4, for convenience, the end face 332a and the contact surface 41 are shown to be spaced apart, but in reality they are in contact with each other.
[0044] As shown in Figure 4, the end face 332a has a first minute slope 334a that slopes toward the contact surface 41 as it moves in the expansion direction, and a first minute locking surface 334b that extends in a substantially horizontal direction. On the other hand, the contact surface 41 has a second minute slope 411a that is substantially parallel to the first minute slope 334a, and a second minute locking surface 411b that is substantially parallel to the first minute locking surface 334b.
[0045] When the movable end plate 33 moves in the expansion direction, the first minute locking surface 334b comes into contact with the second minute locking surface 411b, thus relatively increasing the first coefficient of friction. On the other hand, when the movable end plate 33 moves in the contraction direction, the first minute locking surface 334b does not come into contact with the second minute locking surface 411b, thus relatively decreasing the second coefficient of friction.
[0046] In the all-solid-state battery assembly 1 of this embodiment as described above, the contact surface 41 of the guide member 4a has a surface shape in which the curvature toward the movable end plate 33 increases as it approaches the upper end 41a. Therefore, when the battery module 2 is being charged, the end surface 332a of the movable end plate 33 and the contact surface 41 of the guide member 4a are less likely to separate, and contact between the two can be maintained. As a result, the battery module 2 is less likely to rattle due to vibration or shock, and the all-solid-state battery assembly 1 becomes more resistant to vibration and shock.
[0047] In the above embodiment, four guide members 4 are arranged at both ends of the movable end plate 33, but the position and number of guide members 4 are not limited to this. As shown in the first modified example below in Figure 6, a structure in which two guide members 4B are arranged in the center of the movable end plate 33B is also possible.
[0048] Figure 6 is a cross-sectional view showing a first modified example of an all-solid-state battery assembly. In this first modified example, the movable end plate 33B of the all-solid-state battery assembly 1B has a wide portion 331B in the center and narrow portions 333B at both ends.
[0049] A guide member 4B is in contact with the end portion 332B of the wide portion 331B. This guide member 4B also has a contact surface 41B that curves toward the movable end plate 33B33B as it moves in the expansion direction, and the curvature of this contact surface 41B increases as it moves in the expansion direction. However, since the contact surface 41B is located closer to the center of the battery module 2 than the contact surface 41 in the above embodiment, the curvature of the contact surface 41B is smaller than the curvature of the contact surface 41.
[0050] Furthermore, in the first modified example, the change in curvature of the contact surface 41B in the direction perpendicular to the stacking direction (Y direction in the figure) also differs from that of the above embodiment. Figure 5(B) is a top view showing an extracted portion of the all-solid-state battery assembly of the first modified example in which the contact surface of the guide member is formed. In the first modified example, since the guide member 4B is positioned to contact the central part of the movable end plate 33B, the curvature of the contact surface 41B gradually increases from the center of the contact surface 41B toward the left and right ends 41c and 41d.
[0051] A restraining band 34 is wrapped around each of the narrow sections 333B. Therefore, in this first modified example, the battery module 2 is pressurized via the movable end plate 33B by the two restraining bands 34.
[0052] Furthermore, as shown in the second modified example in Figure 7, the inner surface of the housing (battery pack 5) that houses the battery module 2 may be used as a guide member. Figure 7 is a cross-sectional view showing the second modified example of the all-solid-state battery assembly.
[0053] This second modified all-solid-state battery assembly 1C further comprises a battery pack 5. The battery pack 5 has a case portion 51 that houses a plurality of battery modules 2, and a lid portion 52 that covers the opening of the case portion 51. The lid portion 52 may be a floor panel of an automobile body.
[0054] In this modified example, the movable end plate 33 is in contact with the bottom surface of the case portion 51 and the lower surface of the lid portion 52, and the bottom surface of the case portion 51 and the lower surface of the lid portion 52 function as guide members that guide the movement of the movable end plate 33 in the horizontal direction (direction X in Figure 7).
[0055] Therefore, contact surfaces 41C1 and 41C2 are formed on the bottom surface of the case portion 51 and the lower surface of the lid portion 52, respectively. These contact surfaces are curved and curve toward the movable end plate 33 as the battery module 2 expands. The curvature of these contact surfaces 41C1 and 41C2 increases as the expansion direction is approached, although this is not shown in the figure. The expansion direction of the battery module 2 on the left side of the figure is the -X direction, and the expansion direction of the battery module 2 on the right side of the figure is the +X direction.
[0056] In this second modified configuration, the movable end plate 33 can be guided by a simple structure utilizing the battery pack 5, and rattling of the battery module 2 can be suppressed.
[0057] In the second modified example, a case portion 51 having an opening at the top is shown as an example, but the position of the opening is not limited to this. The case portion 51 may also have an opening on the side, and this side opening may be covered by a lid. [Explanation of Symbols]
[0058] 1, 1B, 1C… All-solid-state battery assemblies 2…Battery module 21… All-solid-state battery cell 3...Load application mechanism 31…First fixed end plate 32…Second fixed end plate 33,33B…Movable end plate 331, 331B... Wide section 332...end 332a...end face 334a…1st microslope 334b...First minute locking surface 333, 333B…Narrow part 34... Restraint band 35… Fastening bolts 4, 4B... Guide members 41, 41B, 41C1, 41C2…Contact surface 41a, 41b...upper and lower ends 41c,41d…Left and right ends 411a…Second micro slope 411b…Second minute locking surface 5…Battery pack 51…Case part 52...Lid part
Claims
1. A battery module comprising multiple all-solid-state battery cells stacked on top of each other, A pressure plate is provided to pressurize the battery module and to move in the direction of expansion during charging of the battery module. The system includes a guide member that guides the movement of the pressure plate, The guide member has a contact surface that contacts the pressure plate, The contact surface is a curved surface that curves toward the pressure plate side as it moves in the direction of expansion. The curvature of the contact surface increases as it moves toward the expansion direction in the all-solid-state battery assembly.
2. In the all-solid-state battery assembly according to claim 1, The guide member is a wall-like member of the all-solid-state battery assembly.
3. In the all-solid-state battery assembly according to claim 1, The all-solid-state battery assembly further comprises a housing that houses the battery module inside, A solid-state battery assembly in which the contact surface is formed on the inner surface of the housing.
4. In the all-solid-state battery assembly according to claim 1, The pressure plate has an end face that contacts the contact surface, The end face of the all-solid-state battery assembly has a curved shape.
5. In the all-solid-state battery assembly according to claim 1, A solid-state battery assembly in which the curvature of the contact surface increases as it approaches the center of the battery module in a direction perpendicular to the stacking direction of the solid-state battery cells.
6. In the all-solid-state battery assembly according to any one of claims 1 to 5, A solid-state battery assembly in which the first coefficient of friction between the pressure plate and the contact surface when the pressure plate moves in the expansion direction is greater than the second coefficient of friction between the pressure plate and the contact surface when the pressure plate moves in the contraction direction during discharge of the battery module.
Citation Information
Patent Citations
Processing method for recycling secondary battery
JP2017117636A
Manufacturing method for power storage device and power storage device
JP2019216073A
Methods, systems, and devices for applying forces to electrochemical devices
JP2022536985A