Battery case and battery
The battery case design addresses low space utilization and energy density by eliminating transition surfaces through direct connections, enhancing both space utilization and energy density.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-03-31
- Publication Date
- 2026-04-03
AI Technical Summary
The existing battery casings have low space utilization and energy density due to the presence of transition surfaces formed during the manufacturing process, which reduces the effective use of internal space.
A battery case design that eliminates transition surfaces by directly connecting the case body to the upper and lower covers, ensuring perpendicular alignment and avoiding arc-shaped transitions, thereby enhancing space utilization and energy density.
The new design improves energy density by fully utilizing the internal space and maintaining structural integrity while ensuring aesthetic appeal and safety features.
Smart Images

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Abstract
Description
Technical Field
[0001] Cross - reference to Related Applications This disclosure is proposed based on Chinese Patent Application No. 202220774022.3 filed on April 1, 2022, and claims the priority thereof. The entire disclosure content thereof is incorporated herein by reference in its entirety.
[0002] This disclosure relates to the technical field of batteries, and specifically to a battery casing and a battery having the battery casing.
Background Art
[0003] The related - art battery casing includes a case body and a cover. The case body includes a bottom plate and side plates. The battery case body is usually integrally formed by a stamping process. Due to the limitations caused by stress concentration in the process, in the process of manufacturing the case body, a transition surface is inevitably formed between the bottom plate and the side plates. Therefore, the space corresponding to the transition surface cannot be fully utilized, reducing the energy density of the battery.
Summary of the Invention
Problems to be Solved by the Invention
[0004] This disclosure aims to at least partially solve one of the technical problems of the related art.
[0005] To achieve this, an object of this disclosure is to provide a battery casing for solving the problems of the related art, such as low space utilization rate and low energy density of the battery due to the existence of the transition surface.
[0006] Another object of this disclosure is to provide a battery having the above - mentioned battery casing.
Means for Solving the Problems
[0007] According to a first aspect of this disclosure, a battery case is provided, and the battery case is, The case body comprises a defined storage space within the case body, and the case body has two open ends, each open end communicating with the storage space. The lower cover is connected to one end of the case body and is configured to close one of the open ends. The upper cover is connected to the other end of the case body and is configured to close the other open end. Includes.
[0008] The lower cover and / or upper cover are plate-like members, and the side walls of the case body are perpendicular to the plate-like members.
[0009] In the battery case according to this disclosure, the case body is directly connected to the upper cover and the lower cover, thereby avoiding connections via transition surfaces between the case body and the upper cover, or between the case body and the lower cover. This reduces the influence of the transition surface on the battery dimensions and improves the energy density of the battery.
[0010] According to a second aspect of this disclosure, a battery including a battery case is provided, the battery case being as described above.
[0011] Additional aspects and advantages of this disclosure may be partially given in the following description, some of which may become apparent from the following description or be understood from the practice of this disclosure. [Brief explanation of the drawing]
[0012] [Figure 1] This is a disassembled view of a battery provided with related technologies. [Figure 2] This is a schematic three-dimensional structural diagram of a battery case according to one embodiment of the present disclosure. [Figure 3] This is a schematic three-dimensional structural diagram of a battery case according to another embodiment of the present disclosure. [Figure 4]Side view of a battery case according to an embodiment of the present disclosure. [Figure 5] Top view of a battery case according to an embodiment of the present disclosure. [Figure 6] Cross-sectional view of the battery case before welding according to an embodiment of the present disclosure. [Figure 7] Enlarged view of the enclosed area C in FIG. 6. [Figure 8] Enlarged view of the enclosed area D in FIG. 6. [Figure 9] Cross-sectional view of the battery case after welding according to an embodiment of the present disclosure. [Figure 10] Enlarged view of the enclosed area E in FIG. 9. [Figure 11] Enlarged view of the enclosed area F in FIG. 9. [Figure 12] Exploded view of a battery case as viewed from a certain perspective according to another embodiment of the present disclosure. [Figure 13] Exploded view of a battery case as viewed from another perspective according to another embodiment of the present disclosure. [Figure 14] Cross-sectional view showing the exploded structure of a battery case according to another embodiment of the present disclosure. [Figure 15] Cross-sectional view of the battery case before welding according to another embodiment of the present disclosure. [Figure 16] Enlarged view of the enclosed area G in FIG. 15. [Figure 17] Cross-sectional view of the battery case after welding according to another embodiment of the present disclosure. [Figure 18] Enlarged view of the enclosed area H in FIG. 17. [Figure 19] Cross-sectional view of the battery along the direction A-A according to an embodiment of the present disclosure. [Figure 20] Cross-sectional view of the battery along the direction B-B according to an embodiment of the present disclosure. [Figure 21] Top view of the electrode core of a battery according to an embodiment of the present disclosure. [Figure 22]Schematic diagram of the assembly of a battery case assembled with a rivet, a second insulating sheet, a first insulating sheet, and a metal sheet, viewed from a certain perspective, according to an embodiment of the present disclosure. [Figure 23] Schematic diagram of the assembly of a battery case assembled with a rivet, a second insulating sheet, a first insulating sheet, and a metal sheet, viewed from another perspective, according to an embodiment of the present disclosure. [Figure 24] Cross-sectional view showing a battery case assembled with a rivet, a second insulating sheet, a first insulating sheet, and a metal sheet, according to an embodiment of the present disclosure. [Figure 25] Enlarged view of the enclosed area I in FIG. 24.
Embodiments for Carrying Out the Invention
[0013] Next, various exemplary embodiments of the present disclosure will be described in detail with reference to the accompanying drawings. It should be noted that the relative arrangements, mathematical formulas, and numerical values of the components and steps described in the embodiments do not limit the scope of the present disclosure, unless specifically specified otherwise.
[0014] The following description of at least one exemplary embodiment is merely illustrative and does not constitute any limitation to the present disclosure and the application, or their use in any manner.
[0015] The techniques, methods, and devices known to those skilled in the relevant art may not be discussed in detail, but if necessary, such techniques, methods, and devices should be regarded as part of this specification.
[0016] In all the examples shown and discussed in this specification, any specific value should be construed as illustrative rather than limiting. Therefore, other examples of the exemplary embodiments may have different values.
[0017] Note that in the following drawings, similar reference numerals and letters indicate the same items. Therefore, once an item is defined in a drawing, it does not need to be discussed further in subsequent drawings.
[0018] This disclosure is an invention made by the inventors based on the following facts.
[0019] Figure 1 shows a battery case for related technologies.
[0020] As shown in Figure 1, the battery case includes a case body and a cover 4. The case body includes a bottom plate 1 and side plates 2, and the bottom plate 1 and side plates 2 are connected via an arc-shaped transition surface 3.
[0021] The above battery case has the following defects: Because the case body is integrally formed by a punching method to avoid stress concentration during the manufacturing process, the arc-shaped transition surface 3 is inevitable in the manufacturing process, and this part of the space cannot be fully utilized, reducing the energy density of the battery.
[0022] Based on this, after long-term research and experimentation, the following invention was originally obtained by the inventor.
[0023] As shown in Figures 2 to 25, a battery case 10 according to one embodiment of the present disclosure includes a case body 11, a lower cover 12, and an upper cover 13.
[0024] Specifically, a storage space 111 is defined within the case body 11, the case body 11 has two open ends, each open end communicating with the storage space 111, a lower cover 12 is connected to one end of the case body 11 and configured to close one open end, and an upper cover 13 is connected to the other end of the case body 11 and configured to close the other open end. The lower cover 12 and / or upper cover 13 are plate-shaped members, and the side walls of the case body 11 are perpendicular to the plate-shaped members.
[0025] In other words, the battery case 10 according to the embodiments of the present disclosure essentially consists of a case body 11, a lower cover 12, and an upper cover 13. The battery case 10 may be made of a metallic material such as stainless steel, nickel alloy, or chromium alloy. A housing space 111 is defined within the case body 11, and an electrode core is housed in the housing space 111. In this embodiment, the electrode core may be a wound electrode core or a stacked electrode core. The electrode core includes a positive electrode sheet 21, a negative electrode sheet 22, and a separator 23. The lower cover 12 and / or upper cover 13 are plate-like members, and the side walls of the case body 11 are perpendicular to the plate-like members. When one open end is closed by the lower cover 12, the lower cover 12 is directly connected to the lower end of the case body 11. In other words, the lower cover 12 and the case body 11 are directly connected, with no transition section between them and no transition surface. This not only improves the external aesthetics of the battery case 10 but also reduces the influence of the transition surface on the dimensions of the electrode cores located in the housing space 111, thereby improving the energy density of the battery 100. Similarly, when the other open end is closed by the upper cover 13, the upper cover 13 is directly connected to the case body 11, and no transition surface is located between them, but this will not be explained again here.
[0026] As shown in Figures 6 and 12, the case body 11 has two open ends, each communicating with the housing space 111. For ease of explanation, the two open ends may be a first open end and a second open end. The first open end is closed by a lower cover 12, and the second open end is closed by an upper cover 13. Optionally, the lower cover 12 is positioned on the opposite side from the upper cover 13, the housing space 111 is a straight mounting channel, the first open end may be located above the mounting channel in the axial direction, and the second open end may be located below the mounting channel in the axial direction.
[0027] When the first open end is closed by the lower cover 12, the lower cover 12 is directly connected to the lower end of the case body 11. That is, the lower cover 12 and the case body 11 are directly connected, with no transition portion and no transition surface between them. This not only improves the external aesthetics of the battery case 10 but also reduces the influence of the transition surface on the dimensions of the electrode cores located in the housing space 111, thereby improving the energy density of the battery 100. Similarly, when the second open end is closed by the upper cover 13, the upper cover 13 is directly connected to the case body 11, with no transition surface between them, but this will not be explained again here.
[0028] As shown in Figures 4 and 6, the lower cover 12 and / or the upper cover 13 are plate-like members, and the side walls of the case body 11 are perpendicular to the plate-like members. That is, at least one of the lower cover 12 and the upper cover 13 is a plate-like member, and the direction in which the plate-like member extends is perpendicular to the side walls of the case body 11. For example, the plate-like member extends horizontally, and the case body 11 extends vertically. The thickness of the plate-like member may be set to a uniform thickness. In this case, the angle between the outer surface of the plate-like member and the outer surface of the case body 11 may be 90°, and the angle between the inner surface of the plate-like member and the outer surface of the case body 11 may also be 90°. If the thickness of the case body 11 is also uniform, each surface of the plate-like member is perpendicular to the inner and outer surfaces of the case body 11.
[0029] In some specific embodiments of this disclosure, the case body 11 is welded to an upper cover 13 and / or a lower cover 12. That is, the case body 11 may be welded to at least one of the upper cover 13 and the lower cover 12. During a particular welding process, by image alignment using a CCD camera, the upper cover 13 or the lower cover 12 is superimposed on the case body 11 and secured by fasteners, and the battery case 10 is then sealed by laser welding.
[0030] In this embodiment, by welding the case body 11 to the upper cover 13, no transition surface is formed between the case body 11 and the upper cover 13, and a direct connection between the case body 11 and the upper cover 13 is achieved. Similarly, a direct connection between the case body 11 and the lower cover 12 can also be achieved by welding the case body 11 to the lower cover 12, but this will not be explained again here.
[0031] Compared with related technologies, in order to avoid the formation of transition surfaces, such as arc-shaped transition surfaces, between the upper cover 13 and the case body 11, and between the lower cover 12 and the case body 11, the upper cover 13 is directly connected to the case body 11, and the lower cover 12 is directly connected to the case body 11. This direct connection structure allows the space inside the battery case 10 to be fully utilized in the present disclosure.
[0032] Therefore, in the battery case 10 according to the embodiment of the present disclosure, by directly connecting the case body 11 to the upper cover 13 and the lower cover 12, connections via transition surfaces between the case body 11 and the upper cover 13, or between the case body 11 and the lower cover 12, are avoided, thus reducing the influence of transition surfaces on the dimensions of the battery 100 and improving the energy density of the battery 100.
[0033] In some specific embodiments of the present disclosure, as shown in FIGS. 6 to 8, the lower cover 12 and / or the upper cover 13 are plate-like members, and the thickness of the plate-like member is less than the wall thickness of the case body 11. For example, when the lower cover 12 is a plate-like member, the thickness of the lower cover 12 is smaller than the thickness of the case body 11, and when the upper cover 13 is a plate-like member, the thickness of the upper cover 13 is less than the thickness of the case body 11. In the present embodiment, by defining the thickness of the plate-like member to be smaller than the wall thickness of the case body 11, the thicknesses of the upper cover 13 and the lower cover 12 may be reduced. In addition, the thickness of the case body 11 is greater than the thicknesses of the upper cover 13 and the lower cover 12. Due to the large wall thickness, when the electrolyte injection hole 112 and the conductive connection region are defined in the case body 11, the positive electrode conductive connector may be conveniently attached or welded. On the other hand, since the area of the weldable region between the upper cover 13 or the lower cover 12 and the case body 11 does not change, the present embodiment can not only guarantee the sealing performance between the upper cover 13 or the lower cover 12 and the case body 11, but also further reduce the thickness of the battery and improve the space utilization.
[0034] For ease of explanation, the thickness of the upper cover 13 may be defined as w1, the thickness of the lower cover 12 may be defined as w2, and the thickness of the case body 11 may be defined as w3. When w1 < w3, that is, when the thickness of the upper cover 13 is smaller than the thickness of the case body 11, the area of the connection region between the upper cover 13 and the case body 11 is guaranteed to improve the connection firmness between the case body 11 and the upper cover 13, and the thickness of the upper cover 13 is reduced, improving the space utilization of the battery. For example, in order to reduce the space occupied by the battery case 10 and improve the space utilization of the battery, the thickness of the upper cover 13 and the thickness of the battery 100 may be reduced. Similarly, when w2 < w3, the space utilization of the battery can be improved while the sealing performance between the lower cover 12 and the case body 11 is guaranteed, but this will not be described again here.
[0035] Optionally, the thicknesses of the upper cover 13, lower cover 12, and case body 11 are within the numerical ranges of 30μm≦w1≦100μm, 30μm≦w2≦100μm, and 100μm≦w3≦200μm, and structural strength and connection reliability are guaranteed by adopting these materials. The thicknesses of the upper cover 13 and lower cover 12 may be different or the same, and may be specifically set according to actual needs.
[0036] According to one embodiment of the present disclosure, as shown in Figures 2 and 3, a housing space 111 is defined within a case body 11, the case body 11 has two open ends, each open end communicating with the housing space 111, an electrolyte injection hole 112 and a conductive connection area are provided in the case body 11, a lower cover 12 is connected to one end of the case body 11 and configured to close one open end, and an upper cover 13 is connected to the other end of the case body 11 and configured to close the other open end. Naturally, the electrolyte injection hole 112 may also be provided in the upper cover 12 or the lower cover 13. In this case, the conductive connection area may be provided in the upper cover 12 or the lower cover 13 together with the electrolyte injection hole 112, or, as desired, in the case body 11. Specifically, this depends on the arrangement of the polarity of the electrode cores housed in the housing space 111.
[0037] In the case body 11, the upper cover 12 or the lower cover 13 is provided with an electrolyte injection hole 112 and a conductive connection area. The electrolyte can be injected into the housing space 111 through the electrolyte injection hole 112. The conductive connection area may include a positive electrode connection area 117 and a negative electrode connection area 118. The positive electrode connection area 117 can be used for components provided in a through hole of the case body 11, and the negative electrode connection area 118 may be a partial area of the case body 11. The positive electrode tab of the electrode core is electrically connected to the positive electrode conductive connector of the positive electrode connection area 117, and the negative electrode tab 24 of the electrode core may be electrically connected to the inner wall surface of the case body 11 corresponding to the negative electrode connection area 118.
[0038] According to one embodiment of the present disclosure, at least a portion of the outer circumference of an open end extends beyond the outer circumference of the corresponding lower cover 12 or upper cover 13. For example, the edge of the upper end face of a second open end extends beyond the edge of the upper cover 13. The edge of the lower end face of a first open end extends beyond the edge of the lower cover 12.
[0039] In the following, the upper cover 13 is used as an example for explanation. A portion of the upper end surface of the second open end overlaps the lower end surface of the upper cover 13, and the width of the overlapping area is defined as h2. Note that the overlapping area means the portion where the orthographic projection of the upper cover 13 and the orthographic projection of the upper end surface of the second open end overlap when the orthographic projection of the upper cover 13 is compared with the orthographic projection of the upper end surface of the second open end in the top-down direction. The width of the corresponding overlapping area refers to the width h2 of the overlapping area in the inside-out direction. Here, the inside means the direction closer to the housing space 111, and the outside means the direction closer to the outside of the battery case 10.
[0040] In addition, if the thickness of the case body 11 is uniform, the thickness of the case body 11 may be defined as w3. In this case, the relationship between the width h2 of the overlapping area and the thickness w3 of the case body 11 may be defined as 1 / 2w3 ≤ h2 ≤ w3. By defining the above numerical range, the strength of the case body 11 supporting the upper cover 13 can be effectively guaranteed. Similarly, if a portion of the lower end surface of the first open end is defined to overlap with the upper end surface of the lower cover 12, the width of the corresponding overlapping area may also be defined as h2, and the relationship between the overlapping area and the width of the lower end surface of the first open end is defined to guarantee the strength of the case body 11 supporting the lower cover 12, but this will not be explained again here.
[0041] According to one embodiment of the present disclosure, a notch 14 is formed between the outer circumference of the open end and the corresponding outer circumference of the lower cover 12 or upper cover 13, the case body 11 is connected to the lower cover 12 or upper cover 13 corresponding to the open end by laser welding, and a portion of the weld joint 113 formed by welding is located in the notch 14.
[0042] For the sake of clarity, the upper cover 13 is used as an example for the following explanation. A step is formed between a portion of the upper surface of the second open end and the upper surface of the upper cover 13. In particular, a portion of the upper surface of the second open end overlaps the lower surface of the upper cover 13, and the outer circumference of the other portion of the upper surface of the second open end extends beyond the outer edge of the upper cover 13, so that a step is formed between the upper surface of the second open end and the upper surface of the upper cover 13, i.e., a notch 14 is formed.
[0043] Optionally, 1 / 2w3 ≤ h2 ≤ 3 / 4w3. By adopting a size relationship within this range, it becomes possible to guarantee the reliability of the connection between the upper cover 13 and the lower cover 12 and the case body 11, even with the presence of the notch 14.
[0044] When a notch 14 is formed between the upper cover 13 and the second open end, welding may be performed obliquely from above (as indicated by the arrow in Figure 17). The direction and intensity of the welding light emission can be controlled to form a projection of the welded joint 113 in the notch 14. No post-treatment of the projection is required, and the overall height or width of the battery case 10 is not increased. The angle between the welding direction and the second open end may be determined depending on the size of the notch 14 and the welding strength, and the angle is not limited herein. Similarly, when a notch 14 is formed between the lower cover 12 and the case body 11, welding may be performed at the location of the notch 14 as described above, but this is again not described here.
[0045] In some specific embodiments of this disclosure, as shown in Figures 7 and 8, the outer periphery of the open end is leveled with the outer periphery of the corresponding lower cover 12 or upper cover 13. The upper cover 13 is used as an example for the following description. The outer periphery of the second open end is leveled with the outer periphery of the upper cover 13, and the width of the overlapping area between the upper end surface of the second open end and the lower end surface of the upper cover 13 is equal to the thickness of the upper end surface of the second open end. If the case body 11 has a structure with a uniform thickness, the width of the overlapping area may be equal to the thickness of the case body 11, i.e., h2 = w3.
[0046] According to one embodiment of the present disclosure, as shown in Figures 10-11, the open end is connected to a corresponding lower cover 12 or upper cover 13 by laser welding. The welded joint 113 formed by the welding extends through the lower cover 12 or upper cover 13 corresponding to the open end to the case body 11. The width of the welded joint 113 may be defined as w4. The upper cover 13 is used as an example for the following description. The upper end surface of the second open end completely overlaps the lower end surface of the upper cover 13. That is, the lower end surface of the upper cover 13 completely covers the upper end surface of the second open end, and the outer circumference of the upper cover 13 is level with the outer circumference of the second open end, i.e., h2 = w3. In this case, during the welding process, the welding may be performed along the direction from the upper cover 13 to the case body 11. For example, the upper cover 13 is located above the case body 11. When the upper cover 13 is welded to the case body 11, the welding may be performed vertically from top to bottom, as indicated by the arrow in Figure 9. A welded joint 113 is formed during welding, and the welded joint 113 extends through the upper cover 13 to the case body 11, forming an airtight connection between the upper cover 13 and the case body 11. Similarly, the lower cover 12 is located below the case body 11, and both the lower cover 12 and the case body 11 may also be fixed by welding from bottom to top, but this will not be described again here.
[0047] Furthermore, 1 / 3w3 ≤ w4 ≤ 1 / 2w3. By adopting a numerical relationship within this range, it is possible to prevent foreign matter generated during the laser welding process from damaging the electrode core housed in the containment space 111.
[0048] According to one embodiment of the present disclosure, as shown in Figures 12 and 22, the case body 11 has arc-shaped segments along its circumferential direction, and the outer contours of the lower cover 12 and / or upper cover 13 are geometrically identical to the outer contour of the case body 11. For example, the outer surface of the case body 11 includes a plurality of sides, which may be straight sidewalls 114 or arc-shaped sidewalls 115. If the cross-sectional shape of the case body 11 is substantially rectangular, the sidewalls may include four straight sidewalls 114 and four arc-shaped sidewalls 115, with one arc-shaped sidewall 115 positioned between two adjacent straight sidewalls 114. That is, two adjacent straight sidewalls 114 may be connected by one arc-shaped sidewall 115. During production, the case body 11 may be formed by bending a steel plate and welding the ends of the steel plate together. Because the steel plate itself has strength, the arc-shaped sidewalls 115 are naturally formed during the bending process of the steel plate. In other words, when the case body 11 is manufactured by bending, an arc-shaped side wall surface 115 is created. By manufacturing the case body 11 by bending, the difficulty of manufacturing the case body 11 can be reduced.
[0049] In this embodiment, the outer circumference of the case body 11 has arc-shaped segments, which reduce the difficulty of manufacturing the case body 11. By defining the shape of the outer contour of the upper cover 13 and / or lower cover 12 to match the outer contour of the case body 11, the aesthetic appearance is improved and materials are saved.
[0050] Optionally, the radius of the fillet on the arc-shaped side wall surface 115 of the case body 11 is defined as R2, where 0.2 mm ≤ R2. Correspondingly, for assembly purposes, the upper cover 13 and lower cover 12 may also be provided with fillets having radii R1 and R3, respectively. On the other hand, to further improve the use of space inside the battery case 10, the positive electrode sheet 21 and / or negative electrode sheet 22 may also be provided with a fillet having radius R4, where R1, R2, R3, and R4 may be the same.
[0051] In some specific embodiments of this disclosure, as shown in Figure 12, the outer surface of the case body 11 includes a plurality of sequentially connected sides, and the areas of the upper cover 13 and the lower cover 12 are larger than the areas of each side. It should be noted that in order to improve the sealing performance between the case body 11 and the upper cover 13 or the lower cover 12, the case body 11 needs to have a large thickness so as to increase the area of the connecting area, for example, the area of the welded area. If the case body 11 is designed to have a large area structure, the space occupied by the battery case 10 is increased, which is contrary to improving the energy density of the battery 100. In particular, the side walls of the case body 11 may include a plurality of continuously adjacent side wall members, for example, two first side wall members extending in the longitudinal direction and two second side wall members extending in the width direction. The areas of the upper cover 13 and the lower cover 12 are larger than the areas of each side wall member. In other words, the upper cover 13 and the lower cover 12 correspond to the larger surface area of the electrode core, and the case body 11 corresponds to the smaller surface area of the electrode core. The area of the larger surface area of the electrode core is larger than the area of the smaller surface area of the electrode core.
[0052] According to one embodiment of the present disclosure, as shown in Figures 3 and 12, the upper cover 13 or lower cover 12 is provided with an explosion-proof score 116. During the charging and discharging process of the battery 100, the electrode core tends to expand in the thickness direction of the battery 100. When the pressure exceeds the upper limit, the battery 100 may explode. Therefore, since the bottom thickness of the explosion-proof score 116 is smaller than the thickness of other parts, when the pressure inside the battery 100 rises, the explosion-proof score 116 cracks to release gas, thereby preventing the battery 100 from exploding and improving the safety of the battery 100. Optionally, the explosion-proof score 116 is located on the outer surface of the upper cover 13, and the direction of the fillet of the explosion-proof score 116 is opposite to the direction of the fillet of the upper corner of the upper cover 13 that is closest to the explosion-proof score 116. The explosion-proof groove 116 may be an arc-shaped groove, where the arc length may be in the range of 1 / 4 circle to 3 / 4 circle, and the radius of the circle is defined as R5, for example, 3 mm ≤ R5 ≤ 6 mm.
[0053] This disclosure further discloses a battery 100, which comprises a battery case 10 and an electrode core, the battery case 10 being a battery case 10 according to any of the embodiments described above. The conductive connection area includes a positive electrode connection area 117 and a negative electrode connection area 118. The positive electrode connection area 117 may be used for a component provided in a through hole of the case body 11, and the negative electrode connection area 118 may be a partial area of the case body 11. The electrode core is located in a housing space 111, and the electrode core includes a positive electrode tab and a negative electrode tab 24 located in the electrode core. The positive electrode tab is electrically connected to the positive electrode connection area 117, and the negative electrode tab 24 is electrically connected to the negative electrode connection area 118. In this embodiment, the electrode core may be manufactured by winding or lamination.
[0054] The negative electrode tab 24 can be directly welded to the inner wall of the case body 11 corresponding to the negative electrode connection area 118. In particular, the negative electrode tabs 24 may be assembled and then welded to the inner wall corresponding to the negative electrode connection area 118. Thus, the negative electrode tab 24 and the case body 11 are electrically connected.
[0055] Optionally, as shown in Figures 19, 20, and 22-25, the positive electrode conductive connector includes a first insulating sheet 33 and a metal sheet 34 located outside the battery case 10, and a rivet 31 and a second insulating sheet 32 located inside the battery case 10. That is, the rivet 31, the second insulating sheet 32, the case body 11, the first insulating sheet 33, and the metal sheet 34 are arranged in order from inside to outside, with through holes provided in the metal sheet 34, the first insulating sheet 33, and the second insulating sheet 32. The rivet 31 can extend sequentially through the second insulating sheet 32, the first insulating sheet 33, the case body 11, and the metal sheet 34, and finally the rivet 31 is fixed to the metal sheet 34 by force and electrically connected. In addition, the positive electrode tabs are gathered and then welded to the rivet 31. In the width direction of the battery 100, the width of the first insulating sheet 33 is greater than or equal to the width of the metal sheet 34, and the width of the second insulating sheet 32 is greater than or equal to the width of the rivet 31, in order to avoid contact between the rivet 31 or the metal sheet 34 and the case body 11. On the other hand, the left ends of the first insulating sheet 33 and the second insulating sheet 32 cannot extend beyond the intersection point between the arc-shaped surface and the side surface of the case body 11 in order to avoid insufficient sealing. The first insulating sheet 33 and the second insulating sheet 32 can electrically insulate the rivet 31 from the case body 11 in order to avoid the occurrence of a short circuit. On the other hand, the first insulating sheet 33 and the second insulating sheet 32 can improve the sealing performance of the positive electrode connection area 117 in order to avoid leakage of electrolyte.
[0056] The metal sheet 34 may have stepped grooves 35 at the positions where it will be riveted with rivets 31, so that when the rivets 31 are pressed in, the ends of the rivets 31 can be received in the grooves to ensure that the end faces of the pressed rivets 31 do not extend beyond the upper end surface of the metal sheet 34. This facilitates subsequent welding operations when the battery 100 is assembled into a module. The metal sheet 34 and rivets 31 may be made of aluminum, nickel, copper, or other materials.
[0057] According to one embodiment of the present disclosure, the electrode core is a laminated electrode core. Note that a laminated structure is adopted in this embodiment because it offers a higher space utilization rate. When a laminated structure is adopted, the electrode core may include a negative electrode sheet 22, a separator 23, and a positive electrode sheet 21 that are stacked in order. For example, the laminated electrode core has a substantially cubic shape, and the battery case 10, mainly defined by a lower cover 12, a case body 11, and an upper cover 13, may also have a substantially cubic shape. Correspondingly, the housing space 111 also has a substantially cubic shape to accommodate the laminated structure.
[0058] According to one embodiment of the present disclosure, as shown in Figures 12 and 19-20, the stacking direction of the electrode cores is parallel to the axial direction of the electrolyte injection hole. Specifically, the electrode cores may be stacked along a direction perpendicular to the upper cover 12 or the lower cover 13, and the electrolyte injection hole is provided in the upper cover 12 or the lower cover 13. The electrode cores may also be stacked along a direction parallel to the upper cover 12 or the lower cover 13, and the electrolyte injection hole is provided in the case body 11. The stacking direction of the electrode cores is parallel to the axial direction of the electrolyte injection hole, and therefore the electrolyte can flow rapidly through the stacked electrode cores and penetrate the electrode cores well.
[0059] In some specific embodiments of this disclosure, the electrode core includes a plurality of positive electrode sheets 21 and a plurality of negative electrode sheets 22. A positive electrode tab member is disposed at one end of each positive electrode sheet 21, and a negative electrode tab member is disposed at one end of each negative electrode sheet 22. The distance between one end of the negative electrode sheet 22 and the inner wall surface of the case body 11 is a first distance. The distance between the other end of the negative electrode sheet 22 and the inner wall surface of the case body 11 is a second distance. The sum of the first distance and the second distance is 2 mm or more and 5 mm or less.
[0060] In other words, since the negative electrode active material layer must completely enclose the positive active material layer, the size of the negative electrode sheet is defined in this embodiment. In the longitudinal direction of the battery 100, the distance between the lower end of the negative electrode sheet and the case body 11 is defined as h2, and the distance between the upper end of the negative electrode sheet and the case body 11 is defined as h3. By defining h2>0, h3>0, and 2mm≦h2+h3≦5mm, contact between the negative electrode sheet and the case body 11 is avoided, bending of the electrode sheet is avoided, and sufficient welding space is ensured for the tab. In addition, in the width direction of the battery 100, the distance between the left end of the negative electrode sheet and the case body 11 is h4, and the distance between the right end of the negative electrode sheet and the case body 11 is h5. By defining h4>0 and h5>0, contact between the negative electrode sheet and the case body 11 is avoided, bending of the electrode sheet is avoided.
[0061] In summary, the battery case 10 according to an embodiment of the present disclosure includes an upper cover 13, a case body 11, and a lower cover 12. Both the lower cover 12 and the upper cover 13 are directly connected to the case body 11 in a vertical relationship that eliminates the need for transition surfaces, for example, between the case body 11 and the upper cover 13 and between the case body 11 and the lower cover 12, thus reducing the influence of transition surfaces on the dimensions of the battery 100 and improving the energy density of the battery 100. The battery 100 according to an embodiment of the present disclosure includes the battery case 10 according to any of the embodiments described above, and the battery case 10 according to an embodiment of the present disclosure has the advantages of a large housing space 111 and the ability to accommodate electrode cores with high energy density. Therefore, the battery 100 according to an embodiment of the present disclosure also has the above advantages and the energy density of the battery 100 is improved. This will not be explained again here.
[0062] While several specific embodiments of this disclosure are described in detail as examples, those skilled in the art should understand that the examples are for illustrative purposes only and are not intended to limit the scope of this disclosure. Those skilled in the art should also recognize that modifications to the embodiments described above may be made without departing from the scope and spirit of this disclosure. The scope of this disclosure is defined by the appended claims.
Claims
1. A case body (11) comprising a storage space (111) defined within the case body (11), the case body (11) having two open ends, each open end communicating with the storage space (111), A lower cover (12) is provided, wherein the lower cover (12) is connected to one end of the case body (11) and configured to close one open end, An upper cover (13) is provided, wherein the upper cover (13) is connected to the other end of the case body (11) and is configured to close the other open end, The lower cover (12) and / or the upper cover (13) are plate-shaped members, and the side wall of the case body (11) is perpendicular to the plate-shaped member. At least a portion of the outer circumference of the open end extends beyond the outer circumference of the corresponding lower cover (12) or upper cover (13). A battery case (10) wherein 1 / 2w3 ≤ h2 < w3, where h2 is the width of the overlapping area between the upper cover (13) or the lower cover (12) and the case body (11) when viewed from the direction from the upper cover (13) to the lower cover (12), and w3 is the thickness of the case body (11).
2. The battery case (10) according to claim 1, wherein the thickness of the plate-like member is less than the wall thickness of the case body (11).
3. The battery case (10) according to claim 1, wherein 30 μm ≤ w1 ≤ 100 μm, 30 μm ≤ w2 ≤ 100 μm, and 100 μm ≤ w3 ≤ 200 μm, and w1, w2, and w3 are the thicknesses of the upper cover (13), the lower cover (12), and the case body (11), respectively.
4. The battery case (10) according to claim 1, wherein the case body (11) is provided with an electrolyte injection hole (112) and a conductive connection area.
5. The battery case (10) according to claim 1, wherein the upper cover (13) or the lower cover (12) is provided with an electrolyte injection hole (112), and the case body (11) is provided with a conductive connection area.
6. The battery case (10) according to claim 1, wherein a notch (14) is formed between the outer circumference of the open end and the outer circumference of the corresponding lower cover (12) or upper cover (13), the case body (11) is welded to the corresponding lower cover (12) or upper cover (13) by laser welding, and a portion of the welded joint (113) formed by welding is located in the notch (14).
7. The battery case (10) according to claim 6, wherein 1 / 2w3 ≤ h2 ≤ 3 / 4w3.
8. The battery case (10) according to claim 1, wherein the outer circumference of the open end is leveled with the outer circumference of the corresponding lower cover (12) or upper cover (13).
9. The battery case (10) according to claim 1, wherein the open end is connected to the corresponding lower cover (12) or upper cover (13) by laser welding, and the welded joint (113) formed by the welding extends through the lower cover (12) or upper cover (13) corresponding to the open end to the case body (11).
10. The battery case (10) according to claim 9, wherein 1 / 3w3 ≤ w4 ≤ 1 / 2w3, where w3 is the thickness of the case body (11) and w4 is the width of the welded joint (113).
11. The battery case (10) according to claim 1, wherein the case body (11) has an arc-shaped segment along the circumferential direction of the case body (11), and the outer contours of the lower cover (12) and / or the upper cover (13) are morphologically identical to the outer contour of the case body (11).
12. The battery case (10) according to claim 1, wherein the outer surface of the case body (11) has a plurality of sides connected in order, and the area of the upper cover (13) and the lower cover (12) is larger than the area of each of the sides.
13. A battery (100) comprising a battery case (10), wherein the battery case (10) is the battery case (10) described in any one of claims 1 to 12.
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