Terminal, cover plate assembly and battery cell

By designing the electrode post with inclined sidewalls for the electrode tab welding groove and laser welding, the problem of electrode tab breakage was solved, improving the connection stability between the electrode tab and the electrode post and the performance of the single cell.

WO2026076861A1PCT designated stage Publication Date: 2026-04-16EVE POWER CO LTD
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Patent Information

Application Number
PCT/CN2025/078008
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-11-12
Filing Date
2025-02-19
Publication Date
2026-04-16

AI Technical Summary

Technical Problem

In existing technologies, the connection method between the tab and the terminal post makes the tab prone to breakage, affecting the performance of the single cell.

Method used

Design a pole post in which the sidewall of the electrode lug welding groove is inclined toward the axis of the pole post to reduce the bending angle when the electrode lug contacts the sidewall of the groove, and fix the electrode lug and pole post by laser welding, eliminating the adapter piece and simplifying the structure.

Benefits of technology

It effectively avoids cracks and breaks in the tabs at bending points, improves the current carrying capacity and overcurrent capacity of the tabs, and improves the performance of individual cells.

✦ Generated by Eureka AI based on patent content.

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Abstract

Provided in the present application are a terminal, a cover plate assembly and a battery cell, relating to the technical field of batteries. The terminal comprises a body, the body having a first surface, and the first surface being provided with a tab welding slot; the tab welding slot has slot side walls, the slot side walls being configured to be in contact with a tab of a battery cell; in the direction away from the first surface, the planes where the slot side walls are located gradually incline towards the axis of the terminal.
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Description

Terminal posts, cover plate assemblies and individual cells

[0001] This application claims priority to Chinese Patent Application No. 202422474708.2, filed on October 12, 2024, and Chinese Patent Application Nos. 202411614729.8 and 202422764279.2, filed on November 12, 2024, the entire contents of which are incorporated herein by reference. Technical Field

[0002] This application relates to the field of battery technology, specifically to an electrode post, cover plate assembly, and single cell battery. Background Technology

[0003] A single battery cell includes a casing, an electrode assembly disposed within the casing, and terminals disposed on the casing. In related technologies, to improve the energy density of a single battery cell, the electrode assembly is directly connected to the terminals via tabs. The connection method between the terminals and tabs has a significant impact on the performance of the single battery cell. Invention Overview

[0004] In related technologies, the scheme of connecting the tabs and terminals has some shortcomings, resulting in poor performance of individual cells.

[0005] In a first aspect, this application provides an electrode post, which includes a body having a first surface and a tab welding groove provided on the first surface; the tab welding groove has a groove sidewall configured to contact the tab of a single cell, and the plane containing the groove sidewall gradually tilts toward the axis of the electrode post along a direction away from the first surface.

[0006] Secondly, this application provides a cover plate assembly, which includes a cover plate and the aforementioned pole post; the pole post is disposed on the cover plate.

[0007] Thirdly, this application provides a single-cell battery, which includes a housing, an electrode assembly, tabs, and the aforementioned cover assembly; the housing has a receiving cavity, one end of which is an open end; the electrode assembly is disposed in the receiving cavity; one end of the tab is connected to the electrode assembly; the cover assembly is placed on the open end of the housing to close the receiving cavity; the other end of the tab extends into the tab welding groove, and the tab fits against the side wall of the groove and is connected and fixed to the inner wall of the tab welding groove. Beneficial effects

[0008] In this application, by limiting the inclination of the groove sidewall in contact with the tab towards the axis of the electrode post, the bending angle when the tab contacts the groove sidewall can be reduced. This avoids significant stress concentration at the bending point, effectively preventing cracks or even breakage of the tab at the bending point. Thus, the structural integrity of the tab is ensured, improving its current-carrying capacity and enhancing the current flow capacity between the tab and the electrode post, thereby improving the performance of the single-cell battery. Attached Figure Description

[0009] Figure 1 is a schematic diagram of the pole structure provided in an embodiment of this application;

[0010] Figure 2 is a schematic diagram of the cross-section of the pole provided in the embodiment of this application in the direction perpendicular to the extension of the electrode lug welding groove;

[0011] Figure 3 is a schematic diagram of the engagement of the pole post and the pole tab provided in an embodiment of this application;

[0012] Figure 4 is an enlarged view of point A in Figure 3;

[0013] Figure 5 is a schematic diagram of another pole provided in an embodiment of this application;

[0014] Figure 6 is a schematic diagram of the structure of another pole provided in an embodiment of this application;

[0015] Figure 7 is a schematic diagram of another pole provided in an embodiment of this application;

[0016] Figure 8 is a side view of the pole shown in Figure 7 provided in an embodiment of this application;

[0017] Figure 9 is a schematic diagram of the mating of the pole post and the pole tab shown in Figure 7 provided in this application;

[0018] Figure 10 is a structural schematic diagram of the cover plate assembly provided in an embodiment of this application;

[0019] Figure 11 is a schematic diagram of the structure of a single battery provided in an embodiment of this application;

[0020] Figure 12 is a schematic diagram of the pole post and pole tab mating in another cross-sectional direction provided by an embodiment of this application;

[0021] Figure 13 is a front view of a single battery cell provided in an embodiment of this application.

[0022] Figure 14 is a top view of a single battery cell provided in an embodiment of this application.

[0023] Figure 15 is a cross-sectional view of the cover plate assembly provided in an embodiment of this application.

[0024] Figure 16 is a schematic diagram of the connection between the pole and the electrode assembly provided in the embodiment of this application.

[0025] Figure 17 is a schematic diagram of the connection between the pole and the electrode assembly provided in the embodiment of this application.

[0026] Figure 18 is a schematic diagram of the connection between the pole and the electrode assembly provided in the embodiment of this application.

[0027] Figure 19 is a cross-sectional view of the pole provided in an embodiment of this application.

[0028] Figure 20 is a cross-sectional view of the pole provided in an embodiment of this application.

[0029] Figure 21 is a cross-sectional view of the pole provided in an embodiment of this application.

[0030] Figure 22 is a cross-sectional view of the pole provided in an embodiment of this application.

[0031] Explanation of reference numerals in the attached figures:

[0032] 5-Pole post; 51-Body; 52-First surface; 53-Pole lug welding groove; 531-Groove sidewall; 532-Groove bottom wall; 54-Extension; 55-Pole post axis;

[0033] 2-Cover plate assembly; 21-Cover plate;

[0034] 3-Single cell; 31-Housing; 32-Electrode assembly; 321-End face of electrode assembly facing the terminal post; 33-Taper;

[0035] 11-Open end; 2213-Third welding surface; 23-Injection hole; 24-Insulating component; 25-Sealing component; 26-Pressure plate; 4-Protective layer. Embodiments of the present invention

[0036] To facilitate understanding of the solution in this application, the relevant technologies of this application will be explained before introducing the electrode post, cover plate assembly and single cell provided in this application.

[0037] In related technologies, a single-cell battery includes a casing, an electrode assembly disposed within the casing, and terminals disposed on the casing. To improve the energy density of the single-cell battery, the electrode assembly is directly connected to the terminals via tabs. While this connection method can increase the energy density of the single-cell battery, it requires the tabs to be bent at least once at a relatively large angle. Since the tabs are made of foil, they are prone to breakage during bending. This negatively impacts the overcurrent between the tabs and terminals, thus affecting the performance of the single-cell battery.

[0038] Based on this, embodiments of this application provide an electrode post, a cover plate assembly, and a single battery cell to solve the problem of electrode tab bending, thereby improving the current flow capacity between the electrode tab and the electrode post, and thus improving the performance of the single battery cell.

[0039] Please refer to Figures 1 and 2. Figure 1 is a structural schematic diagram of the electrode post 5 provided in an embodiment of this application, and Figure 2 is a schematic cross-section of the electrode post 5 provided in an embodiment of this application in the extension direction perpendicular to the tab welding groove 53. An embodiment of this application provides an electrode post 5 applied to a single-cell battery 3. The electrode post 5 includes a body 51. The body 51 has a first surface 52. The first surface 52 is provided with a tab welding groove 53. The tab welding groove 53 has a groove sidewall 531. The groove sidewall 531 is configured to contact the tab 33 of the single-cell battery 3. Along a direction away from the first surface 52, the plane containing the groove sidewall 531 gradually slopes towards the axis of the electrode post 5.

[0040] The portion of the tab 33 located within the tab welding groove 53 is parallel to the groove sidewall 531. The tab 33 has a length dimension, a width dimension, and a thickness dimension. The width dimension is the direction in which the tab 33 extends to the current collector connection point of the electrode sheet. Specifically, the direction of the width dimension of the tab 33 is parallel to the first surface and the groove sidewall 531.

[0041] It is understandable that the first surface 52 faces the electrode assembly of the single cell 3.

[0042] It is understood that the plane containing the tank sidewall 531 forms an angle α with the axis of the electrode post 5. Angle α is acute and is located on the side of the first surface 52 furthest from the electrode assembly. Correspondingly, the tank sidewall 531 and the end face 321 of the electrode assembly of the single cell 3 facing the electrode post form an acute angle β. Angle β and angle α are complementary.

[0043] It is understandable that 0 < α < 90°. Specifically, the included angle α includes, but is not limited to, 10°, 20°, 30°, 35°, 40°, 45°, 50°, 56°, 60°, 65°, 70°, 75°, 80°, and 85°.

[0044] It is understandable that the electrode welding groove 53 can be a groove structure, a through groove structure, or a semi-open groove structure with only one end connected to the outside and the other end closed.

[0045] In addition, the electrode welding groove 53 can be a V-shaped groove, a trapezoidal groove, or a groove of other shapes. The shape of the bottom wall of the electrode welding groove 53 is not limited; it can be a flat bottom wall, a circular arc groove bottom, or a groove bottom with other irregular shapes.

[0046] As shown in Figure 3, which is a schematic diagram of the engagement of the pole post 5 and the tab 33 according to an embodiment of this application, when the pole post 5 and the tab 33 are connected, multiple layers of tabs 33 are stacked to form a tab cluster. The tab cluster extends along the sidewall 531 of the groove and is inserted into the tab welding groove 53. As shown in Figure 4, which is an enlarged view of point A in Figure 3, the tabs 33 near the sidewall 531 of the groove have bends, and the bends are relatively small. Furthermore, the angle of bend of the tabs 33 in the tab cluster decreases as they move away from the sidewall 531 of the groove, meaning that the flatness of the tabs 33 farther from the sidewall 531 of the groove is better.

[0047] In this embodiment, by limiting the inclination of the groove sidewall 531 that contacts the tab 33 towards the axis of the terminal post 5, the bending angle of the tab 33 when it contacts the groove sidewall 531 can be reduced. This avoids significant stress concentration at the bending point of the tab 33, effectively preventing cracks or even breakage at the bending point. This ensures the structural integrity of the tab 33, improves its current-carrying capacity, enhances the current flow capacity between the tab 33 and the terminal post 5, and ultimately improves the performance of the single-cell battery 3.

[0048] Furthermore, by limiting the angle between the groove sidewall 531 that contacts the tab and the axis of the terminal post 5 to an acute angle, better fit between the tab 33 and the groove sidewall 531 can be achieved, thereby reducing the resistance at the contact point between the tab 33 and the terminal post 5. This not only improves the current-carrying capacity between the tab 33 and the terminal post 5 but also controls the temperature rise, thus improving the performance of the single cell 3.

[0049] Please refer to Figure 5 or Figure 6. Figure 5 is a structural schematic diagram of another pole post 5 provided in an embodiment of this application, and Figure 6 is a structural schematic diagram of yet another pole post 5 provided in an embodiment of this application. In one embodiment, along the direction perpendicular to the axis of the pole post 5, the electrode tab welding groove 53 passes through one or both ends of the body 51.

[0050] In some embodiments, one end of the tab welding groove 53 may penetrate one end of the body 51, as shown in Figure 5. In other embodiments, both ends of the tab welding groove 53 may penetrate both ends of the body 51, as shown in Figure 6.

[0051] It is understood that when both ends of the electrode welding groove 53 penetrate the body 51 in a direction perpendicular to the axis of the electrode post 5, the length dimension L1 of the electrode welding groove 53 in the extension direction of the electrode welding groove 53 is equal to the length dimension L3 of the body 51 in the extension direction of the electrode welding groove 53.

[0052] In this embodiment, by extending the tab welding groove 53 through one or both ends of the body 51, the size of the tab welding groove 53 can be increased, allowing for a larger width of the tab 33 fitted within it, thereby improving the current flow capacity between the tab 33 and the electrode post 5. Furthermore, the port connecting the tab welding groove 53 to the outside world enhances the ease of processing the tab welding groove 53 and the ease of welding it to the tab 33. This improves the efficiency of processing the electrode post 5 and the efficiency of welding the electrode post 5 to the tab 33.

[0053] Referring to Figures 1, 5, or 6, in one embodiment, the shape and dimensions of the electrode welding groove 53 are identical in any two cross-sections perpendicular to the extending direction of the electrode welding groove 53. This makes the shape of the electrode welding groove 53 regular, which helps reduce processing difficulty and improves the forming efficiency of the electrode post 5.

[0054] Referring to Figure 2, in one embodiment, there are two groove sidewalls 531. The two groove sidewalls 531 are centrally symmetrically distributed along the axis of the pole post 5. This not only makes the structure of the pole post 5 symmetrical and improves the stress state of the pole post 5, but also reduces the difficulty of connecting the tab 33 to the pole post 5, so that when welding the tab 33 to the pole post 5, the tab cluster can be welded to the groove sidewall 531 adjacent to it.

[0055] Furthermore, in some embodiments, the pole post 5 is welded to two tab clusters, which are symmetrically distributed along the axis of the pole post 5. The two tab clusters can be welded to two groove sidewalls 531 respectively. In this way, there are multiple welding surfaces between the tabs 33 and the pole post 5, thereby enhancing the stability of the connection between the pole post 5 and the tab clusters.

[0056] Referring to Figure 2, in one embodiment, the two groove sidewalls 531 are connected to each other on the side away from the groove opening of the electrode welding groove 53. This makes the electrode welding groove 53 a V-shaped groove. This not only simplifies the structure of the electrode welding groove 53 and makes it easy to manufacture, but also allows the electrode post 5 to have a thicker dimension at the location where the electrode welding groove 53 is provided, thereby improving the structural strength of the electrode post 5.

[0057] Referring to Figure 2, in one embodiment, a first chamfer R1 is provided at the junction of the groove sidewall 531 and the first surface 52. The first chamfer R1 is a rounded chamfer with a radius ranging from 15 to 30 mm.

[0058] It is understood that the radius of the first chamfer R1 is within the range of, but is not limited to, 15mm, 17mm, 18mm, 19mm, 20mm, 21mm, 22mm, 25mm, 26mm, 28mm, 29mm, and 30mm.

[0059] In this embodiment, by setting a first chamfer R1, on the one hand, the friction of the inflection point at the connection between the groove sidewall 531 and the first surface 52 on the tab 33 can be reduced, thereby improving the stress state of the tab 33 and preventing the tab 33 from being scratched; on the other hand, the stress on the pole 5 at the connection can be improved, thereby enhancing the reliability of the pole 5.

[0060] Please refer to Figures 7 and 8. Figure 7 is a structural schematic diagram of another pole post 5 provided in an embodiment of this application, and Figure 8 is a side view of the pole post 5 shown in Figure 7 provided in an embodiment of this application. In one embodiment, the electrode welding groove 53 further has a bottom wall 532. The sides of the two groove side walls 531 away from the groove opening of the electrode welding groove 53 are connected to the bottom wall 532. Specifically, the two groove side walls 531 are respectively connected to the two side edges of the bottom wall 532. In this way, the electrode welding groove 53 is a trapezoidal groove with a groove opening width greater than the groove bottom width. Optionally, the electrode welding groove 53 is an isosceles trapezoidal groove.

[0061] In this embodiment, through the above-mentioned arrangement, on the one hand, two groove sidewalls 531 can be formed on the pole post 5 to facilitate the connection between the pole post 5 and the tab 33; on the other hand, the depth dimension of the tab welding groove 53 can be controlled to ensure the overall strength of the pole post 5.

[0062] Referring to Figure 8, in one embodiment, a second chamfer R2 is provided at the connection between the sidewall 531 and the bottomwall 532 of the groove. The second chamfer R2 is a rounded chamfer with a radius ranging from 5 to 15 mm.

[0063] It is understood that the radius range of the second chamfer R2 is including but not limited to 5mm, 7mm, 8mm, 9mm, 10mm, 11mm, 12mm, and 15mm.

[0064] As shown in Figure 9, Figure 9 is a schematic diagram of the engagement of the pole post 5 and the pole tab 33 shown in Figure 7 provided in this application. The pole tab cluster is inserted into the pole tab welding groove 53 along the side wall 531 of the groove and extends to the bottom wall 532 of the groove along the second chamfer R2.

[0065] In this embodiment, by setting a second chamfer R2, on the one hand, when the electrode 33 extends from the side wall 531 of the groove to the bottom wall 532 of the groove, the electrode 33 can be smoothly bent between the side wall 531 and the bottom wall 532 of the groove, thereby improving the stress state of the electrode 33 and preventing the electrode 33 from being damaged due to excessively sharp bending; on the other hand, it can improve the stress on the pole 5 at the connection point and improve the reliability of the pole 5.

[0066] In addition, chamfers are mainly applied to the corners of the pole post 5 where it contacts the tab 33. This not only makes the tab 33 bend smoothly, thus reducing stress concentration at the bend, but also controls the processing cost of the chamfer, thereby controlling the manufacturing cost of the pole post 5.

[0067] Referring to Figure 8, in one embodiment, a third chamfer R3 is provided at the junction of the groove sidewall 531 and the first surface 52. The third chamfer R3 is a rounded chamfer with a radius ranging from 10 to 20 mm.

[0068] It is understood that the radius range of the third chamfer R3 is including but not limited to 10mm, 11.5mm, 12mm, 13mm, 14mm, 15mm, 17mm, 18mm, 19mm, and 20mm.

[0069] In this embodiment, by setting a third chamfer R3, on the one hand, the friction of the inflection point at the connection between the groove sidewall 531 and the first surface 52 on the tab 33 can be improved, thereby improving the stress state of the tab 33 and preventing the tab 33 from being scratched; on the other hand, the stress on the pole 5 at the connection can be improved, thereby improving the reliability of the pole 5.

[0070] In one embodiment, the angle between the plane containing the sidewall 531 of the groove and the axis of the pole post 5 is α, which satisfies: 30°≤α≤65°.

[0071] For example, the included angle α includes, but is not limited to, 30°, 32°, 33°, 34°, 35°, 36°, 38°, 40°, 42°, 44°, 45°, 47°, 48°, 50°, 52°, 55°, 56°, 58°, 59°, 60°, 62°, 64°, and 65°.

[0072] In this embodiment, by limiting the included angle α, on the one hand, it can avoid the angle being too small, which would cause the tab 33 to bend at a large angle in order to fit the sidewall 531 of the groove, thereby improving the stress state at the bend of the tab 33 and effectively preventing the tab 33 from having cracks or even breaking at the bend; on the other hand, it can avoid the angle being too large, which would cause the overlap height between the tab 33 and the pole post 5 to be small, thereby ensuring the overlap height between the tab 33 and the pole post 5 and reducing the height dimension occupied by the tab 33.

[0073] Referring to Figure 7, in one embodiment, an extension 54 is provided on the outer peripheral surface of the body 51. The extension 54 is located on the side close to the first surface 52. The extension 54 is located on one side of the groove sidewall 531.

[0074] It is understandable that the extension 54 is integrally formed with the main body 51.

[0075] In this embodiment, by providing the extension portion 54, on the one hand, the tab 33 can be stopped and engaged with the end cap of the single battery cell 3 through the extension portion 54, thus preventing the electrode post 5 from detaching from the end cap. On the other hand, the groove opening of the tab welding groove 53 can extend into the extension portion 54. In this way, while increasing the size of the groove opening, the strength of the electrode post 5 at the groove opening can be guaranteed, preventing deformation of the electrode post 5 at the groove opening.

[0076] Furthermore, by providing the extension 54, the extension 54 can support the electrode 33 when welding the electrode tab 33 to the electrode post 5, preventing the electrode tab 33 from deforming during welding, thereby improving the reliability of the welding between the electrode tab 33 and the electrode post 5.

[0077] Referring to Figure 7, in one embodiment, there are two groove sidewalls 531. The two groove sidewalls 531 are centrally symmetrically distributed along the axis of the pole post 5. There are two extensions 54. The two extensions 54 correspond one-to-one with the two groove sidewalls 531. In this way, the pole post 5 has a symmetrical structure, which can improve the stress state of the pole post 5.

[0078] Please refer to Figure 10, which is a structural schematic diagram of the cover plate assembly 2 provided in an embodiment of this application. Accordingly, an embodiment of this application also provides a cover plate assembly 2, which includes a cover plate 21 and a pole post 5 disclosed in some embodiments of this application. The pole post 5 passes through the cover plate 21.

[0079] It is understood that the cover plate assembly 2 also includes a pressure ring, an upper plastic ring, a lower plastic ring, and a sealing ring. The pressure ring is located on one side of the cover plate 21 and is fitted onto the end of the pole post 5 away from the electrode lug welding groove 53. The upper plastic ring is fitted onto the pole post 5 and is located between the pressure ring and the cover plate 21. The lower plastic ring is located on the other side of the cover plate 21. The sealing ring is fitted onto the pole post 5 and abuts against the cover plate 21 to seal the mating part between the cover plate 21 and the pole post 5.

[0080] In this embodiment, by employing the electrode post 5 disclosed in some embodiments of this application, the bending angle of the tab 33 when it contacts the sidewall 531 of the groove can be reduced, thereby avoiding significant stress concentration at the bending point of the tab 33 and effectively preventing cracks or even breakage at the bending point. This ensures the structural integrity of the tab 33, improves its current-carrying capacity, enhances the current flow capacity between the tab 33 and the electrode post 5, and ultimately improves the performance of the single-cell battery 3.

[0081] Please refer to Figure 11, which is a structural schematic diagram of a single-cell battery 3 provided in an embodiment of this application. Accordingly, an embodiment of this application also provides a single-cell battery 3. The single-cell battery 3 includes a housing 31, an electrode assembly 32, tabs 33, and a cover assembly 2 disclosed in some embodiments of this application. The housing 31 has a receiving cavity, and one end of the housing 31 is an open end 11. The cover 21 is placed on the open end 11 of the housing 31 to close the receiving cavity. The electrode assembly 32 is disposed in the receiving cavity. One end of the tab 33 is connected to the electrode assembly 32, and the other end of the tab 33 extends into the tab welding groove 53. The tab 33 is fitted against the side wall 531 of the groove. The tab 33 is connected and fixed to the inner wall of the tab welding groove 53.

[0082] In this embodiment, by employing the electrode post 5 disclosed in some embodiments of this application, the bending angle of the tab 33 when it contacts the sidewall 531 of the groove can be reduced, thereby avoiding significant stress concentration at the bending point of the tab 33 and effectively preventing cracks or even breakage at the bending point. This ensures the structural integrity of the tab 33, improves its current-carrying capacity, enhances the current flow capacity between the tab 33 and the electrode post 5, and ultimately improves the performance of the single-cell battery 3.

[0083] Please refer to Figure 12, which is a schematic diagram of the mating of the pole post 5 and the tab 33 in another cross-sectional direction according to an embodiment of this application. In one embodiment, the length of the tab welding groove 53 along the direction perpendicular to the axis of the pole post 5 is L1. The length of the tab 33 is L2. This satisfies: L1 > L2. This improves the smoothness of the tab 33's installation into the tab welding groove 53, thereby improving the efficiency of the connection between the tab 33 and the pole post 5.

[0084] When the tab 33 is rectangular, its length L2 is L2 at any height position. When the tab 33 is trapezoidal and its long base is connected to the electrode plate, its length L2 is half the sum of the length of the end of the tab 33 connected to the electrode plate and the length of the end of the tab 33 away from the electrode plate.

[0085] The technical solutions and effects of this application will be described in detail below through specific embodiments. The following embodiments are some embodiments of this application and are not intended to limit this application.

[0086] This embodiment aims to examine the impact of applying the electrode post 5 to the single cell 3 on the battery performance.

[0087] The specific details of the test content for the embodiment are as follows:

[0088] I. Test-related instructions

[0089] The test subjects were three types of single-cell batteries 3, all with an energy density of 280Ah. The differences between these three types of single-cell batteries 3 are as follows: the included angle α of the first type of single-cell battery 3 is 0°, that is, the sidewall 531 of the slot is parallel to the axis of the pole post 5; the included angle α of the second type of single-cell battery 3 is 30°; and the included angle α of the third type of single-cell battery 3 is 60°.

[0090] The degree of fit refers to the percentage of the area of ​​the tab 33 that fits with the pole post 5 to the area of ​​the tab 33 facing the side wall 531 of the groove.

[0091] The current-carrying capacity characterizes the current-carrying capacity between pole 5 and tab 33.

[0092] The temperature was measured at the negative electrode tab.

[0093] The ambient temperature during the test was 25±1℃.

[0094] II. Test Results

[0095] The above three types of single-cell batteries were tested, and the test data are as follows:

[0096] α-Adhesion, Current Capacity, Temperature Rise: 0.70 0.43% 80 A 15.4℃ 30° 85.57% 91 A 10.2℃ 60° 95.69% 95 A 5.5℃

[0097] Table 1. Test Data Table

[0098] According to Table 1:

[0099] (1) Degree of fit: As the included angle α increases from 0° to 30° and 60°, the degree of fit increases from 70.43% to 85.58% and 95.69% respectively. It can be seen that the larger the included angle α, the better the fit between the tab 33 and the pole post 5, and the larger the fit area between the tab 33 and the pole post 5; correspondingly, the current carrying capacity is better.

[0100] (2) Current carrying capacity: As the included angle α increases from 0° to 30° and 60°, the current carrying capacity increases from 80A to 91A and 95A. It can be seen that the larger the included angle α, the better the current carrying capacity between the tab 33 and the pole 5.

[0101] (3) Temperature rise: As the included angle α increases from 0° to 30° and 60°, the temperature rise decreases from 15.4℃ to 10.2℃ and 5.5℃ respectively. It can be seen that the larger the included angle α, the smaller the temperature rise.

[0102] Therefore, by limiting the angle α between the axis of the groove sidewall 531 and the terminal post 5, the tabs 33 cluster not only have a small bending angle to effectively prevent breakage, but also better contact with the groove sidewall 531, resulting in a tighter fit between the tabs 33 and the terminal post 5, thus increasing the contact area between them. This reduces resistance during current flow, improves current flow between the terminal post 5 and the tabs 33, and allows for smoother current transmission. Simultaneously, the reduced resistance also decreases the heat generated at the current flow point between the tabs 33 and the terminal post 5, helping to lower the temperature rise. This, in turn, improves the performance of the single-cell battery 3.

[0103] Based on the above embodiments, the embodiments of this application further describe the single cell 3 as follows.

[0104] Example 1

[0105] In one embodiment of this application, as shown in Figures 13 to 16, a single-cell battery 3 provided by this application includes a housing 31, a cover assembly 2, and an electrode assembly 32. The outer shape of the housing 31 matches the overall shape of the single-cell battery 3. In this embodiment, the single-cell battery 3 is a square single-cell battery 3, with its length direction in the X direction, its thickness direction in the Y direction, and its height direction in the Z direction. Correspondingly, the housing 31 is a hollow cuboid structure. The housing 31 has a cavity for accommodating the electrode assembly 32 and electrolyte. One end of the housing 31 in the height direction forms an opening for connecting the cavity and the outside of the single-cell battery 3, i.e., an opening end 11. The cover assembly 2 is placed over the opening end 11 of the housing 31 to seal the opening end 11, thereby closing the cavity inside the single-cell battery 3. The cover assembly 2 and the housing 31 form a closed cavity. Electrode assembly 32 is installed within the receiving cavity and stores electrical energy through electrochemical conversion. Electrode assembly 32 includes current collector components stacked or wound together and tabs 33 formed on the current collector components. Tabs 33 are used for current conduction. Cover assembly 2 includes a terminal post 5. The terminal post 5 serves as a current conductor, with one end for electrical connection to electrode assembly 32 and the other end for electrical connection to external power equipment. One end of the terminal post 5 faces the outside of the single cell 3, and the other end faces the inside of the single cell 3. A tab connection groove 53 is provided at the end of the terminal post 5 facing the receiving cavity inside the single cell 3. The tab connection groove 53 has an inner wall. The opening of the tab connection groove 53 faces electrode assembly 32. The end of the tab 33 facing away from electrode assembly 32 is a free end, which is connected and fixed to the inner wall of the tab connection groove 53.

[0106] It is understandable that by directly connecting the tab 33 to the terminal post 5, eliminating the need for an adapter plate to achieve the electrical connection between the electrode assembly 32 and the terminal post 5, the structure is simplified and the internal space utilization of the single cell 3 is improved. The tab 33 and the terminal post 5 are connected and fixed by laser welding. Since the tab 33 is directly welded to the terminal post 5, only one welding process is required when assembling the single cell 3. Compared with the method of using an adapter plate in related technologies (one end of the adapter plate is welded to the terminal post 5 and the other end is welded to the tab 33), the embodiment of this application eliminates the use of an adapter plate, which helps to reduce welding processes and improve assembly efficiency. In addition, the single cell 3 provided in this embodiment can also reduce the overall resistance of the single cell 3.

[0107] Specifically, the cover plate assembly 2 includes a cover plate 21, poles 5, an insulating element 24, a sealing element 25, and a pressure plate 26. The cover plate 21 is a rectangular flat plate. The cover plate 21 covers the opening end 11 of the housing 31. The cover plate 21 is welded and fixed to the housing 31. There are two poles 5, one positive and one negative, spaced apart along the length of the cover plate 21 (i.e., the X direction shown in Figure 13). Each pole 5 is correspondingly provided with an insulating element 24, a sealing element 25, and a pressure plate 26. The insulating element 24 is made of insulating material and serves an insulating function. The sealing element 25 is made of insulating material with a certain degree of elasticity and serves both insulating and sealing functions. The poles 5 pass through the cover plate 21. The insulating element 24 and the sealing element 25 are sandwiched between the poles 5 and the cover plate 21. The pole 5 includes a body 51 and an extension 54. The body 51 has a cuboid structure and passes through the cover plate 21. A tab connection groove 53 is disposed at the end of the body 51 facing the receiving cavity. Correspondingly, the cross-section of the tab connection groove 53 is a polygonal structure with a large opening, so that the tab connection groove 53 has sufficient space in the length direction (i.e., the X direction shown in FIG. 13) to accommodate the size of the tab 33. Of course, in other embodiments, the shape of the tab connection groove 53 can also be adapted to the shape and size of the tab 33. An extension 54 is located on the side of the cover plate 21 near the interior of the single cell 3. The extension 54 is annular and is disposed at the end of the body 51 facing the receiving cavity. One end of the inner ring of the extension 54 is connected to the body 51, and one end of the outer ring of the extension 54 extends in a direction away from the body 51.

[0108] In this embodiment, the extension 54 is integrally formed with the body 51, and the extension 54 is parallel to the cover plate 21. A pressure plate 26 is disposed at the end of the body 51 facing the outside of the single cell 3. The pressure plate 26 is annular, with one end of the inner ring of the pressure plate 26 welded to the body 51, and one end of the outer ring of the pressure plate 26 extending in a direction away from the body 51. Alternatively, the pressure plates 26 are riveted together. The pressure plate 26 and the extension 54 together achieve the installation and fixation of the terminal post 5. Alternatively, the cover plate 21 can be understood as being clamped between the pressure plate 26 and the extension 54. To achieve insulation and sealing between the terminal post 5 and the cover plate 21, a sealing element 25 is fitted at the connection between the body 51 and the extension 54, so that the body 51 and the cover plate 21, and the extension 54 and the cover plate 21, can be separated by the sealing element 25. In addition, the insulating element 24 is located on the side of the sealing element 25 away from the receiving cavity, and the body 51 and the cover plate 21, as well as the pressure plate 26 and the cover plate 21, are separated by the insulating element 24.

[0109] Specifically, the length direction of the tab connecting groove 53 (i.e., the X direction shown in Figure 13) is parallel to the length direction of the cover plate assembly 2, so that the length direction of the tab connecting groove 53 is parallel to the length direction of the tab 33, avoiding twisting of the tab 33 during installation. It should be noted that setting the length direction of the tab connecting groove 53 to be parallel to the length direction of the cover plate assembly 2 is to ensure that the shape of the tab connecting groove 53 matches the spatial position of the tab 33. Since the electrode assembly 32 is installed in the receiving cavity, the length direction of the tab 33 is exactly parallel to the length direction of the cover plate assembly 2. This allows the length direction of the tab 33 (i.e., the X direction shown in Figure 3) to be parallel to the length direction of the tab connecting groove 53. During installation, the tab 33 can be directly folded along its thickness direction to abut against the side wall of the tab connecting groove 53, preventing twisting of the tab 33 along its length. Therefore, in other embodiments, the length direction of the tab connecting groove 53 should match the length direction of the tab 33 for easy installation. The length dimension of the tab connecting groove 53 is L1, and the length dimension of the free end of the tab 33 is L2. When the free end of the tab 33 has an irregular shape, its length dimension L2 is the maximum dimension in the length direction. In this embodiment, the length dimension L1 of the tab connecting groove 53 is greater than the length dimension L2 of the free end of the tab 33 to facilitate the installation operation of the tab 33 and to ensure the connection strength between the tab 33 and the pole post 5.

[0110] In some embodiments, the length of the current collector assembly in the electrode assembly 32 is 100mm-1000mm; taking 100mm, 200mm, 300mm, 400mm, and 500mm as examples, the length L2 of the tab 33 is set to 10-20mm, 20-40mm, 40-60mm, 60-80mm, and 80-100mm respectively. In this embodiment, by setting the length L2 of the free end of the tab 33 within the range of 10-20% of the length of the current collector assembly, the current carrying capacity of the tab 33 can be effectively increased, ensuring that the current carrying capacity at the tab 33 meets the requirements of high-current operation, thereby improving the heat dissipation and safety of the single cell 3. In practical applications, the ratio of the length of the tab 33 to the length of the current collector assembly is controlled between 14-15% to obtain optimal current carrying and heat dissipation performance.

[0111] In some embodiments, the length L1 of the tab connection groove 53 is greater than the length L2 of the tab 33, and L1-L2=1-10mm. Optionally, the difference between the length L1 of the tab connection groove 53 and the length L2 of the tab 33 is in the range of 2-6mm. This structure helps to ensure the effective welding area of ​​the tab 33 and avoids wasting space in the tab connection groove 53. In practical applications, taking a certain model of single battery 3A as an example: its current collector assembly has a length of 275.8mm, the free end length L2 of the tab 33 is 39.43mm, and the length L1 of the tab connection groove 53 is selected as 45mm. Taking a certain model of single battery 3B as an example: its current collector assembly has a length of 398.7mm, the free end length L2 of the tab 33 is 59mm, and the length L1 of the tab connection groove 53 is selected as 63mm.

[0112] Specifically, the cover plate 21 is also provided with an injection hole 23, through which electrolyte is injected into the receiving cavity.

[0113] Specifically, the inner wall of the tab connecting groove 53 includes a bottom wall 532 and a side wall 531. The bottom wall 532 is located at the bottom of the tab connecting groove 53, that is, the bottom of the tab connecting groove 53 forms the bottom wall 532. The side wall 531 surrounds the periphery of the bottom wall 532 and is located between the bottom wall 532 and the opening of the tab connecting groove 53, that is, the wall of the tab connecting groove 53 forms the side wall 531. The free end of the tab 33 can be welded to the bottom wall 532 or to the side wall 531. There can be multiple tabs 33, and some tabs 33 can be welded to the bottom wall 532 while others are welded to the side wall 531.

[0114] In this embodiment, the tab 33 is welded to the bottom wall 532 of the groove. The side wall 531 of the groove is parallel to the depth direction of the tab connecting groove 53 (i.e., the Z direction shown in Figure 13), and the bottom wall 532 of the groove can be perpendicular to the side wall 531, or an obtuse angle can be formed between the bottom wall 532 and the side wall 531. The tab 33 is welded to the bottom wall 532 of the groove by laser welding, forming a solder mark area at the connection between the tab 33 and the bottom wall 532 of the electrode post 5. The tab connecting groove 53 is filled with an adhesive protective layer 4. The protective layer 4 can be a hot melt adhesive polymer, a photocurable polymer, or a pressure-sensitive adhesive polymer, etc. Filling the tab connecting groove 53 with the protective layer 4 is also called glue injection. By injecting glue, the protective layer 4 can cover the solder mark area, preventing the solder slag formed during welding from falling onto the electrode assembly 32 and causing a short circuit. Furthermore, through adhesive injection, the protective layer 4 also serves to bond and fix the tab 33, thereby improving the connection stability between the tab 33 and the pole post 5. To enhance the fixing effect of the protective layer 4 on the tab 33, the protective layer 4 fills the entire tab connection groove 53, so that the end of the tab 33 facing away from the current collector assembly is embedded in the protective layer 4.

[0115] Example 2

[0116] In one embodiment of this application, as shown in FIG17 and with reference to FIG15 for some reference numerals, a single cell battery 3 provided in this application has a structure similar to that of Embodiment 1, the difference being that the angle between the bottom wall 532 of the groove and the depth direction of the tab connecting groove 53 is γ, and 55°≤γ≤75°. Specifically, the value of γ includes, but is not limited to, 55°, 60°, 65°, 70°, and 75°. It can be understood that before the tab 33 is connected to the electrode post 5, the tab 33 on the electrode assembly 32 extends along the height direction of the single cell battery 3, that is, the extension direction of the tab 33 is parallel to the depth direction of the tab connecting groove 53. By controlling the angle between the bottom wall 532 of the groove and the depth direction of the tab connecting groove 53 to be between 55° and 75°, the bottom wall 532 of the groove can be tilted towards the extension direction of the tab 33. This structure is beneficial to reduce the bending angle of the free end of the tab 33 when installing the tab 33, and to avoid damage to some tabs 33 due to excessive bending angle during installation.

[0117] Example 3

[0118] In one embodiment of this application, as shown in FIG18 and with some reference numerals referring to FIG15, a single cell battery 3 provided in this application has a structure similar to that of Embodiment 1, the difference being that: the tab 33 is welded and fixed to the side wall 531 of the groove. It can be understood that the tab 33 on the electrode assembly 32 extends along the height direction of the single cell battery 3, that is, the extension direction of the tab 33 is parallel to the depth direction of the tab connecting groove 53. The groove side wall 531 is parallel to the tab 33, which reduces the bending angle of the tab 33 during installation, preventing damage to the tab 33 due to excessive bending during installation.

[0119] Example 4

[0120] In one embodiment of this application, as shown in FIG19 and with some reference numerals referring to FIG15, a single-cell battery 3 provided in this application has a structure similar to that of Embodiment 1, the difference being that the portion of the tab connection groove 53 away from the groove opening is an arc-shaped structure. It can be understood that the tabs 33 on the electrode assembly 32 extend along the height direction of the single-cell battery 3 before being connected to the electrode post 5, that is, the extension direction of the tabs 33 is parallel to the depth direction of the tab connection groove 53. When connecting the tabs 33 to the inner wall of the tab connection groove 53, the tabs 33 need to be bent so that the ends of the tabs 33 fit against the inner wall of the tab connection groove 53. By setting the inner wall of the tab connection groove 53 as an arc-shaped structure, the arc-shaped structure can better adapt to the bending shape of the tabs 33, avoiding damage to the tabs 33 due to excessive bending angle during installation.

[0121] Example 5

[0122] In one embodiment of this application, as shown in FIG20 and with some reference numerals referring to FIG15, a single-cell battery 3 provided in this application has a structure similar to that of Embodiment 1, the difference being that the inner wall of the tab connection groove 53 is a "V" shaped structure. It can be understood that the tab 33 of the electrode assembly 32 extends along the height direction of the single-cell battery 3 before being connected to the electrode post 5, that is, the extension direction of the tab 33 is parallel to the depth direction of the tab connection groove 53. When installing the tab 33, it is necessary to bend the tab 33 so that the free end of the tab 33 fits against the inner wall of the tab connection groove 53. By setting the inner wall of the tab connection groove 53 to a "V" shaped structure, the tab 33 can be divided into two parts and installed on the two side walls of the tab connection groove 53 respectively, while also avoiding a large bending angle of the tab 33.

[0123] Example 6

[0124] In one embodiment of this application, as shown in FIG21 and with some reference numerals referring to FIG15, a single-cell battery 3 provided in this application has a structure similar to that of Embodiment 1, the difference being that the cross-section of the tab connection groove 53 is trapezoidal. The bottom of the tab connection groove 53 forms a bottom wall 532, and the wall of the tab connection groove 53 forms a side wall 531. The included angle between the side wall 531 and the bottom wall 532 is ε, and ε > 90°. The free end of the tab 33 can be installed on the bottom wall 532, or on the side wall 531, or the tab 33 can be installed on both the bottom wall 532 and the side wall 531.

[0125] Example 7

[0126] In one embodiment of this application, as shown in FIG22 and with reference to FIG15 for some reference numerals, a single-cell battery 3 provided in this application has a structure similar to that of Embodiment 1, the difference being that: the cross-section of the tab connection groove 53 is polygonal. The bottom of the tab connection groove 53 forms a bottom wall 532. The groove wall of the tab connection groove 53 forms a side wall 531 and a third welding surface 2213 sequentially from the bottom to the opening. The included angle between the side wall 531 and the bottom wall 532 is ε, and ε > 90°. The free end of the tab 33 can be mounted on at least one of the bottom wall 532, the side wall 531, and the third welding surface 2213.

Claims

1. A pole post (5), comprising: The body (51) has a first surface (52), and the first surface (52) is provided with a tab welding groove (53); The electrode welding groove (53) has a groove sidewall (531) configured to contact the electrode (33), and the plane containing the groove sidewall (531) gradually slopes toward the axis (55) of the electrode post in a direction away from the first surface (52).

2. The pole (5) according to claim 1, wherein Along a direction perpendicular to the axis (55) of the pole post, the tab welding groove (53) passes through one or both ends of the body (51).

3. The pole (5) according to claim 2, wherein In any two cross sections perpendicular to the extension direction of the electrode welding groove (53), the shape and size of the cross section of the electrode welding groove (53) are the same.

4. The pole (5) according to any one of claims 1-3, wherein There are two sidewalls (531) in the groove, and the two sidewalls (531) are centrally symmetrically distributed along the axis (55) of the pole post.

5. The pole (5) according to claim 4, wherein The two sidewalls (531) of the groove are connected to each other on the side away from the groove opening of the electrode welding groove (53).

6. The pole (5) according to claim 5, wherein A first chamfer is provided at the connection between the sidewall (531) of the groove and the first surface (52). The first chamfer is a rounded chamfer with a radius ranging from 15 to 30 mm.

7. The pole post (5) according to any one of claims 4-6, wherein, The electrode welding groove (53) also has a bottom wall (532), and the two side walls (531) of the groove away from the groove opening of the electrode welding groove (53) are connected to the bottom wall (532).

8. The pole (5) according to claim 7, wherein A second chamfer is provided at the connection between the side wall (531) and the bottom wall (532) of the groove. The second chamfer is a rounded chamfer with a radius ranging from 5 to 15 mm.

9. The pole (5) according to claim 7 or 8, wherein A third chamfer is provided at the connection between the sidewall (531) of the groove and the first surface (52). The third chamfer is a rounded chamfer with a radius ranging from 10 to 20 mm.

10. The pole post (5) according to any one of claims 1-9, wherein, The angle between the plane containing the sidewall (531) of the groove and the axis (55) of the pole column is angle α, which satisfies: 30°≤α≤65°.

11. The pole post (5) according to any one of claims 1-9, wherein, An extension (54) is provided on the outer peripheral surface of the body (51). The extension (54) is located close to the first surface (52) and is located on one side of the groove sidewall (531).

12. The pole (5) according to claim 11, wherein There are two sidewalls (531) in the groove, and the two sidewalls (531) are centrally symmetrically distributed along the axis (55) of the pole post. There are two extensions (54), and the two extensions (54) correspond one-to-one with the two sidewalls (531).

13. A cover plate assembly (2), comprising: Cover plate (21); And, the pole post (5) as described in any one of claims 1-12, wherein the pole post (5) passes through the cover plate (21).

14. A single-cell battery (3), comprising: The housing (31) has a receiving cavity, and one end of the housing (31) is an open end (11); An electrode assembly (32) is disposed within the receiving cavity; A tab (33) is connected at one end to the electrode assembly (32); And, as claimed in claim 13, the cover plate assembly (2) is provided on the opening end (11) of the housing (31) to close the receiving cavity; The other end of the tab (33) extends into the tab welding groove (53), and the tab (33) fits against the side wall (531) of the groove and is connected and fixed to the inner wall of the tab welding groove (53).

15. The single-cell battery (3) according to claim 14, wherein, Along the direction perpendicular to the axis (55) of the pole post, the length dimension of the pole tab welding groove (53) is L1, and the length dimension of the pole tab (33) is L2, satisfying: L1>L2.

16. The single-cell battery (3) according to claim 15, wherein, The length direction of the tab connecting groove (53) is parallel to the length direction of the cover plate assembly (2).

17. The individual cell (3) according to claim 15 or 16, wherein The inner wall includes a bottom wall (532) and a side wall (531). The bottom wall (532) is located at the bottom of the tab connecting groove (53). The side wall (531) surrounds the periphery of the bottom wall (532) and is located between the bottom wall (532) and the opening of the tab connecting groove (53). The free end of the tab (33) is welded and fixed to the bottom wall (532) and / or the side wall (531).

18. The single-cell battery according to claim 17, characterized in that, The angle between the bottom wall (532) of the groove and the axis (55) of the pole is γ, and 55°≤γ≤75°.

19. The individual cell (3) according to claim 15, wherein The inner wall of the tab connecting groove (53) is curved at the part away from the groove opening.

20. The cell of any one of claims 14 to 19, wherein, The tab connection groove (53) is filled with an adhesive protective layer (4), and a soldering area is formed at the connection between the tab (33) and the pole post (5), and the protective layer (4) covers the soldering area.

21. The cell of claim 20 wherein, The protective layer (4) fills the entire tab connection groove (53).

22. The cell of any one of claims 14 to 21, wherein, The cover plate assembly (2) further includes an insulating element (24) and a sealing element (25), which are sandwiched between the pole post (5) and the cover plate (21).

23. The single-cell battery according to claim 22, characterized in that, The pole post (5) also includes an extension (54), which is annular. One end of the inner ring of the extension (54) is connected to the end of the body (51) facing the receiving cavity, and one end of the outer ring of the extension (54) extends in a direction away from the body (51).

Citation Information

Patent Citations

  • Battery

    CN223401838U

  • Pole, cover plate assembly and single battery

    CN223598971U

  • Storage battery end cover, shell and storage battery

    CN101826602A

  • Pole piece and battery

    CN114094045A

  • Battery top cover and battery

    CN116435725A