Electrode lead member, cover assembly, secondary battery, and electronic device

JP7834708B2Active Publication Date: 2026-03-24AESC JAPAN LTD
View PDF 6 Cites 0 Cited by

Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-12-07
Publication Date
2026-03-24

AI Technical Summary

Technical Problem

The increase in size of the electrode bottom plate to accommodate direct laser welding in lithium-ion batteries results in a heavier negative electrode, reducing the mass density and affecting electrical performance.

Method used

An electrode lead member with a connecting plate featuring recesses and a cover assembly that includes a lower insulating member with projections fitting into these recesses, reducing the weight of the connection plate and ensuring proper positioning, while also providing overcurrent protection through a fuse mechanism.

Benefits of technology

The solution enhances the mass energy density of the battery by reducing the weight of the connection plate and prevents ignition or explosion due to short circuits by incorporating a fuse mechanism.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007834708000001
    Figure 0007834708000001
  • Figure 0007834708000002
    Figure 0007834708000002
  • Figure 0007834708000003
    Figure 0007834708000003
Patent Text Reader

Abstract

PURPOSE: To provide an electrode lead member, a cover assembly, a secondary battery, and an electronic device related to the battery technology field.SOLUTION: An electrode lead member includes a connection plate and an electrode terminal. The connection plate includes a terminal connection zone, a tab connection zone, and a transition connection zone for connecting the terminal connection zone and the tab connection zone. The electrode terminal is connected to the terminal connection zone. The transition connection zone is provided with at least one first recess, the first recess is recessed in the thickness direction of the connection plate, and the inner contour of the sidewall of the first recess is located inside the outer contour of the sidewall of the connection plate. This structure reduces the weight of the connection plate and improves the mass energy density of the battery.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the field of batteries, and particularly to electrode lead-out members, cover assemblies, secondary batteries, and electronic devices.

Background Art

[0002] Batteries are used in a wide range of electronic devices such as mobile phones, notebook computers, battery vehicles, electric vehicles, electric airplanes, electric ships, electric toy cars, electric toy ships, electric toy airplanes, and power tools. Currently, common batteries include nickel-cadmium batteries, nickel-metal hydride batteries, lithium-ion batteries, and secondary alkaline zinc manganese batteries. Among all these batteries, lithium-ion batteries have become the mainstream power batteries used in new energy vehicles due to advantages such as high specific energy, high specific power, long life, and low cost.

Summary of the Invention

Problems to be Solved by the Invention

[0003] In order to improve the safety performance and installation efficiency of batteries, conventional positive and negative electrode connection sheets and ultrasonic welding protection sheets are excluded from the welding of the wound cell and the cover of lithium-ion batteries. The wound cell is directly laser-welded to the electrode bottom plate via tabs, so it is necessary to increase the size of the electrode bottom plate. However, increasing the size of the electrode bottom plate makes the electrodes heavier, especially on the negative side. The negative electrode bottom plate is mainly made of copper. Copper has a high density and is heavy, resulting in a decrease in the mass density of the battery and affecting the electrical performance of the battery. Therefore, there is a need to provide an electrode lead-out member, a cover assembly, a secondary battery, and an electronic device that can solve the above problems.

Means for Solving the Problems

[0004] Taking into account the above-mentioned drawbacks found in the prior art, the present invention provides an electrode extraction member, a cover assembly, a secondary battery, and an electronic device that can solve the problem of a decrease in battery mass density caused by the heavy weight of the electrode bottom plate.

[0005] To achieve the above and other related objectives, the present invention provides an electrode lead member including a connecting plate and electrode terminals. The connecting plate includes a terminal connection zone, a tab connection zone, and a transition connection zone for connecting the terminal connection zone and the tab connection zone. The electrode terminals are connected to the terminal connection zone, where the transition connection zone is provided with at least one first recess, the at least one first recess being recessed in the thickness direction of the connecting plate, and the inner contour of the side wall of at least one first recess being located inside the outer contour of the side wall of the connecting plate.

[0006] In an electrode extraction member provided by one embodiment of the present invention, the projection of at least one first recess along the thickness direction is located outside the tab connection zone.

[0007] In an electrode extraction member provided by one embodiment of the present invention, at least one first recess is recessed in a first direction, the first direction being from one side of the connecting plate to which the electrode terminals of the connecting plate are connected to the other side of the connecting plate.

[0008] In an electrode extraction member provided by one embodiment of the present invention, at least one first recess is a through hole that penetrates the connecting plate in the thickness direction.

[0009] In an electrode extraction member provided by one embodiment of the present invention, the thickness of the connecting plate is h, and the minimum distance between the inner contour of the side wall of at least one first recess and the outer contour of the side wall of the connecting plate is D, where D satisfies 0.5h ≤ D ≤ 1.5h.

[0010] In an electrode extraction member provided by one embodiment of the present invention, the minimum distance between the inner contour of the side wall of at least one first recess and the outer contour of the side wall of the connecting plate is D, where 0 ≤ D ≤ 10 mm.

[0011] In an electrode lead member provided by one embodiment of the present invention, a second recess is provided at a position extending in a second direction of the connecting plate, the second direction being oriented from the terminal connection zone to the tab connection zone. The second recess is recessed in the thickness direction of the connecting plate, and a fuse portion is formed between the second recess and at least one first recess.

[0012] In an electrode lead member provided by one embodiment of the present invention, each transition connection zone on one side of the terminal connection zone is provided with at least one first recess. A second recess is located away from the terminal connection zone of the connecting plate between the at least one first recess on both sides. The at least one first recess has a polygonal prism structure, and the second recess has a polygonal prism structure. One side of the second recess away from the terminal connection zone penetrates one side of the connecting plate, and a fuse portion is formed at the corner vertex between the at least one first recess and the second recess.

[0013] In an electrode lead member provided by one embodiment of the present invention, at least one first recess is a through hole penetrating in the thickness direction of the connecting plate, and the second recess is a through hole penetrating in the thickness direction of the connecting plate. The length of the fuse portion is C, the minimum distance between the outer contour of at least one first recess and the outer contour of the connecting plate is D, and the width of the connecting plate in which the tab connection zone is located is A, C+D <Aである。

[0014] In an electrode extraction member provided by one embodiment of the present invention, the second recess is a through hole that penetrates the connecting plate in the thickness direction.

[0015] In an electrode lead member provided by one embodiment of the present invention, the connecting plate and the electrode terminal are integrally constructed, or the terminal connection zone is higher in the thickness direction than the transition connection zone. The electrode terminal and the connecting plate are made of different materials.

[0016] In an electrode lead member provided by one embodiment of the present invention, the material of the electrode terminal is a metal containing aluminum, the material of the connecting plate is a metal containing copper, and the electrode terminal and the terminal connection zone are connected by friction welding.

[0017] The present invention further provides a cover assembly comprising a cover body, a lower insulating member, and the electrode lead member provided by the present invention. The lower insulating member is positioned on one side of the cover body. The electrode terminals of the electrode lead member penetrate the lower insulating member and are at least partially positioned within the through-holes. At least a portion of the connecting plate of the electrode lead member abuts against one side of the lower insulating member away from the cover body.

[0018] In a cover assembly provided by one embodiment of the present invention, one side of the lower insulating member facing the connecting plate is provided with a projection that fits into at least one first recess of the electrode lead member, the projection being embedded and fitted into at least one first recess.

[0019] In a cover assembly provided by one embodiment of the present invention, each terminal connection zone on one side of the transition connection zone is provided with at least one first recess.

[0020] In a cover assembly provided by one embodiment of the present invention, the height of the projection is h1, the depth of at least one first recess is h2, the gap between the transition connection zone and the lower insulating member is h3, and h1, h2, and h3 satisfy h1 ≤ h2 + h3.

[0021] In the cover assembly provided by one embodiment of the present invention, a gap d is provided between the protrusion and the inner wall surface of at least one first recess, and the gap d satisfies d≧0.1 mm. The gap d ensures that the movement range of the lower insulating member does not exceed the cover range of the cover body.

[0022] In the cover assembly provided by one embodiment of the present invention, the protrusion of faces the cover body The side and is a groove.

[0023] In the cover assembly provided by one embodiment of the present invention, the protrusion includes a bottom portion and a side portion. The side portion is connected to the lower insulating member and extends in a direction away from the cover body, and the bottom portion is connected to one side of the side portion away from the cover body. Liquid guiding holes are provided in the bottom portion and / or the side portion.

[0024] In the cover assembly provided by one embodiment of the present invention, the cover assembly includes a first electrode lead-out member and a second electrode lead-out member. The first recess of the connection plate of the first electrode lead-out member and the first recess of the connection plate of the second electrode lead-out member are not compatible with each other.

[0025] In the cover assembly provided by one embodiment of the present invention, the first recess of the first electrode lead-out member has a first shape, the first recess of the second electrode lead-out member has a second shape, and the first shape is different from the second shape.

[0026] In the cover assembly provided by one embodiment of the present invention, the first recess of the first electrode lead-out member is disposed at the first position of the connection plate. The first recess of the second electrode lead-out member is disposed at the second position of the connection plate. The first position and the second position are located at different positions in the transition connection zone.

[0027] The present invention further provides a secondary battery including a casing, an electrode assembly, and the above cover assembly provided by the present invention. The electrode assembly is housed in the casing and includes a main body portion and a tab connected to the main body portion. The tab of the electrode assembly and the electrode lead-out member are connected in a tab connection zone, and the cover body of the cover assembly covers the opening of the casing.

[0028] The present invention further provides an electronic device including the above secondary battery.

Advantages of the Invention

[0029] In the present invention, since the electrode lead-out member includes a first recess recessed in the thickness direction on one side away from the tab connection zone of the connection plate, the thickness of the connection plate decreases in this zone. By arranging the first recess, not only the weight of the connection plate is reduced, but it can also fit with the lower insulating member in the cover assembly. In this way, positioning is achieved, and the position of the lower insulating member is prevented from shifting and affecting the assembly. By arranging a second recess recessed in the thickness direction on the connection plate, the weight of the connection plate is further reduced. Furthermore, since a fuse portion is formed between the second recess and the first recess, overcurrent protection of the connection plate is realized.

[0030] In the present invention, a protrusion that fits with the first recess is arranged on the lower insulating member of the cover assembly, and the protrusion and the first recess are embedded and fitted with each other, so the position of the lower insulating member is prevented from shifting and affecting the assembly. Furthermore, by configuring one side of the protrusion away from the connection plate into a hollow groove, the weight of the lower insulating member is reduced. By arranging a liquid guiding hole, the electrolyte flowing into the groove during liquid injection is quickly led out.

Brief Description of the Drawings

[0031] To more clearly illustrate the embodiments of the present invention or the technical solutions provided in the prior art, some accompanying drawings necessary for describing the embodiments or prior art are briefly introduced below. Clearly, the drawings in the following description represent only some embodiments of the present invention, and those skilled in the art can obtain other drawings based on these without any creative work.

[0032] [Figure 1] This is a schematic diagram of the overall structure of an electrode extraction member according to one embodiment of the present invention. [Figure 2] This is a schematic diagram of the structure of a connecting plate for an electrode extraction member according to one embodiment of the present invention. [Figure 3] This is a schematic diagram of the structure of an electrode extraction member according to one embodiment of the present invention, viewed from a different angle. [Figure 4] This is a schematic diagram of the structure of a connecting plate for an electrode extraction member according to one embodiment of the present invention. [Figure 5] This is a schematic diagram of the structure of the connecting plate of the electrode extraction member according to another embodiment of the present invention. [Figure 6] This is a schematic diagram of the structure of a cover assembly according to one embodiment of the present invention. [Figure 7] This is a schematic exploded view of a cover assembly according to one embodiment of the present invention. [Figure 8] This is a schematic diagram of the structure of the lower insulating member of a cover assembly according to one embodiment of the present invention. [Figure 9] This is a schematic diagram of a cover assembly from a different angle, according to one embodiment of the present invention. [Figure 10] This is a cross-sectional view along line AA in Figure 9. [Figure 11] This is a schematic diagram of the structure of a secondary battery according to one embodiment of the present invention. [Figure 12] This is a schematic diagram of the structure of an electronic device according to one embodiment of the present invention. [Modes for carrying out the invention]

[0033] The embodiments of the present invention will be described below through specific examples. Those skilled in the art will readily understand other advantages and effects of the present invention from the disclosure herein. Furthermore, the present invention can also be implemented or applied through different specific embodiments. The details herein can be modified or changed based on different viewpoints and applications, as long as they do not depart from the spirit of the invention. For the purposes of explanation, the embodiments and features within the embodiments described below may be combined with each other, where there is no inconsistency.

[0034] Where numerical ranges are given in embodiments, it should be understood that, unless otherwise specifically stated in the present invention, any two endpoints of each numerical range and any numerical values ​​between the two endpoints can be selected. Unless otherwise specifically defined, all technical and scientific terms used in the present invention are consistent with the description of the present invention by those skilled in the art and with prior art knowledge. Any prior art methods, apparatus, and materials similar to or equivalent to those described in embodiments of the present invention can also be used to carry out the present invention.

[0035] The drawings provided in the embodiments are merely schematic representations of the basic concepts of the present invention. Therefore, the drawings show only the components relevant to the present invention, and are not based on the number, shape, and size of components in actual implementation. In actual implementation, the types, quantities, and proportions of components can be freely changed, and the layout of components may be more complex. It should be noted that terms such as “top,” “bottom,” “left,” “right,” “center,” and “one” used herein are for illustrative purposes only and are not intended to limit the scope of the present invention. Any changes or adjustments to their relative relationships should also be considered within the scope of the present invention, provided that there is no substantial change in the technical content.

[0036] In the following description, many details are discussed in order to illustrate embodiments of the present invention in more detail. However, it is clear that embodiments of the present invention can be carried out even without these specific details. In other cases, known structures and devices are illustrated in block diagram form rather than in detail, in order to avoid obscuring embodiments of the present invention.

[0037] Referring to Figures 1 to 12, the present invention provides an electrode extraction member 140, a cover assembly 130, a secondary battery 100, and an electronic device 10. Here, the connecting plate of the electrode extraction member 140 is provided with a recess in the thickness direction, and by providing the recess, the weight of the connecting plate is reduced and the mass energy density of the battery is improved.

[0038] In the present invention, the secondary battery 100 may be a lithium-ion secondary battery, a sodium-ion secondary battery, a lithium iron phosphate secondary battery, etc., but the present invention is not limited thereto. The secondary battery 100 may be cylindrical, a rectangular parallelepiped, a prismatic shape, or other shapes, but the present invention is not limited thereto. The secondary battery 100 includes a casing 110, an electrode assembly 120, and a cover assembly 130, the electrode assembly 120 being housed within the casing 110. The electrode assembly 120 includes a main body and tabs connected to the main body. The cover assembly 130 includes a cover body 131, a lower insulating member 132, and an electrode lead member 140, the lower insulating member 132 being positioned on one side of the cover body 131 facing the electrode assembly 120. The electrode lead member 140 penetrates the lower insulating member 132, is sealed and insulated from the cover body 131, and is electrically connected to the tabs of the electrode assembly 120 to draw current from the electrode assembly 120. The cover body 131 seals and covers the opening of the casing 110, forming a closed battery environment together with the casing 110, preventing liquids and other foreign matter from affecting the normal operation of the battery.

[0039] Referring to Figure 1, the electrode lead member 140 provided by the present invention includes a connecting plate 141 and an electrode terminal 142. The electrode terminal 142 protrudes from the surface of the connecting plate 141, forming an integral structure with the connecting plate 141. The connecting plate 141 is connected to a tab of the electrode assembly 120, thereby allowing the current from the electrode assembly 120 to be directed to the electrode terminal 142. In the present invention, the original connecting piece structure is omitted, and the connecting plate 141 and the electrode terminal 142 are provided as an integral structure. In this way, the contact area between the electrode lead member 140 and the tab is increased, improving the safety performance of the battery. Furthermore, the welding process between the electrode terminal and the connecting piece is omitted, improving the efficiency of battery manufacturing.

[0040] Referring to Figures 1 and 2, in some embodiments, the connecting plate 141 has a flat structure and is made of a conductive material such as copper or aluminum. The connecting plate 141 includes a terminal connection zone 1411, a tab connection zone 1412, and a transition connection zone 1413 for connecting the terminal connection zone 1411 and the tab connection zone 1412. The terminal connection zone 1411 is configured to connect to an electrode terminal 142, and the tab connection zone 1412 is configured to connect to a tab of an electrode assembly 120. The electrode terminal 142 is located on the terminal connection zone 1411, and the electrode terminal 142 and the connecting plate 141 may be a single molded structure, or they may be two separate parts fixed together as a whole via welding such as friction welding. Furthermore, the terminal connection zone 1411 is higher than the transition connection zone 1413 in the thickness direction of the connecting plate 141. In other words, an annular boss 1422 is placed in the terminal connection zone 1411, and the electrode terminal 142 is placed on the annular boss 1422, thereby ensuring the flatness of the connection surface and the reliability of the welding. The electrode terminal 142 is a solid structure made of a conductive material, and the flow area of ​​the electrode terminal 142 is secured to ensure the stability of current transmission. The electrode terminal 142 may be configured within a columnar structure to facilitate connection with external electronic equipment or charging devices. The end face of the electrode terminal 142 opposite to the connection plate 141 is recessed to form a recess, which is used for connection to electrical equipment or charging devices. Screws may be provided on the inner wall of the recess to improve the convenience of connection. The electrode terminal 142 and the connection plate 141 can be made of a metallic material having a certain strength. Furthermore, the electrode terminal 142 may be made of a metal containing aluminum, for example, an aluminum alloy. The connection plate 141 may be made of a metal containing copper, for example, copper. When the electrode lead member 140 is a negative electrode lead member, the electrode terminal 142 and the connecting plate 141 are made of different materials; for example, the electrode terminal 142 is made of an aluminum alloy and the connecting plate 141 is made of copper. When the electrode lead member 140 is a positive electrode lead member, the electrode terminal 142 and the connecting plate 141 are made of the same material, for example, an aluminum alloy.

[0041] Referring to Figures 1 and 2, the tabs of the electrode assembly 120 are welded directly to the connecting plate 141 of the electrode lead member 140. To ensure the reliability of the weld, the connecting plate 141 needs to be made larger. However, making the connecting plate 141 larger increases its weight, especially when the connecting plate 141 is made of copper. To solve this problem, in the present invention, at least one first recess 1414 is provided in the transition connection zone 1413 of the connecting plate 141, the first recess 1414 is recessed in the thickness direction of the connecting plate 141, and the inner contour of its sidewall is located inside the outer contour of the sidewall of the connecting plate 141. To ensure the reliability of the weld between the electrode lead member 140 and the tabs, the first recess 1414 is located in the outer zone of the tab connection zone 1412. That is, the projection of the first recess 1414 along the thickness direction of the connecting plate 141 is located outside the tab connection zone 1412. In the present invention, the first recess 1414 may be formed by recessing one side of the connecting plate 141 connected to the electrode terminal 142 toward the other side of the connecting plate 141 (first direction), or by recessing the other side of the connecting plate 141 toward the one side connected to the electrode terminal 142 (direction opposite to the first direction), or by recessing from the center of the connecting plate 141 toward both sides. The direction in which the first recess 1414 is recessed is not particularly limited. Preferably, the first recess 1414 faces from the side of the connecting plate 141 to which the electrode terminal 142 is connected toward the other side of the connecting plate 141. By arranging the first recess 1413, the connecting plate 141 can be made thinner at this position, thereby reducing the weight of the connecting plate 141.

[0042] Referring to Figure 2, the first recess 1414 may be a through hole that penetrates the connecting plate 141 in the thickness direction, or it may be a groove that does not penetrate the connecting plate 141 in the thickness direction. Preferably, the first recess 1414 is a through hole that penetrates the connecting plate 141 in the thickness direction, thereby maximizing the reduction of the weight of the connecting plate 141. More preferably, the first recess 1414 is provided on both sides of the terminal connection zone 1411, thereby further reducing the weight of the connecting plate 141.

[0043] Referring to Figures 2 and 3, the relationship between the size of the first recess 1414 and the size of the connecting plate 141 can be selected according to the specific circumstances. In some embodiments, let h be the thickness of the connecting plate, and D be the minimum distance between the inner contour of the side wall of the first recess 1414 and the outer contour of the side wall of the connecting plate 141. These two sizes satisfy the following relationship: 0.5h ≤ D ≤ 1.5h, and furthermore, 0.8h ≤ D ≤ 1.2h. The value of D is in the range of 0 ≤ D ≤ 10 mm, and furthermore, 3 ≤ D ≤ 7 mm, for example, 5 mm, so that the safety and reliability of the battery are ensured.

[0044] Referring to Figures 1 to 3, in some embodiments, the connecting plate 141 is further provided with a second recess 1415 that is recessed in the thickness direction. Similarly, the second recess 1415 may be a through hole that penetrates the connecting plate 141 in the thickness direction, or it may be a groove that does not penetrate the connecting plate 141. Preferably, it is a through hole. The second recess 1415 is provided at a position where the connecting plate 141 extends in a second direction. Here, the second direction is from the terminal connection zone 1411 to the tab connection zone 1412, and one side of the second recess 1415 away from the terminal connection zone 1411 and the edge of the connecting plate 141 away from the terminal connection zone 1411 penetrate each other. That is, the second recess 1415 is formed by a recess in the edge of the connecting plate 141 away from the terminal connection zone 1411. The tab connection zone 1415 is formed between the two side edges of the second recess 1415 and the edge of the connecting plate 141. By positioning the second recess 1415, the weight of the connecting plate 141 is further reduced, improving the mass energy density of the battery.

[0045] Furthermore, the connection plate zone between the second recess 1415 and the first recess 1414 forms a fuse portion. Specifically, each transition connection zone 1413 on one side of the terminal connection zone 1411 is provided with a first recess 1414, and the second recess 1415 is disposed at a position away from the terminal connection zone 1411 of the connection plate 141 between the first recesses 1414 on both sides. The zones of the connection plate 141 on both sides of the second recess 1415 are tab connection zones 1412. The first recess 1414 has a polygonal column structure such as a square structure, and the second recess 1415 has a polygonal column structure such as a U-shaped structure. The open end of the U shape faces the edge of the connection plate 141, and the fuse portion is formed between the corner vertices of the first recess 1414 and the second recess 1415.

[0046] Referring to FIGS. 3 to 5, in one embodiment, both the first recess 1414 and the second recess 1415 are through-hole structures that penetrate the connection plate 141 in the thickness direction. Here, let the length of the fuse portion be C, the minimum distance between the outer contour of the first recess 1414 and the outer contour of the connection plate 141 be D, and the width of the connection plate 141 where the tab connection zone 1412 is located (the width between the outer contour of the side wall of the connection plate 141 and the inner contour of the side wall of the second recess 1414) be A, and C + D < A. When a short circuit occurs, after the current increases and the heat rises, the connection plate 141 melts at the fuse portion and the battery is disconnected. In this way, ignition and explosion of the battery due to a short circuit are prevented, and overcurrent protection of the connection plate 141 is realized. In other embodiments, the first recess 1414 and the second recess 1415 may be grooves that do not penetrate the connection plate 141. In this case, the cross-sectional area of the fuse portion needs to satisfy the overcurrent protection of the connection plate 141.

[0047] Referring to FIGS. 4 and 5, in one embodiment, the bottom of the first recess 1414 is higher than the upper part of the second recess 1415. Specifically, taking the center position of the terminal connection zone 1411 as the origin O, the center line passing through the origin O and extending in the length direction of the connection plate 141 as m1, and the center line passing through the origin O and extending in the width direction of the connection plate 141 as m2. Let the minimum distance from the bottom of the first recess 1414 to the center line m1 be d1, the minimum distance from the side of the first recess 1414 to the center line m2 be d3, the minimum distance from the upper part of the second recess 1415 to the center line m1 be d2, and the minimum distance from the side of the second recess 1415 to the center line m2 be d4. Then, d1 is greater than d2, and d3 is less than d4 (see FIG. 4). In another embodiment, the bottom of the first recess 1414 may be lower than the upper part of the second recess 1415, but the length C of the fuse part must be equal to the minimum distance D between the outer contour of the first recess 1414 and the outer contour of the connection plate 141. That is, d1 < d2, d3 < d4, and C = D (see FIG. 5).

[0048] Referring to FIGS. 1 to 5, in the electrode lead member 140 provided by the present invention, by arranging the first recess 1414 on the connection plate 141, the weight of the connection plate 141 is reduced, and the mass energy density of the battery is improved. Since the second recess 1415 is arranged on the connection plate 141, the weight of the connection plate 141 is further reduced. Furthermore, a fuse part is formed between the second recess 1415 and the first recess 1414. In this way, when the battery is short-circuited, the connection plate 141 melts at the fuse part, and the battery is cut off. Thereby, the ignition and explosion of the battery due to short circuit are prevented, and the overcurrent protection of the connection plate 141 is realized.

[0049] Referring to Figures 1 to 6, the cover assembly 130 provided by the present invention includes a cover body 131, a lower insulating member 132, and the electrode lead member 140 described above. The lower insulating member 132 is positioned on one side of the cover body 131 facing the electrode assembly 120, isolating the cover body 131 from the electrode assembly 120 and electrically insulating them. The cover body 141 is provided with through holes, and the electrode terminals 142 of the electrode lead member 140 penetrate the lower insulating member 132 and are at least partially positioned within the through holes of the cover body 131. At least a portion of the connecting plate 141 of the electrode lead member 140 abuts against one side of the lower insulating member 132 away from the cover body 131.

[0050] Referring to Figures 7 and 11, in some embodiments, the shape of the cover body 131 is adapted to the shape of the casing 110. For example, if the casing 110 is a rectangular casing, the cover body 131 is a matching rectangular plate structure. When the casing 110 has other shapes, the shape of the cover body 131 may also be a corresponding shape adapted to the casing 110. Selectively, the cover body 131 can be made of a material having a certain hardness and strength, such as copper, iron, aluminum, stainless steel, or aluminum alloy. In this way, the cover body 131 is less likely to deform when subjected to extrusion or impact, so the battery can have higher structural strength and improved safety performance.

[0051] Referring to Figures 7 and 8, the shape of the lower insulating member 132 matches the shape of the cover body 131. The lower insulating member 132 can have a one-piece structure or a segmented structure assembled from various parts. Since the cover body 131 is usually made of a metallic material with a certain hardness and strength, if the cover body 131 were to come into direct contact with the electrode assembly 120, a direct short circuit could occur in the electrode assembly 120. Therefore, by placing the lower insulating member 132 between the cover body 131 and the electrode assembly 120, the cover body 131 and the electrode assembly 120 can be insulated. The material of the lower insulating member 132 is generally insulating plastic.

[0052] Referring to Figures 2, 7, and 10, there is no limiting device between the lower insulating member 132 and the cover body 131, so the lower insulating member 132 may easily shift and detach from the cover body 131 during the assembly process of the cover assembly 130. This affects the assembly accuracy and assembly efficiency. In the present invention, a projection 1321 that fits into the first recess 1414 is positioned on one side of the lower insulating member 132 facing the connecting plate 141 of the electrode lead member 140. The projection 1321 is embedded and fitted into the first recess 1414 on the connecting plate 141, thereby positioning the lower insulating member 132 and preventing shifting. The shape of the projection 1321 is not particularly limited as long as its shape fits into the shape of the first recess 1414. For example, if the first recess 1414 has a rectangular structure, the projection 1321 is a fitting rectangular projection, and if the first recess 1414 has another structure, the projection 1321 is another fitting structure. It should be explained that the size of the projection 1321 must enable the positioning of the lower insulating member 132 without affecting the fit between the parts of the cover assembly 130. Therefore, the size of the projection 1321 must satisfy the following relationship: If the height of the projection 1321 is h1, the depth of the first recess 1414 is h2, and the gap between the transition connection zone 1413 and the lower insulating member 132 is h3, then h1 ≤ h2 + h3. Here, h3 is the gap generated during the actual assembly process, and preferably h3 = 0.

[0053] Referring to Figures 2 and 8, in order to achieve a better weight reduction effect for the connecting plate 141 and a better positioning effect for the lower insulating member 132, two or more first recesses 1414 are usually provided on the connecting plate 141. Correspondingly, multiple protrusions 1321 are arranged on the lower insulating member 132. To prevent the protrusions 1321 and the first recesses 1414 from becoming jammed, a clearance fit is provided between the protrusions 1321 and the first recesses 1414. That is, a certain gap d is provided between the outer contour of the protrusion 1321 and the inner wall of the first recess 1414. The minimum value of d is 0.1 mm, and the maximum value must be such that the movement range of the lower insulating member 132 does not exceed the coverage range of the cover body 131. This arrangement of gaps prevents the protrusions 1321 from becoming jammed in the first recesses 1413 during the assembly process and also limits the movement range of the lower insulating member 132, preventing it from coming off the cover body 131.

[0054] Referring to Figures 7 and 8, preferably, projection 1321 of , facing the cover body 131 The side It is provided as a groove. That is, the projection 1321 includes a bottom and a side, the side is connected to the lower insulating member 132 and extends away from the cover body 131, and the bottom is connected to one side of the side away from the cover body 131. By arranging the groove-shaped projection 1321, the weight of the lower insulating member 132 can be reduced. The projection 1321 may be injection molded integrally with the lower insulating member 132, or it may be processed after the lower insulating member 132 is formed. Furthermore, to prevent some of the electrolyte from accumulating in the groove of the projection 1321 when the battery is filled with liquid, a liquid guide hole is provided on the projection 1321 to allow the electrolyte in the groove to flow out through the liquid guide hole. The liquid guide hole may be provided at the bottom of the projection, at the side, or at both the bottom and the side.

[0055] Referring to Figures 7, 8, and 11, the lower insulating member 132 not only insulates the electrode assembly 120 from the cover body 131 but also supports the electrode assembly 120. After the electrode assembly is assembled to the casing and the cover assembly 130 is welded, the internal winding cells of the electrode assembly 120 are in a slightly compressed state. Furthermore, because it may be in a vibrating environment during loading and use, if the electrode assembly 120 is not sufficiently restrained, the lifespan of the winding cells may be affected, or short circuits may occur. Therefore, the structural design of the lower insulating member 132 also needs to ensure that the electrode assembly 120 is effectively supported and does not move up and down. For example, a support portion 1322 is provided on one side of the lower insulating member 132 away from the cover body 131 to resist the electrode assembly 120. In this way, the support strength of the lower insulating member 131 can be improved to suppress the vertical movement of the electrode assembly 120 and prevent the tabs from tearing up and down. The support portion 1322 is a structure that protrudes from the surface of the lower insulating member 132 and may be a cylinder, a prismatic column, a hexahedron, or other structure. The support portion 1322 may be provided at both ends of the lower insulating member 132, or at the center of the lower insulating member 132. Preferably, the support portion 1322 is provided at both ends and in the center of the lower insulating member 132.

[0056] Referring to Figures 1 and 7, the cover assembly 100 further includes an upper insulating member 133 and a sealing member 134. The upper insulating member 133 and the sealing member 134 isolate and insulate the electrode terminals 142 of the electrode lead member 140 from the cover body 131. The upper insulating member 133 and the sealing member 134 can be made of rubber or other insulating material. Specifically, each upper insulating member 133 is sleeved on the portion of the electrode terminals 142 that protrudes from the cover body 131 and is fixed to one side of the cover body 131 away from the lower insulating member 132. Preferably, each upper insulating member 133 fits with the electrode terminals 142 along the circumferential direction of the electrode terminals 142. For example, an annular groove 1421 is provided around the upper part of the electrode terminals 142 that protrude from the cover body 131, and a radially projecting positioning ring is provided on the inner wall of each upper insulating member 133. When each upper insulating member 133 is attached, the positioning ring is embedded in the annular groove 1421, thereby positioning the upper insulating member 133 and the electrode lead member 140. Each sealing member 134 is attached in a position close to the connecting plate 141 of the electrode terminal 142. For example, an annular boss 1422 protruding from the electrode terminal 142 is provided at the connection between the electrode terminal 142 and the connecting plate 141, and each sealing member 134 is sleeve-connected to the annular boss 1422.

[0057] Referring to Figure 7, in one embodiment, the cover assembly 130 includes two electrode lead members having opposite polarities, which are designated as a first electrode lead member 143 and a second electrode lead member 144. The first electrode lead member 143 is connected to the positive electrode tab of the electrode assembly 120, and the second electrode lead member 144 is connected to the negative electrode tab of the electrode assembly 120. The first electrode lead member 143 and the second electrode assembly 144 may be located at the same end of the battery or at different ends, specifically determined by the tabs of the electrode assembly 120. If the positive and negative electrode tabs are distributed to the same end of the electrode assembly 120, the first electrode lead member 143 and the second electrode lead member 144 are located at the same end of the battery. If the positive and negative electrode tabs are distributed to different ends of the electrode assembly, the first electrode lead member 143 and the second electrode lead member 144 are located at different ends of the battery, corresponding to the positive and negative electrode tabs. In this invention, since the positive and negative electrode tabs are distributed to the same end of the electrode assembly 120, the first electrode lead member 143 and the second electrode lead member 144 are located at the same end of the battery.

[0058] Referring specifically to Figure 7, the cover body 131 is provided with first through-holes at both ends for the electrode terminals of the first electrode lead member 143 and the second electrode lead member 144 to pass through. The lower insulating member 132 is provided with second through-holes at both ends for the electrode terminals 142 of the first electrode lead member 143 and the second electrode lead member 144 to pass through. The electrode terminals 142 of the first electrode lead member 143 and the second electrode lead member 144 pass through the second and first through-holes in sequence and are sealed, insulated, and fixed by the upper insulating member 133 on the cover body 131. The connecting plates of the first electrode lead member 143 and the second electrode lead member 144 abut against one side of the lower insulating member 132 away from the cover body 131. The lower insulating member 132 is provided with protrusions 1321 at positions corresponding to the connecting plates of the first electrode lead member 143 and the second electrode lead member 144, thereby improving the positioning effect.

[0059] Referring to Figures 2 and 7, in one embodiment, the first recesses 1414 on the connecting plate 141 of the two electrode pull-out members are configured to be incompatible in order to prevent the first electrode pull-out member 143 and the second electrode pull-out member 144 from being connected in reverse. That is, the first electrode pull-out member 143 and the second electrode pull-out member 144 can be distinguished by their shape or position because the position or shape of the first recesses 1411 on the connecting plate 141 that connect to the first electrode pull-out member 143 and the second electrode pull-out member 144 are different. Specifically, the first recess 1414 of the first electrode pull-out member 143 has a first shape, and the first recess 1414 of the second electrode pull-out member 144 has a second shape, and the first shape is configured to be different from the second shape. For example, the first shape may be a square hole and the second shape may be a long hole, or the first shape may be a through hole and the second shape may be a groove. Alternatively, the first recess 1414 of the first electrode lead member 143 may be positioned at a first position on the connecting plate 141, and the first recess 1414 of the second electrode lead member 144 may be positioned at a second position on the connecting plate 141, with the first and second positions located at different positions on the transition connection zone 1413. However, as long as the polarity of the two electrodes can be distinguished, the configuration is not particularly limited.

[0060] Referring to Figures 7 and 11, the cover assembly 130 further includes a pressure relief mechanism 135 that releases the internal pressure or temperature of the secondary battery 100 when the internal pressure or temperature of the secondary battery 100 reaches a predetermined value. Exemplarily, the pressure relief mechanism 135 is located between the first electrode lead member 143 and the second electrode lead member 144. The pressure relief mechanism 135 may be a component such as a blast prevention valve, blast prevention disc, air valve, pressure relief valve, or safety valve.

[0061] Referring to Figure 11, the casing 110 of the secondary battery 100 provided by the present invention includes an end wall and side walls positioned around the end wall, forming a stable sealing and electrical connection between the end wall and the side walls. The connection between the end wall and the side walls can be achieved by various methods such as one-piece stamping, one-piece casting, or split welding. The side walls may be formed in a square shape around the end wall, or along any other closed-loop contour that conforms to the end wall. In this embodiment, the end wall is rectangular, and the side walls are positioned circumferentially along the four sides of the end wall, with a square opening formed at one end of the side wall away from the end wall. Within the casing 110 enclosed by the end wall and side walls, a housing cavity is formed and used to house the electrode assembly 120, the electrolyte (not shown), and other necessary components of the battery. Specifically, the size of the casing 110 can be determined according to the particular size of the electrode assembly 120. The casing 110 can be made from a variety of materials, such as copper, iron, aluminum, steel, and aluminum alloys. To prevent the casing 110 from rusting during long-term use, a layer of rust-preventive material, such as metallic nickel, may be plated onto the surface of the casing 110.

[0062] Referring to Figure 11, the electrode assembly 120 is housed within the casing 110 and is a component of the secondary battery 100 in which an electrochemical reaction occurs. One or more electrode assemblies 120 may be contained within the casing 110. The electrode assembly 120 includes a body and tabs connected to the body. The electrode assembly 120 is mainly formed by winding or stacking a positive electrode sheet and a negative electrode sheet, with a separator usually provided between the positive electrode sheet and the negative electrode sheet. The positive electrode sheet includes a positive electrode current collector and a positive electrode active material, the positive electrode active material being coated onto the surface of the positive electrode current collector. The positive electrode current collector includes a coated zone coated with the active material and an uncoated zone not coated with the active material, the uncoated zone being wound up to form the positive electrode tab of the electrode assembly. The negative electrode sheet includes a negative electrode current collector and a negative electrode active material, the negative electrode active material being coated onto the surface of the negative electrode current collector. The negative electrode current collector includes a coated zone coated with an active material and an uncoated zone not coated with an active material, the uncoated zone being wound up to form the negative electrode tab of the electrode assembly. Taking a lithium-ion secondary battery as an example, the material of the positive electrode current collector may be aluminum. The positive electrode active material layer includes a positive electrode active material, which may be lithium cobalt oxide, lithium iron phosphate, ternary lithium, or lithium manganate. The material of the negative electrode current collector may be copper. The negative electrode active material layer includes a negative electrode active material, which may be carbon or silicon. The separator material may be polypropylene (PP) or polyethylene (PE), etc. To protect and insulate the cell, the electrode assembly 120 may be covered with an insulating film, which can be made of PP, PE, PET, PVC, or other polymer material. In the present invention, the electrode assembly 120 includes a first tab and a second tab facing an opening in the casing, the first tab and the second tab having opposite electrical properties; that is, one is a positive tab and the other is a negative tab.The cover assembly 130 seals and blocks the opening of the casing 110, and the first electrode lead member 143 and the second electrode lead member 144 are welded and connected to the first tab and the second tab, respectively.

[0063] Referring to Figure 12, the present invention further provides an electronic device 10. The electronic device 10 includes a work unit 11 and a battery group. The work unit 11 is electrically connected to the battery group to obtain power energy support. The battery group includes a housing and a plurality of secondary batteries 100 provided by the present invention. The plurality of secondary batteries 100 are arranged inside the housing and connected in series, parallel, or a mixed series and parallel configuration. It should be noted that, in addition to the secondary batteries 100 provided by the present invention, the battery group may also include a thermal management system for the battery group, a circuit board, and other components, but these will not be described individually here.

[0064] For example, the electronic device 10 is a vehicle. The vehicle may be a fuel vehicle, a gas vehicle, or a new energy vehicle, and the new energy vehicle may be a pure electric vehicle, a hybrid vehicle, or a range-extended vehicle, but the present invention is not limited to these. The work unit 11 is the vehicle body, and the battery group is located at the bottom of the vehicle body and provides power energy support for driving the vehicle or operating electrical components within the vehicle.

[0065] In other embodiments, the electronic equipment may include mobile phones, portable devices, laptop computers, ships, spacecraft, electric toys, and power tools. Spacecraft include airplanes, rockets, space shuttles, and other spacecraft. The work unit may be a unit component that can acquire power energy from a battery group to perform the corresponding task, such as a fan blade rotation unit or a vacuum cleaner dust collection unit. Electric toys include stationary or mobile electric toys, such as game consoles, electric toy cars, electric toy ships, and electric toy airplanes. Power tools include metal cutting power tools, grinding power tools, assembly power tools, and railway power tools, such as electric drills, electric grinders, electric wrenches, electric screwdrivers, electric hammers, impact drills, concrete vibrators, and electric planers. The electronic equipment described above is not particularly limited to the embodiments of the present invention.

[0066] In this invention, the electrode lead member has a first recess in the thickness direction in the connecting plate, thereby reducing the thickness of the connecting plate in this zone. By arranging the first recess, the weight of the connecting plate is reduced, and it can also align with a projection provided on the lower insulating member of the cover assembly. In this way, positioning is achieved, and the lower insulating member can be prevented from shifting and affecting assembly. The weight of the connecting plate can be further reduced by arranging a second recess in the thickness direction on the connecting plate. Furthermore, a fuse section is formed between the second recess and the first recess, thereby providing overcurrent protection for the connecting plate. The weight of the lower insulating member can be reduced by placing the projection on the lower insulating member of the cover assembly within a cavity structure. A liquid guide hole is provided on the projection to prevent electrolyte from accumulating in the cavity of the projection. Thus, since several practical problems in the prior art are effectively overcome, this invention exhibits high utility and practical value.

[0067] The embodiments described above are merely illustrative for illustrating the principles and effects of the present invention and do not limit the invention. Those skilled in the art can modify or change the above embodiments without departing from the spirit and scope of the invention. Accordingly, any equivalent modifications or changes made by those skilled in the art without departing from the spirit and scope of the invention shall be within the scope of protection of the present invention. [Industrial applicability]

[0068] The electrode extraction member, cover assembly, secondary battery, and electronic device of the present invention can be applied to the field of new energy vehicles. [Explanation of Symbols]

[0069] 10 Electronic equipment 11 Work Unit 100 Secondary battery 110 Casing 120 Electrode Assembly 130 Cover Assembly 131 Cover body 132 Lower insulating member 1321 Protrusion 1322 Support part 133 Upper insulating member 134 Sealing member 135 Pressure release mechanism 140 Electrode extraction member 141 Connecting Plate 1411 Terminal Connection Zone 1412 Tab Connection Zone 1413 Transition Connection Zone 1414 First recess 1415 Second recess 142 Electrode Terminals 1421 Ring groove 1422 Ring Boss 143 First electrode extraction member 144 Second electrode extraction member

Claims

1. A connection board including a terminal connection zone, a tab connection zone, and a transition connection zone for connecting the terminal connection zone and the tab connection zone, The electrode terminal connected to the terminal connection zone, The connection zone includes at least one first recess, the at least one first recess is recessed in the thickness direction of the connection plate, the inner contour of the side wall of the at least one first recess is located inside the outer contour of the side wall of the connection plate, the connection plate and the electrode terminals are integrally structured, the terminal connection zone is higher than the transition connection zone in the thickness direction, an annular boss is disposed in the terminal connection zone, and the electrode terminals are disposed on the annular boss. An electrode extraction member in which the thickness of the connecting plate is h, the minimum distance between the inner contour of the side wall of the at least one first recess and the outer contour of the side wall of the connecting plate is D, and D satisfies 0.5h ≤ D ≤ 1.5h.

2. The electrode pull-out member according to claim 1, wherein the projection of the at least one first recess along the thickness direction is located outside the tab connection zone.

3. The electrode pull-out member according to claim 1, wherein the at least one first recess is recessed in a first direction, and the first direction is directed from one side of the connecting plate to which the electrode terminals are connected to the other side of the connecting plate.

4. The electrode extraction member according to claim 1, wherein the at least one first recess is a through hole that penetrates the connecting plate in the thickness direction.

5. The electrode pull-out member according to claim 1, wherein the minimum distance between the inner contour of the side wall of the at least one first recess and the outer contour of the side wall of the connecting plate is D, and 0 ≤ D ≤ 10 mm.

6. The electrode pull-out member according to claim 1, wherein a second recess is provided at a position extending in a second direction of the connecting plate, the second direction is directed from the terminal connection zone to the tab connection zone, the second recess is recessed in the thickness direction of the connecting plate, and a fuse portion is formed between the second recess and the at least one first recess.

7. The electrode extraction member according to claim 6, wherein each of the transition connection zones on one side of the terminal connection zone is provided with at least one first recess, the second recess is positioned on the connecting plate away from the terminal connection zone between the at least one first recess on both sides, the at least one first recess has a polygonal prism structure, the second recess has a polygonal prism structure, one side of the second recess away from the terminal connection zone penetrates one side of the connecting plate, and the fuse portion is formed at the corner vertex between the at least one first recess and the second recess.

8. The electrode pull-out member according to claim 7, wherein the at least one first recess is a through hole penetrating the connecting plate in the thickness direction, the second recess is a through hole penetrating the connecting plate in the thickness direction, the length of the fuse portion is C, the minimum distance between the outer contour of the at least one first recess and the outer contour of the connecting plate is D, and the width of the connecting plate in which the tab connecting zone is located is A, and C + D < A.

9. The electrode extraction member according to claim 6, wherein the second recess is a through hole that penetrates the connecting plate in the thickness direction.

10. A cover body with through holes, A lower insulating member is disposed on one side of the cover body, The lower insulating member according to claim 1, A cover assembly comprising the electrode terminals of the electrode lead member, which penetrate the lower insulating member and are at least partially positioned within the through-hole, and at least a portion of the connecting plate of the electrode lead member, which abuts against one side of the lower insulating member away from the cover body.

11. The cover assembly according to claim 10, wherein a projection is provided on one side of the lower insulating member facing the connecting plate, which fits into the at least one first recess of the electrode lead member, and the projection is embedded in the at least one first recess.

12. The cover assembly according to claim 10, wherein each of the terminal connection zones located on one side of the transition connection zone is provided with at least one first recess.

13. The height of the protrusion is h 1 and the depth of the at least one first recess is h 2 and the gap between the transition connection zone and the lower insulating member is h 3 and h 1 , h 2 , and h 3 satisfy h 1 ≤ h 2 + h 3 The cover assembly according to claim 11

14. The cover assembly according to claim 11, wherein a gap d is provided between the projection and the inner wall surface of the at least one first recess, the gap d is d ≥ 0.1 mm, and the gap d ensures that the movement area of ​​the lower insulating member does not exceed the coverage area of ​​the cover body.

15. The cover assembly according to claim 11, wherein the side of the projection facing the cover body is a groove.

16. The cover assembly according to claim 15, wherein the projection includes a bottom portion and a side portion, the side portion being connected to the lower insulating member and extending away from the cover body, the bottom portion being connected to one side of the side portion away from the cover body, and liquid guide holes are provided in the bottom portion and / or the side portion.

17. The cover assembly according to claim 10, wherein the cover assembly includes a first electrode pull-out member and a second electrode pull-out member, and the first recess of the connecting plate of the first electrode pull-out member and the first recess of the connecting plate of the second electrode pull-out member are not interchangeable.

18. The cover assembly according to claim 17, wherein the first recess of the first electrode extraction member has a first shape, and the first recess of the second electrode extraction member has a second shape, and the first shape is different from the second shape.

19. The cover assembly according to claim 17, wherein the first recess of the first electrode pull-out member is located at a first position on the connecting plate, the first recess of the second electrode pull-out member is located at a second position on the connecting plate, and the first and second positions are located at different positions on the transition connection zone.

20. Casing and, An electrode assembly housed within the casing, including a main body and tabs connected to the main body, The cover assembly according to any one of claims 10 to 19, A secondary battery comprising the following: the tab of the electrode assembly and the electrode lead member are connected in the tab connection zone, and the cover body of the cover assembly covers the opening of the casing.

21. The electronic device comprising the secondary battery described in claim 20.

Citation Information

Patent Citations

  • Secondary battery, battery module, and device using secondary battery as power supply

    CN211629211U

  • Secondary battery

    JP2014170735A

  • Rectangular secondary battery and manufacturing method of the same

    JP2019008972A

  • Secondary battery

    JP2020167009A

  • Rechargeable battery with fuse

    KR1020140124624A