Electrochemical apparatus and electrical devices

The electrochemical device addresses electromagnetic interference in Bluetooth earphones by configuring tabs and electrodes to cancel magnetic fields, enhancing device performance.

JP7762802B2Active Publication Date: 2025-10-30NINGDE AMPEREX TECHNOLOGY LTD
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Patent Information

Application Number
JP2024525559
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-29
Publication Date
2025-10-30
Estimated Expiration
2041-10-29

AI Technical Summary

Technical Problem

Button batteries in Bluetooth earphones generate electromagnetic interference that affects sound quality, necessitating a solution to reduce magnetic field interference.

Method used

An electrochemical device with a specific angle and configuration of tabs and electrodes to cancel out magnetic fields, using a housing with a first and second tab connected to electrode sheets, where the angle between their longitudinal directions and specific geometric ratios optimize magnetic field cancellation.

Benefits of technology

The magnetic fields generated by the tabs effectively cancel each other out, reducing electromagnetic interference and improving the performance of electrical devices.

✦ Generated by Eureka AI based on patent content.

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    Figure 0007762802000005
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Abstract

The present application relates to the technical field of energy storage, and in particular discloses an electrochemical device and an electric device. The electrochemical device includes a housing, an electrode assembly accommodated in the housing, a first tab, and a second tab. The housing includes a top wall, a side wall, and a bottom wall, and a first electrode is provided on the top wall. The electrode assembly includes a first electrode sheet and a second electrode sheet. The first tab connects the first electrode sheet and the first electrode. The second tab is connected to the second electrode sheet. When viewed from a direction perpendicular to the top wall, an angle θ between the longitudinal direction of the first tab and the longitudinal direction of the second tab satisfies 0°≦θ≦60°. When the electrochemical device is in a charging / discharging state, the current direction in the first tab and the current direction in the second tab are different, and the magnetic field generated by the first tab and the magnetic field generated by the second tab are at least partially offset, and the magnetic field by the electrochemical device is weakened.
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Description

[Technical Field]

[0001] This application relates to the technical field of energy storage, and in particular to electrochemical and electrical devices. [Background technology]

[0002] Button batteries are widely used in Bluetooth earphones, but the noise generated by the button battery's own magnetic field can affect the sound quality of Bluetooth earphones and even affect the user experience. Summary of the Invention [Problem to be solved by the invention]

[0003] In view of this situation, there is a need to provide an electrochemical apparatus for reducing electromagnetic interference to electrical devices. [Means for solving the problem]

[0004] A first aspect of the present application provides an electrochemical device including a housing, an electrode assembly accommodated within the housing, a first tab, and a second tab. The housing includes a top wall, side walls, and a bottom wall, with a first electrode disposed on the top wall. The electrode assembly includes a first electrode sheet and a second electrode sheet. The first tab connects the first electrode sheet to the first electrode. The second tab is connected to the second electrode sheet. When viewed perpendicular to the top wall, the angle θ between the longitudinal direction of the first tab and the longitudinal direction of the second tab satisfies 0°≦θ≦60°. When the electrochemical device is in a charging / discharging state, the current flow directions in the first tab and the second tab are opposite, and the magnetic fields generated by the first tab and the second tab may overlap and at least partially cancel each other out, thereby weakening the magnetic field generated by the electrochemical device and reducing electromagnetic interference to the electrical device.

[0005] Furthermore, in some embodiments of the present application, the angle θ satisfies 0°≦θ≦30°. In this case, the magnetic field generated by the first tab and the magnetic field generated by the second tab cancel each other out better, and the difference in magnetic field strength at various points on the end surface is small.

[0006] In some embodiments of the present application, the first tab includes a first connection region connected to the first electrode sheet and a third connection region connected to the first electrode, and the second tab includes a second connection region connected to the second electrode sheet and a fourth connection region connected to the housing. When viewed perpendicularly to the top wall, the distance from the geometric center of the first connection region to the geometric center of the third connection region is defined as L1, and the distance from the geometric center of the second connection region to the geometric center of the fourth connection region is defined as L2. When L1 / L2 satisfies 0.18≦L1 / L2≦2.75, the magnetic fields generated by the first tab and the second tab cancel each other out more effectively, which is advantageous for reducing the magnetic field generated by the electrochemical device.

[0007] Furthermore, in some embodiments of the present application, 0.45≦L1 / L2≦2.2 is satisfied, in which case the magnetic field generated by the first tab and the magnetic field generated by the second tab cancel each other out better and the difference in magnetic field strength at various points on the end face is small.

[0008] In some embodiments of the present application, the electrochemical device further includes a first connector and a second connector provided on the outside of the housing. The first connector includes a fifth connection region connected to the first electrode. A sixth connection region is provided at one end of the first connector remote from the first electrode. The second connector includes a seventh connection region connected to the housing. An eighth connection region is provided at one end of the second connector remote from the seventh connection region. When viewed perpendicular to the top wall, a connecting line between the geometric center of the fifth connection region and the geometric center of the sixth connection region is defined as W1, a connecting line between the geometric center of the seventh connection region and the geometric center of the eighth connection region is defined as W2, and the angle between W1 and W2 is defined as β. When 0°≦β≦30° is satisfied, the magnetic field generated by the first connector and the magnetic field generated by the second connector are more effectively canceled out than when β is greater than 30°.

[0009] In some embodiments of the present application, when viewed from a direction perpendicular to the top wall, the distance between the geometric center of the fifth connection region and the geometric center of the sixth connection region is L3, and the distance between the geometric center of the seventh connection region and the geometric center of the eighth connection region is L4, and these satisfy 0.45≦L3 / L4≦2.2. Compared with other values ​​of L3 / L4, when 0.45≦L3 / L4≦2.2 is satisfied, the cancellation effect of the magnetic field generated by the first connector and the magnetic field generated by the second connector is ideal, which is advantageous for reducing the difference in magnetic field strength at various points on the end face of the electrochemical device.

[0010] In some embodiments of the present application, the electrode assembly has a wound structure. The first electrode sheet includes a first active material layer, the first active material layer including a first end, the first end being located at the winding start end of the wound structure. The second electrode sheet includes a second active material layer, the second active material layer including a second end, the second end being located at the winding start end of the wound structure. The first tab includes a first connection region connected to the first electrode sheet. The second tab includes a second connection region connected to the second electrode sheet. Let D1 be the distance between the geometric center of the first connection region and the first end along the longitudinal direction of the first electrode sheet. Let D2 be the distance between the geometric center of the second connection region and the second end along the longitudinal direction of the second electrode sheet, and satisfy the relationship 0.5≦D1 / D2≦2. Compared with other values ​​of D1 / D2, when the relationship 0.5≦D1 / D2≦2 is satisfied, the magnetic field generated by the first electrode sheet and the magnetic field generated by the second electrode sheet are effectively canceled out, which is advantageous for weakening the magnetic field generated by the electrochemical device.

[0011] Furthermore, in some embodiments of the present application, 0.9≦D1 / D2≦1.1 is satisfied, in which case the canceling effect of the magnetic field from the first electrode sheet and the magnetic field from the second electrode sheet is more favorable, and the difference in magnetic field strength at various points on the end surface is small.

[0012] In some embodiments of the present application, at least one of the following conditions (a) to (d) is satisfied. (a) The first tab and the second tab are located on opposite sides of the electrode assembly. (b) The top wall has opposing first and second surfaces, and a through-hole penetrating the first and second surfaces is provided in the top wall, and at least a portion of the first electrode is provided in the through-hole. (c) An insulating member is provided between the top wall and the first electrode. (d) the housing comprises a metal material;

[0013] A second aspect of the present application provides an electric device including a device body and the electrochemical device according to any one of the above embodiments, wherein the electrochemical device weakens the magnetic field generated by the device itself, reduces the effect of the self-magnetic field on the electric device, and improves the performance of the electric device. [Brief explanation of the drawings]

[0014] [Figure 1] 1 is a first perspective view of an electrochemical device according to an embodiment of the present application. [Figure 2] FIG. 2 is a second perspective view of an electrochemical device according to an embodiment of the present application. [Figure 3] FIG. 2 is a partial cross-sectional view of the electrochemical device in FIG. [Figure 4] FIG. 2 is a first perspective view of an electrochemical device according to another embodiment of the present application. [Figure 5] FIG. 2 is a second perspective view of an electrochemical device according to another embodiment of the present application. [Figure 6] FIG. 5 is a partial cross-sectional view of the electrochemical device in FIG. [Figure 7] FIG. 4 is a structural schematic diagram of a first electrode according to another embodiment of the present application. [Figure 8] FIG. 10 is a first schematic diagram of an electrode assembly, a first tab, and a second tab according to another embodiment of the present application. [Figure 9] FIG. 10 is a second schematic diagram of an electrode assembly, a first tab, and a second tab according to another embodiment of the present application. [Figure 10] FIG. 10 is a third schematic diagram of an electrode assembly, a first tab, and a second tab in yet another embodiment of the present application. [Figure 11] FIG. 10 is a fourth schematic diagram of an electrode assembly, a first tab, and a second tab in yet another embodiment of the present application. [Figure 12] FIG. 5 is a fifth schematic diagram of an electrode assembly, a first tab, and a second tab in yet another embodiment of the present application. [Figure 13] FIG. 6 is a sixth schematic diagram of an electrode assembly, a first tab, and a second tab in yet another embodiment of the present application. [Figure 14] FIG. 10 is a third perspective view of an electrochemical device according to yet another embodiment of the present application. [Figure 15] FIG. 1 is a curve diagram showing the relationship between magnetic flux density and θ in Test 1 of the present application. [Figure 16] FIG. 1 is a configuration diagram of an electrical device according to an embodiment of the present application. DETAILED DESCRIPTION OF THE INVENTION

[0015] The present invention will be described in detail in the following specific embodiments based on the above-mentioned drawings.

[0016] Hereinafter, technical aspects of the embodiments of the present application will be described with reference to the drawings of the embodiments of the present application, but obviously, the described embodiments are only some of the embodiments of the present application, and not all of the embodiments.

[0017] It should be noted that when a component is considered to be "connected" to another component, it may be directly connected to the other component or there may also be a centrally located component. Also, when a component is considered to be "mounted" to another component, it may be directly mounted to the other component or there may also be a centrally located component.

[0018] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art. The terms used in the specification of the present application are for the purpose of describing specific embodiments only and are not intended to be limiting of the present application.

[0019] An embodiment of the present application provides an electrochemical device including a housing, an electrode assembly accommodated within the housing, a first tab, and a second tab. The housing includes a top wall, side walls, and a bottom wall, with a first electrode disposed on the top wall. The electrode assembly includes a first electrode sheet and a second electrode sheet. The first tab connects the first electrode sheet to the first electrode. The second tab is connected to the second electrode sheet. When viewed perpendicular to the top wall, the angle θ between the longitudinal direction of the first tab and the longitudinal direction of the second tab satisfies 0°≦θ≦60°. When the electrochemical device is in a charging / discharging state, the current flow directions in the first tab and the second tab are opposite, and the magnetic fields generated by the first tab and the second tab may overlap and at least partially cancel each other out, thereby weakening the magnetic field generated by the electrochemical device.

[0020] For illustrative purposes, the electrochemical device is further illustrated as being positioned on a horizontal surface, with the bottom wall facing downwards and the top wall facing upwards.

[0021] The embodiments of the present invention will be further described below with reference to the drawings.

[0022] 1, 2, and 3, an electrochemical device 100 according to an embodiment of the present application includes a housing 1, an electrode assembly 2, a first tab 3, and a second tab 4. The electrode assembly 2, the first tab 3, and the second tab 4 are provided inside the housing 1, and the electrode assembly 2 connects the first tab 3 and the second tab 4.

[0023] The housing 1 includes a top wall 11, a side wall 12, and a bottom wall 13. The top wall 11, the side wall 12, and the bottom wall 13 surround and define a receiving cavity 14. The electrode assembly 2, the first tab 3, and the second tab 4 are disposed within the receiving cavity 14.

[0024] The top wall 11 is provided with a first electrode 111. The first electrode 111 is connected to the first tab 3.

[0025] In one embodiment, the top wall 11 is provided with a through hole 114. The top wall 11 also includes a first surface 112 and a second surface 113 located opposite each other. The through hole 114 passes through the first surface 112 and the second surface 113. The first surface 112 is located on a side of the top wall 11 facing the receiving cavity 14. The second surface 113 is located on a side of the top wall 11 facing away from the receiving cavity 14.

[0026] At least a portion of the first electrode 111 is disposed within the through-hole 114. In one embodiment, the electrochemical device 100 further includes an insulating member 7 disposed between the top wall 11 and the first electrode 111. The insulating member 7 connects the top wall 11 and the first electrode 111 to insulate the top wall 11 from the first electrode 111, thereby reducing the risk of the electrochemical device 100 being short-circuited.

[0027] In one embodiment, the material of the first electrode 111 includes, but is not limited to, aluminum or copper metal.

[0028] In one embodiment, the bottom wall 13 includes a conductive portion 131 that is connected to the second tab 4. In one embodiment, the conductive portion 131 includes a metallic material.

[0029] 4, 5, and 6, in one embodiment, the electrochemical device 100 further includes a first connector 5 and a second connector 6 provided outside the housing 1. The first connector 5 is connected to the first electrode 111, thereby electrically connecting the first connector 5 and the first tab 3. The second connector 6 is connected to the conductive portion 131, thereby electrically connecting the second connector 6 and the second tab 4. The first connector 5 and the second connector 6 are connected to an external electrical device, making it easy for the electrochemical device 100 to supply power to the electrical device.

[0030] In one embodiment, the first connector member 5 is made of a metal material. In one embodiment, the second connector member 6 is made of a metal material.

[0031] In another embodiment, the first electrode 111 is provided inside the through-hole 114 (not shown), and the insulating member 7 is provided between the first electrode 111 and the inner wall of the through-hole 114.

[0032] 3 and 7, the first electrode 111 includes a first portion 1111 and a second portion 1112. The first portion 1111 has a third surface 1111a, and the second portion 1112 protrudes from the third surface 1111a. The first portion 1111 is disposed within the accommodating cavity 14. The second portion 1112 is located within the through-hole 114.

[0033] For ease of understanding and explanation, the direction perpendicular to the top wall 11 will be referred to as the third direction Z. An example will be further described in which, when observed along the third direction Z, the longitudinal direction of the first tab 3 is the first direction X and the longitudinal direction of the second tab 4 is the second direction Y.

[0034] In one embodiment, the insulating member 7 is an annular structure and the second portion 1112 of the first electrode 111 passes through the annular structure.

[0035] In one embodiment, the insulating member 7 includes, but is not limited to, a sealant.

[0036] 8 and 9, the electrode assembly 2 includes a first electrode sheet 21, a second electrode sheet 22, and a separation film 23. The separation film 23 is provided between the first electrode sheet 21 and the second electrode sheet 22. In one embodiment, the first electrode sheet 21, the separation film 23, and the second electrode sheet 22 are arranged in a wound state.

[0037] One of the first electrode sheet 21 and the second electrode sheet 22 is a positive electrode sheet, and the other of the first electrode sheet 21 and the second electrode sheet 22 is a negative electrode sheet.

[0038] One of the first tab 3 and the second tab 4 is a positive electrode tab, and the other of the first tab 3 and the second tab 4 is a negative electrode tab.

[0039] The first electrode sheet 21 includes a first active material layer 211. The first tab 3 has a first connection region 31. The first tab 3 is connected to the first electrode sheet 21 at the first connection region 31.

[0040] The second electrode sheet 22 includes a second active material layer 221. The second tab 4 has a second connection region 41. The second tab 4 is connected to the second electrode sheet 22 at the second connection region 41.

[0041] In one embodiment, the first tab 3 is located on one side of the electrode assembly 2 and the second tab 4 is located on the other side of the electrode assembly 2. In other examples, the first tab 3 and the second tab 4 may be located on the same side of the electrode assembly 2 (not shown).

[0042] 3, 8, and 9 together. The first tab 3 has a third connection region 32. The first tab 3 is connected to the first electrode 111 at the third connection region 32. The second tab 4 has a fourth connection region 42. The second tab 4 is connected to the bottom wall 13 at the fourth connection region 42.

[0043] As shown in Figures 8, 9 and 10, in one embodiment, when viewed along the third direction Z, the angle between the first direction X and the second direction Y is θ, where 0°≦θ≦60°.

[0044] In the present application, the first direction X (i.e., the longitudinal direction of the first tab 3) is the connection direction between the geometric center of the third connection region 32 and the geometric center of the first connection region 31 when viewed along the third direction Z. The second direction Y (i.e., the longitudinal direction of the second tab 4) is the connection direction between the geometric center of the fourth connection region 42 and the geometric center of the second connection region 41 when viewed along the third direction Z. θ is the angle between a ray from the intersection point between the first direction X and the second direction Y to the geometric center of the first connection region 31 and a ray from the intersection point to the geometric center of the second connection region 41 when observed along the third direction Z.

[0045] When the electrochemical device 100 is in a charging / discharging state, the magnetic field generated by the first tab 3 and the magnetic field generated by the second tab 4 are at least partially canceled out, thereby weakening the magnetic field generated by the electrochemical device 100 and further reducing the impact of the magnetic field generated by the electrochemical device 100 on the electrical device.

[0046] Compared to when θ>60°, when 0°≦θ≦60°, the effect of the magnetic field generated by the first tab 3 and the magnetic field generated by the second tab 4 canceling out is more favorable, and the magnetic field from the electrochemical device 100 has less impact on the electrical device.

[0047] 11, 0°≦θ≦30° is also acceptable. Compared to 30°<θ≦60°, when 0°≦θ≦30°, the effect of the magnetic field generated by the first tab 3 and the magnetic field generated by the second tab 4 canceling out is more favorable, and the difference in magnetic field strength at various points on the end face of the electrochemical device 100 is smaller.

[0048] As shown in Figures 12 and 13, when viewed along the third direction Z, the distance from the geometric center of the first connection region 31 to the geometric center of the third connection region 32 is L1, and the distance from the geometric center of the second connection region 41 to the geometric center of the fourth connection region 42 is L2.

[0049] Optionally, 0.18≦L1 / L2≦2.75 may be satisfied. When 0.18≦L1 / L2≦2.75 is satisfied, the offsetting effect of the magnetic field generated by the first tab 3 and the magnetic field generated by the second tab 4 is more favorable than when L1 / L2 has other values, and the magnetic field generated by the electrochemical device 100 has less of an effect on the electrical device.

[0050] Optionally, 0.45≦L1 / L2≦2.2 may be satisfied. In this case, the canceling effect between the magnetic field generated by the first tab 3 and the magnetic field generated by the second tab 4 is more favorable, and the difference in magnetic field strength at various points on the end face of the electrochemical device 100 is small.

[0051] 8, 9, 12, and 13, the electrode assembly 2 has a wound structure. In one embodiment, the first active material layer 211 includes a first end 2111 provided at the winding start end of the wound structure. The second active material layer 221 includes a second end 2211 provided at the winding start end of the wound structure.

[0052] The distance from the geometric center of the first connection region 31 to the first end 2111 along the longitudinal direction of the first tab 21 is defined as D. The distance from the geometric center of the second connection region 41 to the second end 2211 along the longitudinal direction of the second electrode sheet 22 is defined as D2.

[0053] Optionally, 0.5≦D1 / D2≦2 may be satisfied. When 0.5≦D1 / D2≦2 is satisfied, the effect of the magnetic field due to the first electrode sheet 21 and the magnetic field due to the second electrode sheet 22 canceling out is more favorable than when D1 / D2 has other values, and the magnetic field due to the electrochemical device 100 has less effect on the electric devices.

[0054] Optionally, the relationship 0.9≦D1 / D2≦1.1 may be satisfied. In this case, the effect of the magnetic field generated by the first electrode sheet 21 and the magnetic field generated by the second electrode sheet 22 canceling out is more preferable, and the difference in magnetic field strength at various points on the end face of the electrochemical device 100 is small.

[0055] 4, 5, and 14, the first connector 5 includes a fifth connection region 51 and a sixth connection region 52. The fifth connection region 51 is connected to the first electrode 111, and the sixth connection region 52 is located at one end of the first connector 5 remote from the first electrode 111. The second connector 6 includes a seventh connection region 61 and an eighth connection region 62. The seventh connection region 61 is connected to the bottom wall 13, and the eighth connection region 62 is located at one end of the second connector 6 remote from the seventh connection region 61.

[0056] When viewed along the third direction Z, the connecting line between the geometric center of the fifth connection region 51 and the geometric center of the sixth connection region 52 is denoted by W1, the connecting line between the geometric center of the seventh connection region 61 and the geometric center of the eighth connection region 62 is denoted by W2, and the angle between W1 and W2 is denoted by β. In this application, β is the angle between a ray from the intersection point between W1 and W2 to the geometric center of the sixth connection region 52 and a ray from the intersection point to the geometric center of the eighth connection region 62 when viewed along the third direction Z.

[0057] Optionally, 0°≦β≦30° may be satisfied. When 0°≦β≦30° is satisfied, the effect of the magnetic field generated by the first connector 5 and the magnetic field generated by the second connector 6 canceling out is more favorable than when β>30°, and the magnetic field generated by the electrochemical device 100 has less of an effect on the electrical devices.

[0058] When viewed along the third direction Z, the distance between the geometric center of the fifth connection region 51 and the geometric center of the sixth connection region 52 is L3, and the distance between the geometric center of the seventh connection region 61 and the geometric center of the eighth connection region 62 is L4.

[0059] Optionally, 0.45≦L3 / L4≦2.2 may be satisfied. Compared with other values ​​of L3 / L4, the effect of the magnetic field generated by the first connector 5 and the magnetic field generated by the second connector 6 canceling out is favorable, and the magnetic field generated by the electrochemical device 100 has a small effect on the electrical device.

[0060] Optionally, 0.9≦L3 / L4≦1.1 may be satisfied. In this case, the canceling effect between the magnetic field generated by the first connector 5 and the magnetic field generated by the second connector 6 is more favorable, and the difference in magnetic field strength at various points on the end face of the electrochemical device 100 is small.

[0061] In order to verify the effect of the present invention in attenuating the magnetic field generated by the electrochemical device 100, the following multiple comparative tests were carried out.

[0062] <Test 1> The first tab is the positive electrode tab, the second tab is the negative electrode tab, the value of L1 / L2 is set to 0.9335, the magnitude of the angle θ is changed, and the magnetic flux density B1 on the top wall 11 side and the magnetic flux density B2 on the bottom wall 13 side are recorded.

[0063] In this application, magnetic flux density, also referred to as magnetic induction strength, can represent the strength of a magnetic field. A larger magnetic flux density value indicates a stronger magnetic field and a smaller attenuation effect on the magnetic field generated by the electrochemical device 100. A smaller magnetic flux density value indicates a weaker magnetic field and a larger attenuation effect on the magnetic field generated by the electrochemical device 100.

[0064] [Table 1]

[0065] The data in the table above is plotted on a curve as shown in FIG.

[0066] From Figure 15 and Table 1, when θ is 0°, the magnetic flux density B1 is 4.56 × 10 -6 T, and the magnetic flux density B2 is 3.39 × 10 -6 T. When θ is 30°, the magnetic flux density B1 is 5.1×10 -6 T (approximately 1.12 times when θ is 0°), and the magnetic flux density B2 is 4.12 × 10 -6 T (approximately 1.22 times when θ is 0°). When θ is 60°, the magnetic flux density B1 is 6.21×10 -6 T (approximately 1.36 times when θ is 0°), and the magnetic flux density B2 is 4.85 × 10 -6 T (approximately 1.43 times when θ is 0°).

[0067] When the angle θ satisfies 0°≦θ≦30°, the current direction in the first tab 3 and the current direction in the second tab 4 tend to be opposite, the magnetic field generated by the first tab 3 and the magnetic field generated by the second tab 4 cancel each other out more favorably, and the electromagnetic characteristics of the electrochemical device 100 are good. Furthermore, as can be seen from FIG. 15 , when the angle θ changes within the range of 0° to 30°, the gradients of the magnetic flux densities B1 and B2 are both small. That is, within this range, the difference in the canceling effect of the magnetic fields between the first tab 3 and the second tab 4 is small.

[0068] <Test 2> The first tab is set as the positive electrode tab, the second tab is set as the negative electrode tab, the angle θ is set to 0°, the value of D1 / D2 is set to 0.9418, and the value of L1 / L2 is changed, and the magnetic flux density B1 on the top wall 11 side and the magnetic flux density B2 on the bottom wall 13 side are recorded.

[0069] [Table 2]

[0070] As can be seen from Table 2, when L1 / L2 is 1, the magnetic flux density B1 is approximately 4.56×10 -6 T, and the magnetic flux density B2 is approximately 3.43 × 10 -6 It's T.

[0071] When L1 / L2 is 0.45, the magnetic flux density B1 is approximately 7.76×10 -6 T (approximately 1.70 times when L1 / L2 is 1), and the magnetic flux density B2 is approximately 5.70 x 10 -6 T (approximately 1.66 times when L1 / L2 is 1).

[0072] When L1 / L2 is 1.57, the magnetic flux density B1 is approximately 5.60×10 -6 T (approximately 1.23 times when L1 / L2 is 1), and the magnetic flux density B2 is approximately 6.32 × 10 -6 T (approximately 1.84 times when L1 / L2 is 1).

[0073] When L1 / L2 is 1.83, the magnetic flux density B1 is approximately 5.90×10 -6T (approximately 1.29 times when L1 / L2 is 1), and the magnetic flux density B2 is approximately 7.03 × 10 -6 T (approximately 2.05 times when L1 / L2 is 1).

[0074] When L1 / L2 is 2.20, the magnetic flux density B1 is approximately 6.61×10 -6 T (approximately 1.45 times when L1 / L2 is 1), and the magnetic flux density B2 is approximately 7.80 × 10 -6 T (approximately 2.27 times when L1 / L2 is 1).

[0075] Therefore, when 0.45≦L1 / L2≦2.2 is satisfied, the offset effect of the magnetic field generated by the first tab 3 and the magnetic field generated by the second tab 4 is favorable, and the magnetic flux density on both the top wall 11 side and the bottom wall 13 side is 8×10 -6 L1 / L2 is less than T, and the electromagnetic properties of the electrochemical device 100 are good. In addition, the magnetic fields generated by the first tab 3 and the second tab 4 are more uniformly canceled out, thereby reducing the difference in magnetic field strength at various locations on the end surface of the electrochemical device. Furthermore, when 0.45≦L1 / L2≦1.57 is satisfied, the range of change in magnetic flux density between the top wall 11 and the bottom wall 13 is smaller than the magnetic flux density when L1 / L2 is 1, ensuring that the electrochemical device as a whole has good electromagnetic properties.

[0076] 16 , an embodiment of the present application further provides an electric device 200. The electric device 200 includes a device body 210 and the electrochemical device 100 described in any of the above examples. The electrochemical device 100 is provided in the device body 210. The electrochemical device 100 weakens the magnetic field generated by itself, has better electromagnetic properties, and can weaken the influence of its own magnetic field on the electric device 200.

[0077] Furthermore, those skilled in the art may make other modifications within the spirit of the present application, and of course, all of these modifications made based on the spirit of the present application should be included within the scope of the disclosure of the present application. [Explanation of symbols]

[0078] 100 Electrochemical Device 1 shell 11 Ceiling Wall 111 1st electrode 1111 Part 1 1111a 3rd surface 1112 Part 2 112 1st surface 113 Second surface 114 Through hole 12 Side wall 13 Bottom wall 131 Conductive part 14. Containment cavity 2. Electrode Assembly 21 First electrode sheet 211 First active material layer 2111 First end 22 Second electrode sheet 221 Second active material layer 2211 Second end 23 Separate film 3 First Tab 31 First connection area 32 Third Connection Area 4 Second Tab 41 Second connection area 42 Fourth Connection Area 5 First Connector 51 5th Connection Area 52 Sixth Connection Area 6 Second Connector 61 Seventh Connection Area 62 8th Connection Area 7. Insulators 200 Electrical Devices 210 Device body L1: Distance from the geometric center of the first connected region to the geometric center of the third connected region L2: Distance from the geometric center of the second connected region to the geometric center of the fourth connected region L3: Distance from the geometric center of the 5th connected region to the geometric center of the 6th connected region L4 Distance from the geometric center of the 7th connected region to the geometric center of the 8th connected region X 1st direction Y Second direction Z, direction 3

Claims

1. 1. An electrochemical device comprising: a housing including a top wall, a side wall, and a bottom wall, the top wall having a first electrode disposed thereon; an electrode assembly contained within the housing and including a first electrode sheet and a second electrode sheet; a first tab connecting the first electrode sheet and the first electrode; a second tab connected to the second electrode sheet; When viewed from a direction perpendicular to the top wall, an angle between the longitudinal direction of the first tab and the longitudinal direction of the second tab is defined as θ, and the angle satisfies 0°≦θ≦60°; the electrode assembly has a winding structure; the first electrode sheet includes a first active material layer, the first active material layer includes a first end portion, and the first end portion is provided at a winding start end of the winding structure; the second electrode sheet includes a second active material layer, the second active material layer includes a second end portion, and the second end portion is provided at a winding start end of the winding structure; the first tab includes a first connection region connected to the first electrode sheet, the first connection region being located on a winding outer side of the winding structure than the first active material layer; the second tab includes a second connection region connected to the second electrode sheet, the second connection region being located on a winding outer side of the winding structure than the second active material layer; a distance D1 between the geometric center of the first connection region and the first end along the longitudinal direction of the first electrode sheet; When a distance D2 is defined as a distance between the geometric center of the second connection region and the second end portion along the longitudinal direction of the second electrode sheet, 0.9≦D1 / D2≦1.1 is satisfied; The electrochemical device, wherein the first tab and the second tab are located on opposite sides of the electrode assembly.

2. 2. The electrochemical device according to claim 1, wherein 0°≦θ≦30°.

3. the first tab includes a first connection region connected to the first electrode sheet and a third connection region connected to the first electrode; the second tab includes a second connection region connected to the second electrode sheet and a fourth connection region connected to the housing; 2. The electrochemical device according to claim 1, wherein, when viewed from a direction perpendicular to the top wall, the distance from the geometric center of the first connection region to the geometric center of the third connection region is defined as L1, and the distance from the geometric center of the second connection region to the geometric center of the fourth connection region is defined as L2, the relationship 0.18≦L1 / L2≦2.75 is satisfied.

4. 4. The electrochemical device according to claim 3, wherein 0.45≦L1 / L2≦2.2 is satisfied.

5. The device further includes a first connector and a second connector provided on the outside of the housing, the first connector includes a fifth connection region connected to the first electrode, and a sixth connection region is provided at one end of the first connector remote from the first electrode; the second connector includes a seventh connection region connected to the housing, and an eighth connection region is provided at one end of the second connector remote from the seventh connection region; 2. The electrochemical device according to claim 1, wherein, when viewed from a direction perpendicular to the top wall, a connecting line between the geometric center of the fifth connection region and the geometric center of the sixth connection region is defined as W1, a connecting line between the geometric center of the seventh connection region and the geometric center of the eighth connection region is defined as W2, and an angle between W1 and W2 is defined as β, the angle satisfies 0°≦β≦30°.

6. 6. The electrochemical device according to claim 5, wherein, when viewed from a direction perpendicular to the top wall, the distance between the geometric center of the fifth connection region and the geometric center of the sixth connection region is defined as L3, and the distance between the geometric center of the seventh connection region and the geometric center of the eighth connection region is defined as L4, the relationship 0.45≦L3 / L4≦2.2 is satisfied.

7. 2. The electrochemical device according to claim 1, wherein at least one of the following conditions is satisfied: (a) The top wall has a first surface and a second surface facing each other, the top wall is provided with a through-hole penetrating the first surface and the second surface, and the first electrode is provided in the through-hole. (b) An insulating member is provided between the top wall and the first electrode. (c) the housing comprises a metallic material.

8. An electric device comprising the electrochemical apparatus according to any one of claims 1 to 7.

Citation Information

Patent Citations

  • Secondary battery and method for manufacturing same

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