ELECTRODE ASSEMBLY AND BATTERY
20230076412 · 2023-03-09
Assignee
Inventors
Cpc classification
H01M10/0587
ELECTRICITY
Y02P70/50
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M50/536
ELECTRICITY
Y02E60/10
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
H01M2004/021
ELECTRICITY
H01M50/547
ELECTRICITY
International classification
H01M50/538
ELECTRICITY
Abstract
An electrode assembly includes a first electrode plate, a second electrode plate, and a separator. The electrode assembly is formed by winding the first electrode plate, the separator, and the second electrode plate. The electrode assembly further includes a first tab, a second tab, and a third tab. The first tab is disposed on the first electrode plate. The third tab and the second tab are disposed on the second electrode plate. In a thickness direction of the electrode assembly projections of the first tab, the second tab, and the third tab do not overlap. The electrode assembly is provided with a multi-tab structure, and uses a plurality of parallel-connected tabs to shunt a current to achieve purposes of enhancing a curent-carrying capacity of a battery and reducing a temperature rise. This application further provides a battery containing the electrode assemby.
Claims
1. An electrode assembly, comprising: a first electrode plate; a second electrode plate, wherein a polarity of the second electrode plate is opposite to a polarity of the first electrode plate; and a separator disposed between the first electrode plate and the second electrode plate; the electrode assembly is formed by winding the first electrode plate, the separator, and the second electrode plate; wherein the electrode assembly further comprises: a first tab disposed on the first electrode plate: a second tab disposed on the second electrode plate; and a third tab disposed on the second electrode plate; wherein, in a thickness direction of the electrode assembly, a projections of the first tab, a projection of the second tab, and a projection of the third tab on a projection plane perpendicular to the thickness direction of the electrode assembly do not overlap.
2. The electrode assembly according to claim 1, wherein the projection of the first tab on the projection plane is located between the projection of the second tab and the projection of the third tab.
3. The electrode assembly according to claim 1, wherein the first electrode plate comprises a first coating portion and a first empty foil portion, and the second electrode plate comprises a second coating portion and a second empty foil portion, wherein the first coating portion is formed by coating a surface of a first current collector with a first active layer, and the second coating portion is formed by coating a surface of a second current collector with a second active layer.
4. The electrode assembly according to claim 3, wherein a first groove is provided on the active layer on the first coating portion, and the first tab is disposed in the first groove or, the first tab is disposed on the first empty foil portion.
5. The electrode assembly according to claim 4, wherein, in a length direction of the first electrode plate, a distance between the first groove and an end of the first electrode plate is ½-⅓ of a total length of the first electrode plate.
6. (canceled)
7. The electrode assembly according to claim 3, wherein a second groove is provided on the second coating portion, the second tab is disposed in the second groove, and at least two lateral edges of the second groove contact the active layer on the second coating portion.
8. The electrode assembly according to claim 7, wherein the third tab is disposed on the second empty foil portion.
9. The electrode assembly according to claim 7, wherein a third groove is provided on the second coating portion, and the third tab is disposed in the third groove.
10. The electrode assembly according to claim 3, wherein the second empty foil portion comprises a first empty foil region and a second empty foil region, the first empty foil region is connected to a first end of the second coating portion, the second empty foil region is connected to a second end of the second coating portion, and the second tab and the third tab are disposed in the first empty foil region and the second empty foil region respectively.
11. The electrode assembly according to claim 1, wherein, in the thickness direction of the electrode assembly, the first tab and the third tab are interspaced with at least one layer of first electrode plate or one layer of second electrode plate.
12. The electrode assembly according to claim 1, wherein the first tab comprises a connecting portion and a protruding portion, the connecting portion connects the first electrode plate, and the protruding portion extends out of the electrode assembly.
13. The electrode assembly according to claim 12, wherein the electrode assembly further comprises a first insulator, and the first insulator overlays the connecting portion.
14. The electrode assembly according to claim 11, wherein the electrode assembly further comprises a second insulator, a winding initiation end of the second electrode plate comprises a cut portion, and the second insulator overlays the cut portion.
15. The electrode assembly according to claim 1, wherein the first tab extends out of a first end of the electrode assembly, and the second tab and the third tab extend out of a second end of the electrode assembly.
16. The electrode assembly according to claim 1, wherein the second tab and the third tab are integrally formed, the second tab extends out of a first end of the electrode assembly, and the third tab extends out of a second end of the electrode assembly.
17. The electrode assembly according to claim 1, wherein the electrode assembly further comprises a fourth tab, the fourth tab is disposed on the first electrode plate or the second electrode plate; and, in the thickness direction of the electrode assembly, a projection of the fourth tab on the projection plane does not overlap the projections of the first tab, the second tab, and the third tab.
18. The electrode assembly according to claim 1, wherein at least two electrical connection portions are disposed at an end at which the first tab extends out of the electrode assembly, and the at least two electrical connection portions are interspaced and are configured to connect to an external circuit.
19. The electrode assembly according to claim 1, wherein a surface of the first tab or a surface of the third tab is plated with a metal material capable of being soldered and/or brazed.
20. A battery, comprising an electrode assembly and a housing accommodating the electrode assembly, an electrode assembly comprising: a first electrode plate: a second electrode plate, wherein a polarity of the second electrode olate is opposite to a polarity of the first electrode plate; and a separator disposed between the first electrode plate and the second electrode plate; the electrode assembly is formed by winding the first electrode plate, the separator, and the second electrode plate; wherein the electrode assembly further comprises; a first tab disposed on the first electrode plate; a second tab disposed on the second electrode plate; and a third tab disposed on the second electrode plate; wherein in a thickness direction of the electrode assembly, a projection of the first tab, a projection of the second tab, and a projection of the third tab on a projection plane perpendicular to the thickness direction of the electrode assembly do not overlap.
21. The battery according to claim 20, wherein the battery comprises a plurality of electrode terminals disposed on an outer surface of the housing, and each electrode terminal is electrically connected to the first tab, the second tab, and the third tab separately.
Description
BRIEF DESCRIPTION OF DRAWINGS
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REFERENCE NUMERALS
[0050] Electrode assembly 100 [0051] First end 101 [0052] Second end 102 [0053] First electrode plate 10 [0054] First coating portion 11 [0055] First empty foil portion 12 [0056] First groove 13 [0057] Second electrode plate 20 [0058] Second coating portion 21 [0059] First end 211 [0060] Second end 212 [0061] Second empty foil portion 22 [0062] First empty foil region 221 [0063] Second empty foil region 222 [0064] Second groove 23 [0065] Cut portion 24 [0066] Third groove 25 [0067] Separator 30 [0068] First tab 40 [0069] Connecting portion 41 [0070] Protruding portion 42 [0071] Electrical connection portion 43 [0072] Second tab 50 [0073] Third tab 60 [0074] Fourth tab 70 [0075] First insulator 80 [0076] Second insulator 90 [0077] Third insulator 91 [0078] Battery 200 [0079] Housing 201 [0080] Electrode terminal 202
DETAILED DESCRIPTION OF EMBODIMENTS
[0081] The following clearly and fully describes the technical solutions in the embodiments of this application with reference to the drawings hereof. Apparently, the described embodiments are merely a part of but not all of the embodiments of this application. All other embodiments derived by a person of ordinary skill in the art based on the embodiments of this application without making any creative efforts shall fall within the protection scope of this application.
[0082] It needs to be noted that an element referred to as being “fixed to” another element may directly exist on the other element or may be fixed to the other element through an intermediate element. An element considered to be “connected to” another element may be directly connected to the other element or may be connected to the other element through an intermediate element. An element considered to be “disposed on” another element may be directly disposed on the other element or may be disposed on the other element through an intermediate element. The terms “vertical”, “horizontal”, “left”, “right” and similar expressions used herein are merely for ease of description.
[0083] Unless otherwise defined, all technical and scientific terms used herein have the same meanings as usually understood by a person skilled in the technical field of this application. The terms used in the specification of this application herein are merely intended for describing specific embodiments but are not intended to limit this application. The term “and/or” used herein is intended to include any and all combinations of one or more related items preceding and following the term.
[0084] Embodiments of this application provide an electrode assembly, including a first electrode plate, a second electrode plate, and a separator. A polarity of the second electrode plate is opposite to a polarity of the first electrode plate, and the separator is disposed between the first electrode plate and the second electrode plate. The electrode assembly is formed by winding the first electrode plate, the separator, and the second electrode plate. The electrode assembly further includes a first tab, a second tab, and a third tab. The first tab is disposed on the first electrode plate. The second tab is disposed on the second electrode plate, and the third tab is disposed on the second electrode plate. In a thickness direction of the electrode assembly, a projection of the first tab, a projection of the second tab, and a projection of the third tab do not overlap.
[0085] In the electrode assembly, the first tab, the second tab, and the third tab are disposed. Therefore, the electrode assembly exhibits a multi-tab structure, and shunts the current by using a plurality of parallel-connected tabs, thereby enhancing a current-carrying capacity of the battery and reducing a temperature rise.
[0086] The following describes some embodiments of this application in detail. To the extent that no conflict occurs, the following embodiments and the features in the embodiments may be combined with each other.
First Embodiment
[0087] Referring to
[0088] The first electrode plate 10 includes a first coating portion 11 and a first empty foil portion 12. The second electrode plate 20 includes a second coating portion 21 and a second empty foil portion 22. The first coating portion 11 is formed by coating a surface of a first current collector with a first active layer. The second coating portion 21 is formed by coating a surface of a second current collector with a second active layer. The first current collector is a metal sheet configured to manufacture the first electrode plate 10, and the second current collector is a metal sheet configured to manufacture the second electrode plate 20. The first empty foil portion 12 is approximately a region not coated with the first active layer on the first current collector, and the second empty foil portion 22 is approximately a region not coated with the second active layer on the second current collector.
[0089] In the first embodiment, a first groove 13 is provided on the first active layer on the first coating portion 11. The first tab 40 is disposed in the first groove 13 to facilitate electrical connection between the first tab 40 and the first electrode plate 10. A direction indicated by an arrow A in
[0090] A second groove 23 is provided on the second coating portion 21. The second tab 50 is disposed in the second groove 23, and the second tab 50 extends out of a lengthwise lateral edge of the second electrode plate 20. At least two lateral edges of the second groove 23 contact the active layer on the second coating portion 21. Specifically, the second groove 23 is approximately rectangular, and is provided inwardly from the lengthwise lateral edge of the second electrode plate 20. In this way, on three sides of the second groove 23, the second groove contacts the second active layer on the second coating portion 21. Understandably, in other embodiments, the second groove 23 is provided in a middle region of the second coating portion 21, and the second groove 23 contacts the second active layer all around. Alternatively, the second groove 23 runs through the second coating portion 21 along a direction of the arrow A or a direction perpendicular to the arrow A, and two opposite lateral edges of the second groove 23 contact the second active layer. This application is not limited thereto.
[0091] Further, the third tab 60 is disposed in the second empty foil region 22. The third tab 60 and the second tab 50 extend out of an identical lengthwise lateral edge of the second electrode plate 20. In the first embodiment, the third tab 60 is located at winding initiation end of the second electrode plate 20. From a perspective of the thickness direction of the electrode assembly 100, the third tab 60 is approximately located on a central layer of the electrode assembly 100.
[0092] A direction indicated by an arrow C in
[0093] Further, the first tab 40 is approximately long-strip-shaped, and includes a connecting portion 41 and a protruding portion 42. The connecting portion 41 connects the first electrode plate 10, and the protruding portion 42 extends out of the electrode assembly 100. Specifically, the connecting portion 41 may be disposed in the first groove 13, and welded to the first current collector in the first groove 13. The protruding portion 42 extends out of the lengthwise lateral edge of the first electrode plate 10. In an optional embodiment, the first tab 40 and the first electrode plate 10 are integrally formed, and the first tab 40 is formed by extending outward from the lengthwise lateral edge of the first electrode plate 10.
[0094] The electrode assembly 100 further includes a first insulator 80. The first insulator 80 overlays the connecting portion 41 of the first tab 40. In a winding process, the first insulator 80 avoids a short circuit between the first tab 40 and the second electrode plate 20, and also prevents burrs on the connecting portion 41 from scratching or damaging the electrode plate. The electrode assembly 100 further includes a second insulator 90. A winding initiation end of the second electrode plate 20 includes a cut portion 24, and the second insulator 90 overlays the cut portion 24. In a process of manufacturing the second electrode plate 20, the cut portion 24 is formed by cutting the second current collector. The second insulator 90 can prevent the burrs on the cut portion 24 from damaging the electrode plate during the winding.
[0095] Further, a surface of the first tab 40 is plated with a metal material capable of being soldered and/or brazed, so as to enhance performance of the tab including a current-carrying capacity, and facilitate welding between the first tab 40 and an external circuit. In this embodiment of this application, the metal material capable of being soldered and/or brazed is preferably a nickel metal material, and a structure of the first tab 40 is preferably a nickel-plated copper structure.
Second Embodiment
[0096] Referring to
[0097] Further, in the thickness direction of the electrode assembly 100, the first tab 40 and the third tab 60 are interspaced with at least one layer of first electrode plate 10 or one layer of second electrode plate 20. A larger spacing between the tabs is conducive to improving manufacturability of the electrode assembly 100 and avoiding interference between a plurality of tabs during bending.
[0098] The first tab 40 is also located at the winding initiation end of the first electrode plate 10. From a perspective of the thickness direction of the electrode assembly 100, both the first tab 40 and the third tab 60 are approximately located on the winding initiation layer in the middle of the electrode assembly 100. The winding initiation end of the first electrode plate 10 is lower than the winding initiation end of the second electrode plate 20. Therefore, From a perspective of the thickness direction of the electrode assembly 100, the first tab 40 is slightly lower than the third tab 60. In a direction perpendicular to the thickness direction of the electrode assembly, the first tab 40 and the third tab 60 are interspaced, and the cut portion 24 and the second insulator 90 are located between the first tab 40 and the third tab 60.
[0099] Other structures of the electrode assembly 100 in the second embodiment are almost identical to those in the first embodiment, and are omitted herein.
Third Embodiment
[0100] Referring to
[0101] Further, the first tab 40 is disposed on the first empty foil portion 12. The third tab 60 is located at a winding initiation end of the second electrode plate 20. The second tab 50 is located at a winding termination end of the second electrode plate 20. The first tab 40 is located at a winding initiation end ofthe first electrode plate 10. From a perspective of the thickness direction of the electrode assembly 100, the first tab 40 and the third tab 60 are approximately located in the middle of the electrode assembly 100 and are interspaced, and the second tab 50 is approximately located on an outermost layer of the electrode assembly 100, thereby achieving a reasonable layout of the plurality of tabs and simplifying manufacturing of the electrode assembly 100.
Fourth Embodiment
[0102] Referring to
[0103] From a perspective of the thickness direction of the electrode assembly 100, the first tab 40 and the third tab 60 are interspaced with at least one layer of first electrode plate 10 or one layer of second electrode plate 20.
Fifth Embodiment
[0104] Referring to
[0105] In the fifth embodiment, the third groove 25 is approximately rectangular, and is provided inwardly from the lengthwise lateral edge of the second coating portion 21. In this way, on three sides of the third groove 25, the third groove contacts the second active layer on the second coating portion 21. Understandably, in other embodiments, the third groove 25 is provided in a middle region of the second coating portion 21, and the third groove 25 contacts the second active layer all around. Alternatively, the third groove 25 runs through the second coating portion 21 along a length direction of the electrode plate or a direction perpendicular to the length direction of the electrode plate, and two opposite lateral edges of the third groove 25 contact the second active layer.
Sixth Embodiment
[0106] Referring to
[0107] Other structures of the electrode assembly 100 in the sixth embodiment are almost identical to those in the fifth embodiment, and are omitted herein.
Seventh Embodiment
[0108] Referring to
Eighth Embodiment
[0109] Referring to
Ninth Embodiment
[0110] Referring to
[0111] Understandably, in other embodiments, the second tab 50 and the third tab 60 may also be mutually independent structures disposed in different positions on the second electrode plate 20 respectively. In addition, the second tab 50 extends out of the first end 101 of the electrode assembly 100, and the third tab 60 extends out of the second end 102 of the electrode assembly 100. Meanwhile, the first tab 40 may extend out of the first end 101 or the second end 102 of the electrode assembly 100.
Tenth Embodiment
[0112] Referring to
Eleventh Embodiment
[0113] Referring to
[0114] The electrical connection portions 43 may be formed by welding a tab adapter onto the first tab 40, or may be formed by cutting the first tab 40. Understandably, in other embodiments, a quantity of the electrical connection portions 43 may be more than two, and this application is not limited thereto. By analogy, a plurality of electrical connection portions may also be disposed on the second tab 50 and the third tab 60.
Twelfth Embodiment
[0115] Referring to
[0116] The foregoing embodiments are merely intended for describing the technical solutions of this application but not intended as a limitation. Although this application is described in detail with reference to the foregoing optional embodiments, a person of ordinary skill in the art understands that modifications or equivalent substitutions may be made to the technical solutions of this application without departing from the spirit and scope of the technical solutions of this application.