IP Library Granted Patent US 12665200
Granted Patent B2
US 12665200 · App. 18/248,696 · Granted Jun 23, 2026

Electrode plate, manufacturing method, rechargeable battery and production device

Inventors: Lei Zhang (Liyang, CN); Xiaoming Wang (Liyang, CN); Qiang Xu (Liyang, CN); Haotian Yang (Liyang, CN); Jinku Xie (Liyang, CN); Fengjie Wei (Liyang, CN); Yukun Zhou (Liyang, CN)
Assignee: JIANGSU ADVANCED MATERIAL TECH CO., LTD.
H01M4/667H01M4/0404H01M4/70H01M10/0404H01M10/0525H01M50/536
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Quick Facts
Patent No.
US 12665200
App. No.
18/248,696
Granted
Jun 23, 2026
Kind
B2
Abstract

An electrode plate includes a current collector which includes an insulating layer, a first conductor layer and a second conductor layer disposed on two sides of the insulating layer respectively, and a conductive connector. The outward side of the first conductor layer is provided with a first blank region and a first active material coating layer. The outward side of the second conductor layer is provided with a second blank region and a second active material coating layer. The first blank region is provided with a folded region, and the second blank region covers the first blank region. One end of the conductive connector extends out of the folded region to connect the first blank region. The other end of the conductive connector is connected to the second blank region. The conductive connector is adapted to electrically connect the first blank region and the second blank region.

Claims (32)

1 . A manufacturing method of an electrode plate, wherein the electrode plate comprises a current collector, a first blank region, a second blank region, a folded region, and a conductive connection, and the current collector comprises a first conductor layer and a second conductor layer, the method comprising:

disposing an active material on a partial region of the first conductor layer to form a first active material coating layer and the first blank region, wherein the first blank region and the first active material coating layer are disposed side by side and adjacent to each other; and disposing the active material on a partial region of the second conductor layer to form a second active material coating layer and the second blank region, wherein the second blank region and the second active material coating layer are disposed side by side and adjacent to each other;

folding part of the first blank region of the current collector so that a folded region of the current collector is formed in the first blank region; and

connecting a first end of the conductive connector to the first blank region and connecting a second end of the conductive connector to the folded second blank region;

wherein

disposing the active material on the first conductor layer to form the first active material coating layer, wherein the first blank region and the first active material coating layer are disposed side by side and adjacent to each other, and disposing the active material on the second conductor layer to form the second active material coating layer, wherein the second blank region and the second active material coating layer are disposed side by side and adjacent to each other comprise:

disposing the active material on first conductor layers on a plurality of current collectors at intervals to form a plurality of first active material coating layers, wherein one first blank region is formed between every two adjacent first active material coating layers of the plurality of first active material coating layers, disposing the active material on second conductor layers on the plurality of current collectors at intervals to form a plurality of second active material coating layers, wherein one second blank region is formed between every two adjacent second active material coating layers of the plurality of second active material coating layers, one of the plurality of current collectors, one first blank region, one of the plurality of first active material coating layers, one second blank region, one of the second active material coating layers form a semi-finished current collector, and a plurality of semi-finished current collectors are connected end to end to form a continuous semi-finished current collector;

folding the part of the first blank region of the current collector so that the current collector forms the folded region in the first blank region comprises: partially cutting a first blank region of each semi-finished current collector of the continuous semi-finished current collector and folding the each first blank region by a folding apparatus so that the each semi-finished current collector forms a folded region in the first blank region;

connecting the first end of the conductive connector to the first blank region and connecting the second end of the conductive connector to the folded second blank region comprise: placing a conductive connector of the each semi-finished current collector in the folded region, welding a first end of the conductive connector of the each semi-finished current collector to the first blank region, and welding a second end of the conductive connector of the each semi-finished current collector to a folded second blank region of the each semi-finished current collector, wherein one of the plurality of semi-finished current collectors and one of conductive connectors form one semi-finished electrode plate, and a plurality of semi-finished electrode plates are connected end to end to form a continuous semi-finished electrode plate; and

the method further comprises: cutting the continuous semi-finished electrode plate into individual electrode plates.

2 . The method according to claim 1 , wherein the folding apparatus uses a mechanical arm to turn over the first blank region, and the folding apparatus is rotationally driven by a stepping motor.

3 . An electrode plate, manufactured by the manufacturing method of the electrode plate according to claim 1 , wherein the electrode plate comprises:

the current collector, wherein the current collector comprises an insulating layer, the first conductor layer disposed on a first side of the insulating layer, and the second conductor layer disposed on a second side of the insulating layer;

the first blank region and the first active material coating layer disposed on a side of the first conductor layer away from the insulating layer; and

the second blank region and the second active material coating layer disposed on a side of the second conductor layer away from the insulating layer;

the folded region disposed in the first blank region, wherein when the current collector is folded, the second blank region partially covers the first blank region; and

the conductive connector, wherein part of the conductive connector overlaps the folded region, a first end of the conductive connector extends out of the folded region to connect the first blank region, a second end of the conductive connector is located in the folded region to connect the second blank region, and the conductive connector is configured to be electrically connected to the first blank region and the second blank region.

4 . The electrode plate according to claim 3 , wherein the insulating layer is made of at least one of polyester, polyethylene, polypropylene, or polyarylsulfone.

5 . The electrode plate according to claim 3 , wherein the conductive connector is connected to the first blank region and the second blank region by ultrasonic welding respectively.

6 . The electrode plate according to claim 3 , wherein a folding angle of the current collector is 180 degrees.

7 . The electrode plate according to claim 3 , wherein the conductive connector is a tab.

8 . A rechargeable battery, comprising:

a positive electrode plate, a separator, and a negative electrode plate which are bonded in sequence, and further comprising an electrolyte, wherein

at least one of the positive electrode plate or the negative electrode plate uses the electrode plate according to claim 3 .

9 . The rechargeable battery according to claim 8 , wherein

the positive electrode plate comprises the current collector, the current collector comprises the insulating layer, the first conductor layer, and the second conductor layer, and in a case where the electrode plate is used as the positive electrode plate, each of a material of the first conductor layer and a material of the second conductor layer is aluminium or aluminium alloy.

10 . The rechargeable battery according to claim 8 , wherein

the negative electrode plate comprises the current collector, the current collector comprises the insulating layer, the first conductor layer, and the second conductor layer, and in a case where the electrode plate is used as the negative electrode plate, each of a material of the first conductor layer and a material of the second conductor layer is copper or copper alloy.

11 . The rechargeable battery according to claim 8 , wherein the insulating layer is made of at least one of polyester, polyethylene, polypropylene, or polyarylsulfone.

12 . The rechargeable battery according to claim 8 , wherein the conductive connector is connected to the first blank region and the second blank region by ultrasonic welding respectively.

13 . The rechargeable battery according to claim 8 , wherein a folding angle of the current collector is 180 degrees.

14 . The rechargeable battery according to claim 8 , wherein the conductive connector is a tab.