IP Library Granted Patent US 12,661,680
Granted Patent B2
US 12,661,680 · App. 18/620,821 · Granted Jun 23, 2026

Flow-coating apparatus and flow-coating method

Inventors: Zunguang Yan (Ningde, CN); Ye Xu (Ningde, CN); Fenggui Zeng (Ningde, CN); Jiajing Gao (Ningde, CN); Renyu Chen (Ningde, CN)
Assignee: CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
B05C5/02B05C11/1039B05C11/1044B05C13/02H01M50/1245
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Quick Facts
Patent No.
US 12,661,680
App. No.
18/620,821
Filed
Mar 28, 2024
Granted
Jun 23, 2026
Kind
B2
Art Unit
1717
USPC
118/200
Abstract

A flow-coating apparatus is configured to flow-coat a member to be flow-coated with an insulation layer, where the member to be flow-coated includes a first surface and an outer peripheral surface surrounding a periphery of the first surface, the first surface being perpendicular to a vertical direction. The flow-coating apparatus includes a first flow-coating mechanism and a second flow-coating mechanism, where a flow-coating opening of the first flow-coating mechanism faces the first surface and is configured to flow-coat the first surface with the insulation layer; and a flow-coating opening of the second flow-coating mechanism faces the outer peripheral surface and is configured to flow-coat the outer peripheral surface with the insulation layer.

Claims (37)

1 . A flow-coating apparatus, configured to flow-coat a member to be flow-coated with an insulation layer, wherein the member to be flow-coated comprises a first surface and an outer peripheral surface surrounding a periphery of the first surface perpendicular to a vertical direction, the flow-coating apparatus comprising:

a first flow-coating mechanism, wherein a flow-coating opening of the first flow-coating mechanism faces the first surface and is configured to flow-coat the first surface with the insulation layer;

a second flow-coating mechanism, wherein a flow-coating opening of the second flow-coating mechanism faces the outer peripheral surface and is configured to flow-coat the outer peripheral surface with the insulation layer;

a rotation mechanism comprising a rotation cylinder or a drive motor, and configured to drive the member to be flow-coated to rotate around a central axis;

a recycling groove located under the member to be flow-coated in the vertical direction and above the rotation mechanism in the vertical direction;

a liquid supply mechanism comprising a hydraulic pump, wherein at least one of the first flow-coating mechanism or the second flow-coating mechanism communicates with the recycling groove via the hydraulic pump; and

a gas suction mechanism located above the rotation mechanism in the vertical direction.

2 . The flow-coating apparatus according to claim 1 , wherein the outer peripheral surface comprises multiple pairs of side surfaces disposed opposite each other, and the second flow-coating mechanism comprises multiple flow-coating assemblies, wherein the multiple flow-coating assemblies are configured to flow-coat the multiple pairs of side surfaces, respectively.

3 . The flow-coating apparatus according to claim 2 , wherein each side surface in at least one pair of side surfaces is correspondingly provided with a flow-coating assembly of the multiple flow-coating assemblies.

4 . The flow-coating apparatus according to claim 2 , wherein at least one side surface is correspondingly provided with multiple flow-coating assemblies.

5 . The flow-coating apparatus according to claim 2 , further comprising:

a delivery mechanism configured to deliver multiple members to be flow-coated along a delivery direction;

wherein the multiple flow-coating assemblies are spaced apart along the delivery direction, and the multiple flow-coating assemblies are disposed corresponding to the multiple members to be flow-coated, respectively.

6 . The flow-coating apparatus according to claim 1 , further comprising:

a bearing boss, wherein the bearing boss comprises a bearing surface and a positioning groove formed by the bearing surface being recessed inwards, the member to be flow-coated being placed on the bearing boss via the positioning groove.

7 . The flow-coating apparatus according to claim 6 , wherein the bearing boss further comprises a gas channel communicating with the gas suction mechanism, the gas channel comprises a gas orifice provided on the bearing surface, and the gas suction mechanism attracts the member to be flow-coated onto the bearing surface via the gas orifice.

8 . The flow-coating apparatus according to claim 1 , wherein:

the member to be flow-coated is a battery cell, wherein the battery cell comprises a housing and a top cover plate, the top cover plate is disposed at one side of the housing and covers an opening of the housing, and the housing comprises a bottom wall opposite the top cover plate and a side wall surrounding a periphery of the bottom wall; and

wherein a side of the bottom wall facing away from the top cover plate is the first surface, and a side of the side wall facing away from the opening is the outer peripheral surface.

9 . The flow-coating apparatus according to claim 1 , further comprising:

a delivery mechanism configured to deliver the member to be flow-coated along a delivery direction;

wherein the recycling groove is located above the delivery mechanism in the vertical direction.

10 . The flow-coating apparatus according to claim 1 , further comprising:

a bearing boss located above the rotation mechanism in the vertical direction, and comprising a bearing surface and a gas channel communicating with the gas suction mechanism, the gas channel being located between the rotation mechanism and the bearing surface in the vertical direction.

11 . A flow-coating method for flow-coating a member to be flow-coated performed by the flow-coating apparatus according to claim 1 , wherein the member to be flow-coated comprises a first surface and an outer peripheral surface surrounding a periphery of the first surface perpendicular to a vertical direction, the flow-coating method comprising:

providing the first flow-coating mechanism and the second flow-coating mechanism; and

performing flow-coating on the first surface and the outer peripheral surface using the first flow-coating mechanism and the second flow-coating mechanism.

12 . The flow-coating method according to claim 11 , wherein performing flow-coating on the first surface and the outer peripheral surface using the first flow-coating mechanism and the second flow-coating mechanism includes the first flow-coating mechanism and the second flow-coating mechanism performing flow-coating on the first surface and the outer peripheral surface at the same time.

13 . The flow-coating method according to claim 11 , wherein:

the second flow-coating mechanism comprises multiple flow-coating assemblies spaced apart; and

performing flow-coating on the first surface and the outer peripheral surface using the first flow-coating mechanism and the second flow-coating mechanism comprises:

using a delivery mechanism to drive multiple members to be flow-coated to move along a delivery direction; and

performing, by the multiple flow-coating assemblies, flow-coating on the outer peripheral surfaces of the multiple members to be flow-coated, respectively.

14 . The flow-coating method according to claim 11 , wherein performing flow-coating on the first surface and the outer peripheral surface using the first flow-coating mechanism and the second flow-coating mechanism comprises:

using the rotation mechanism to drive rotation of the member to be flow-coated, to allow the second flow-coating mechanism to perform flow-coating on different zones of the outer peripheral surface of the member to be flow-coated.

15 . The flow-coating method according to claim 11 , further comprising:

performing drying on a flow-coated device, wherein a drying temperature is 40° C. to 100° C., and a drying time is 1 min to 15 min.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 6, 2024
From: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
To: CONTEMPORARY AMPEREX TECHNOLOGY (HONG KONG) LIMITED
Reel/Frame 068338/0402 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 28, 2024
From: YAN, ZUNGUANG; XU, YE; ZENG, FENGGUI; GAO, JIAJING; CHEN, RENYU
To: CONTEMPORARY AMPEREX TECHNOLOGY CO., LIMITED
Reel/Frame 066940/0676 →
Priority Claims (1)
CN 202210033462.8 · Jan 12, 2022 · national
Continuity (2)
Continuation PCTCN2022142531 · Dec 27, 2022
Related Publication 20240238826A1 · Jul 18, 2024
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