IP Library › Granted Patent US 12,580,222
Granted Patent B2
US 12,580,222 · App. 17/680,323 · Granted Mar 17, 2026

Method of manufacturing battery component and apparatus for manufacturing battery component

Inventors: Yayoi Matsushita (Saitama, JP); Yuichi Tajiri (Saitama, JP); Takehiro Fukushima (Saitama, JP)
Assignee: HONDA MOTOR CO., LTD.
H01M10/0562H01M4/139H01M10/0585H01M4/621H01M2300/0068
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Quick Facts
Patent No.
US 12,580,222
App. No.
17/680,323
Granted
Mar 17, 2026
Kind
B2
Abstract

Provided are a method and an apparatus for manufacturing a battery component including a base having a three-dimensional structure at low manufacturing costs, the method and the apparatus enabling impregnation of the base with a solid electrolyte of uniform composition while preventing or inhibiting air from remaining inside the base. A method of manufacturing a battery component, including: a first step of positioning a base having a three-dimensional structure in an impregnation tank; and a second step of feeding a solid electrolyte slurry to the base positioned in the impregnation tank while keeping the solid electrolyte slurry flowing, thereby impregnating the base with the solid electrolyte slurry.

Claims (22)

1 . A method of manufacturing a battery component, the method comprising:

a first step of positioning a base having a three-dimensional structure in an impregnation tank; and

a second step of feeding a solid electrolyte slurry to the base positioned in the impregnation tank while keeping the solid electrolyte slurry flowing in a certain direction, thereby impregnating the base with the solid electrolyte slurry,

wherein, in the second step, the solid electrolyte slurry is supplied to the substrate while flowing, with the back surface side of the substrate, which faces the bottom surface of the impregnation treatment tank, being immersed in the solid electrolyte slurry and the front surface side of the substrate being exposed.

2 . The method of manufacturing a battery component according to claim 1 , wherein in the first step, the base is positioned such that a longitudinal direction of the base becomes approximately parallel to a bottom surface of the impregnation tank.

3 . The method of manufacturing a battery component according to claim 1 , wherein in the second step, the base is impregnated with the solid electrolyte slurry while being moved approximately parallel to a bottom surface of the impregnation tank.

4 . An apparatus for manufacturing a battery component, the apparatus comprising:

an impregnation tank for containing a solid electrolyte slurry;

a positioner for positioning a base having a three-dimensional structure in the impregnation tank; and

a feeder for feeding the solid electrolyte slurry to the base positioned in the impregnation tank while keeping the solid electrolyte slurry flowing in a certain direction, thereby impregnating the base with the solid electrolyte slurry,

wherein the feeder feeds the solid electrolyte slurry to the base while keeping the solid electrolyte slurry flowing such that a back side of the base facing a bottom surface of the impregnation tank is immersed in the solid electrolyte slurry and a front side of the base is exposed.

5 . The apparatus for manufacturing a battery component according to claim 4 , wherein the positioner positions the base in the impregnation tank such that a longitudinal direction of the base becomes approximately parallel to a bottom surface of the impregnation tank.

6 . The apparatus for manufacturing a battery component according to claim 4 , wherein the positioner includes a mover that moves the base approximately parallel to a bottom surface of the impregnation tank.

7 . A method for manufacturing a battery component, the method comprising:

a first step of positioning a base having a three-dimensional structure in an impregnation tank; and

a second step of feeding a solid electrolyte slurry to the base positioned in the impregnation tank while keeping the solid electrolyte slurry flowing, thereby impregnating the base with the solid electrolyte slurry, and

a third step in which, when the solid electrolyte slurry is fed up to the side opposite to the back side of the base facing the bottom surface of the impregnation tank, the base having a three-dimensional structure is vertically flipped, and the flowing solid electrolyte slurry is then fed to the base positioned in the impregnation tank again, thereby impregnating the base with the solid electrolyte slurry.

8 . An apparatus for manufacturing a battery component, the apparatus comprising:

an impregnation tank for containing a solid electrolyte slurry;

a positioner for positioning a base having a three-dimensional structure in the impregnation tank; and

a feeder for feeding the solid electrolyte slurry to the base positioned in the impregnation tank while keeping the solid electrolyte slurry flowing in a certain direction, thereby impregnating the base with the solid electrolyte slurry, and

wherein the positioner includes a first fixture that holds at least one end of the base having a three-dimensional structure defined with respect to either the longitudinal or lateral direction, and a second fixture that can fix the base having a three-dimensional structure and the first fixture being held in the impregnation tank, the first fixture and the second fixture being joined to each other.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 19, 2022
From: MATSUSHITA, YAYOI; TAJIRI, YUICHI; FUKUSHIMA, TAKEHIRO
To: HONDA MOTOR CO., LTD.
Reel/Frame 059629/0181 →
Priority Claims (1)
JP 2021-041792 · Mar 15, 2021 · national
Continuity (1)
Related Publication 20220294011A1 · Sep 15, 2022
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