IP Library Granted Patent US 12,289,015
Granted Patent B2
US 12,289,015 · App. 17/667,227 · Granted Apr 29, 2025

Motor armature structure and motor armature manufacturing method

Inventors: Manabu Horiuchi (Tokyo, JP); Shintarou Koichi (Tokyo, JP); Yasushi Misawa (Tokyo, JP)
Assignee: SANYO DENKI CO., LTD.
H02K1/16H02K1/148H02K15/024
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Quick Facts
Patent No.
US 12,289,015
App. No.
17/667,227
Granted
Apr 29, 2025
Kind
B2
Abstract

There is provided a motor armature structure including an armature that includes: a winding body; an armature core having a plurality of winding cores; and a structure framework, at least a part of the structure framework includes an insulating member, and the armature core includes a molded magnetic material admixture.

Claims (47)

1. A motor armature structure comprising an armature including:

a plurality of winding bodies, each of the plurality of winding bodies including a wire wound around an air core where a respective one of a plurality of winding cores is positioned, each of the plurality of winding bodies being formed as an integral block;

an armature core having the plurality of winding cores; and

a structure framework,

wherein the structure framework includes a plurality of positioning portions, each extending along a direction of the axis of rotation of the armature and having at least one boundary portion as an insulating member, said at least one boundary portion protruding outwardly in a direction opposite to the direction of an axis of the motor;

wherein the plurality of winding bodies are held by the plurality of positioning portions, respectively, such that the adjacent winding bodies are separated from each other by the at least one boundary portion in between the adjacent winding bodies and at least a part of a bottom surface of each of the adjacent winding bodies is in contact with a positioning surface of one of the positioning portions and at least a part of a side surface of each of the adjacent winding bodies is in contact with the at least one boundary portion;

wherein the armature core includes a molded magnetic material admixture that integrates the plurality of winding bodies and the structure framework;

wherein the plurality of winding bodies and the structure framework both are molded by the magnetic material admixture;

wherein the plurality of winding bodies includes first and second winding bodies;

wherein the plurality of positioning portions includes first, second and third positioning portions;

wherein the first winding body is in contact with the first and second positioning portions and held by the first and second positioning portions; and

wherein the second winding body is in contact with the second and third positioning portions and held by the second and third positioning portions.

2. The motor armature structure according to claim 1 , wherein the structure framework includes two end plates at positions apart from each other on an axis of rotation of the armature.

3. The motor armature structure according to claim 1 , wherein at least a part of the structure framework extends in such a manner as to define a space where the winding core of the winding body is placed.

4. The motor armature structure according to claim 1 , wherein at least a part of the structure framework covers an outer peripheral side of the winding body.

5. A motor armature manufacturing method for manufacturing the motor armature structure according to claim 1 , comprising:

providing the plurality of winding bodies;

providing the structure framework that includes the plurality of positioning portions;

placing the plurality of winding bodies in the structure framework, such that the adjacent winding bodies are separated from each other by the at least one boundary portion in between the adjacent winding bodies and at least the part of the bottom surface of each of the adjacent winding bodies is in contact with the positioning surface of one of the positioning portions and at least the part of the side surface of each of the adjacent winding bodies is in contact with the at least one boundary portion; and

molding the air core, the winding bodies, and the structure framework with the magnetic material admixture with fluidity including a mixture of a resin binder and a soft magnetic powder.

6. The motor armature manufacturing method according to claim 5 , wherein after the step of providing the winding bodies and the step of placing each of the winding bodies in the structural framework, each winding body is molded with the magnetic material admixture.

7. The motor armature manufacturing method according to claim 5 , wherein the magnetic material admixture includes a fluid material or a liquid material.

8. The motor armature manufacturing method according to claim 5 , wherein the magnetic material admixture includes a granular material or a pellet.

9. The motor armature manufacturing method according to claim 5 , wherein the magnetic material admixture is formed with a 3D printer.

10. The motor armature manufacturing method according to claim 9 , wherein the structure framework and the magnetic material admixture are simultaneously formed three-dimensionally.

11. The motor armature manufacturing method according to claim 5 , wherein in at least a part of steps, a cored bar, an inner mold, or an outer mold is used.

12. The motor armature manufacturing method according to claim 11 , wherein the cored bar or the inner mold is used to position the structure framework, upon the plurality of winding bodies being placed in the structure framework.

13. The motor armature structure according to claim 1 , wherein a portion of the molded magnetic material admixture is filled in the air core.

14. The motor armature structure according to claim 1 , wherein spaces that excluding spaces occupied by the plurality of positioning portions of the structure framework and by the plurality of winding bodies are filled with the molded magnetic material admixture as a continuous material configuring the armature core such that the plurality of winding bodies and the structure framework both are molded by the magnetic material admixture.

15. A motor armature structure comprising an armature including:

a plurality of winding bodies, each of the plurality of winding bodies including a wire wound around an air core where a respective one of a plurality of winding cores is positioned, each of the plurality of winding bodies being formed as an integral block;

an armature core having the plurality of winding cores; and

a structure framework,

wherein the structure framework includes a plurality of positioning portions, each extending along a direction of the axis of rotation of the armature and having two boundary portions as insulating members, said two boundary portions extending radially outward as viewed in an axial direction of the motor;

wherein the plurality of positioning portions include a first positioning portion and a second positioning portion adjacent to the first positioning portion;

wherein one of the two boundary portions of the first positioning portion is in contact with one of the two boundary portions of the second positioning portion;

wherein the plurality of winding bodies are held by the plurality of positioning portions, respectively, such that the adjacent winding bodies are separated from each other by the two boundary portions in between the adjacent winding bodies and at least a part of a bottom surface of each of the adjacent winding bodies is in contact with a bottom surface of one of the positioning portions and at least a part of a side surface of each of the adjacent winding bodies is in contact with the one of the two boundary portions;

wherein the armature core includes a molded magnetic material admixture; and

wherein a portion of the molded magnetic material admixture is filled in the air core.

16. A motor armature structure comprising an armature including:

a plurality of winding bodies, each of the plurality of winding bodies including a wire wound around an air core where a respective one of a plurality of winding cores is positioned, each of the plurality of winding bodies being formed as an integral block;

an armature core having the plurality of winding cores; and

a structure framework having a cuboid shape as viewed from an outer peripheral side of the motor, a longitudinal direction of the cuboid shape is the same as an axial direction of the motor,

wherein the structure framework includes a plurality of positioning portions, each extending along a direction of the axis of rotation of the armature and having at least one boundary portion as an insulating member, said at least one boundary portion protruding outwardly in a direction opposite to the axial direction of the motor;

wherein the plurality of winding bodies are held by the plurality of positioning portions, respectively, such that the adjacent winding bodies are separated from each other by the at least one boundary portion in between the adjacent winding bodies and at least a part of a bottom surface of each of the adjacent winding bodies is in contact with a bottom surface of one of the positioning portions and at least a part of a side surface of each of the adjacent winding bodies is in contact with the at least one boundary portion;

wherein the armature core includes a molded magnetic material admixture; and

wherein the molded magnetic material admixture is a continuous material configuring the armature core, filled and cured in spaces that excluding spaces occupied by the plurality of positioning portions of the structure framework and by the plurality of winding bodies.

Assignments (2)
CORRECTIVE ASSIGNMENT TO CORRECT THE SECOND INVENTOR'S NAME FROM SHINTARO KOICHI TO SHINTAROU KOICHI PREVIOUSLY RECORDED AT REEL: 058939 FRAME: 0258. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Feb 23, 2022
From: HORIUCHI, MANABU; KOICHI, SHINTAROU; MISAWA, YASUSHI
To: SANYO DENKI CO., LTD.
Reel/Frame 059220/0520 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 9, 2022
From: HORIUCHI, MANABU; KOICHI, SHINTAROU; MISAWA, YASUSHI
To: SANYO DENKI CO., LTD.
Reel/Frame 058939/0258 →
Priority Claims (1)
JP 2021-026178 · Feb 22, 2021 · national
Continuity (1)
Related Publication 20220271578A1 · Aug 25, 2022
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