IP Library Granted Patent US 11,296,563
Granted Patent B2
US 11,296,563 · App. 16/528,883 · Granted Apr 5, 2022

Rotor, motor, method for manufacturing rotor, and method for manufacturing motor

Inventors: Takaki Nose (Kosai, JP); Takumi Murayama (Toyohashi, JP); Toshihiro Nagata (Aichi-ken, JP); Yuuma Kobayashi (Kosai, JP); Yuuji Yamashita (Toyohashi, JP); Takafumi Yamano (Toyohashi, JP); Daisuke Koyano (Hamamatsu, JP)
Assignee: Denso Corporation
H02K1/272B21D28/26H02K1/02H02K1/146H02K1/185H02K1/278H02K1/28H02K3/18H02K5/161H02K5/1732H02K15/022H02K15/03H02K15/095H02K21/14H02K2213/03
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Quick Facts
Patent No.
US 11,296,563
App. No.
16/528,883
Granted
Apr 5, 2022
Kind
B2
Abstract

A rotor includes a rotor core, permanent magnets, and a tubular non-magnetic cover. The permanent magnets are arranged along an outer surface of the rotor core in the circumferential direction. The permanent magnets each include a curved outer surface as viewed in the axial direction. The tubular non-magnetic cover covers the outer surfaces of the permanent magnets. The rotor core includes at least two stacked cores. Each stacked core includes a stack of core sheets. One of the stacked cores is formed from a material having a lower hardness than the other stacked core.

Claims (55)

1. A method for manufacturing a motor including a rotor, the rotor including:

a rotor core;

permanent magnets arranged on an outer surface of the rotor core in a circumferential direction, wherein the permanent magnets each have a curved outer surface as viewed in an axial direction; and

a tubular non-magnetic cover that covers the outer surfaces of the permanent magnets, wherein

the rotor core includes at least two stacked cores,

the stacked cores each include a stack of core sheets, and

one of the stacked cores is formed from a material having a lower hardness than another one of the stacked cores,

the method comprising:

pressing and punching sheet metal to form stator core sheets and rotor core sheets;

stacking the stator core sheets to form a stator core; arranging an axial extension on an axial end of the stator core to oppose the rotor core over an increased area; stacking the rotor core sheets, which are greater in number than the stator core sheets, to oppose the stator core including the axial extension and form the rotor core; and press-fitting a rotation shaft into the rotor core;

wherein main rotor core sheets, the number of which is the same as the stator core sheets, are punched and formed together with the stator core sheets;

auxiliary rotor core sheets, the number of which corresponds to the rotor core sheets that are lacking, are formed by punching sheet metal having a lower hardness than a material of the stator core sheets;

the main rotor core sheets and the auxiliary rotor core sheets are stacked to form the rotor core; and

the rotation shaft is press-fitted into the rotor core from the auxiliary rotor core sheets stacked on one axial end of the rotor core.

2. The method according to claim 1 , wherein

the stator core sheets and the main rotor core sheets are formed by punching magnetic steel sheets, and

the auxiliary rotor core sheets are formed by punching cold rolled steel sheets.

3. The method according to claim 1 , wherein the rotation shaft is formed from a harder metal material than the auxiliary rotor core sheets.

4. The method according to claim 1 , wherein

main rotor core sheets, the number of which is the same as the stator core sheets, are formed by punching an inner side of the stator core sheets; and

auxiliary rotor core sheets, the number of which corresponds to the rotor core sheets that are lacking, are formed by punching an inner side of stator core sheets of another motor.

5. The method according to claim 4 , wherein the auxiliary rotor core sheets are punched and formed together with stator core sheets of a Lundell motor.

6. A method for manufacturing a rotor, the rotor including:

a rotor core;

permanent magnets arranged on an outer surface of the rotor core in a circumferential direction, wherein the permanent magnets each have a curved outer surface as viewed in an axial direction; and

a tubular non-magnetic cover that covers the outer surfaces of the permanent magnets, wherein

the rotor core includes at least two stacked cores,

the stacked cores each include a stack of core sheets,

one of the stacked cores is formed from a material having a lower hardness than another one of the stacked cores, and

the permanent magnets each include an outer surface that extends so that a distance from an axis of the rotor to a circumferentially middle portion of the outer surface is longer than distances from the axis to two circumferential ends of the outer surface,

the method comprising:

forming the non-magnetic cover in which a large-diameter portion and a small-diameter portion are arranged in an axial direction, the large-diameter portion having an inner diameter that is larger than an inner diameter of the small-diameter portion; and

press-fitting the non-magnetic cover to the rotor core when the permanent magnets are in contact with the outer surface of the rotor core so that an inner surface of the large-diameter portion and an inner surface of the small-diameter portion are both in contact with the outer surfaces of the permanent magnets.

7. The method according to claim 6 , wherein the non-magnetic cover is press-fitted to the rotor core from the large-diameter portion.

8. The method according to claim 7 , wherein forming the non-magnetic cover includes forming a diameter decreasing portion in which the inner diameter gradually decreases between the large diameter portion and the small diameter portion.

9. The method according to claim 7 , wherein:

the high hardness portion and the low hardness portion are arranged in the axial direction; and

the non-magnetic cover is press-fitted to the rotor core from the high hardness portion.

10. A method for manufacturing a motor including a rotor, the rotor including:

a rotor core;

permanent magnets arranged on an outer surface of the rotor core in a circumferential direction, wherein the permanent magnets each have a curved outer surface as viewed in an axial direction; and

a tubular non-magnetic cover that covers the outer surfaces of the permanent magnets, wherein

the rotor core includes at least two stacked cores,

the stacked cores each include a stack of core sheets, and

one of the stacked cores is formed from a material having a lower hardness than another one of the stacked cores,

the method comprising:

pressing and punching sheet metal to form stator core sheets and rotor core sheets;

stacking the stator core sheets to form a stator core; arranging an axial extension on an axial end of the stator core to oppose the rotor core over an increased area; and

stacking the rotor core sheets, which are greater in number than the stator core sheets, to oppose the stator core including the axial extension and form the rotor core;

wherein main rotor core sheets, the number of which is the same as the stator core sheets, are punched and formed together with the stator core sheets;

auxiliary rotor core sheets, the number of which corresponds to the rotor core sheets that are lacking, are formed by punching sheet metal having a lower hardness than a material of the stator core sheets, and the auxiliary rotor core sheets have a smaller outer diameter than the main rotor core sheets;

the main rotor core sheets and the auxiliary rotor core sheets are stacked to form the rotor core;

the rotation shaft is fixed to the rotor core from a portion where the auxiliary rotor core sheets are stacked; and

the tubular non-magnetic cover is press-fitted with the permanent magnets in contact with the outer surface of the rotor core.

11. The method according to claim 10 , wherein the non-magnetic cover is press-fitted to the rotor core from the main rotor core sheets stacked on another axial end of the rotor core.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 1, 2019
From: NOSE, TAKAKI; MURAYAMA, TAKUMI; NAGATA, TOSHIHIRO; KOBAYASHI, YUUMA; YAMASHITA, YUUJI; YAMANO, TAKAFUMI; KOYANO, DAISUKE
To: ASMO CO., LTD.
Reel/Frame 049929/0811 →
MERGER AND CHANGE OF NAME Recorded Aug 1, 2019
From: ASMO CO., LTD.; DENSO CORPORATION
To: DENSO CORPORATION
Reel/Frame 049950/0288 →
Priority Claims (8)
JP 2015-216018 · Nov 2, 2015 · national
JP 2016-012477 · Jan 26, 2016 · national
JP 2016-024702 · Feb 12, 2016 · national
JP 2016-100729 · May 19, 2016 · national
JP 2016-164045 · Aug 24, 2016 · national
JP 2016-164046 · Aug 24, 2016 · national
JP 2016-164047 · Aug 24, 2016 · national
JP 2016-208872 · Oct 25, 2016 · national
Continuity (2)
Division 15338943 · Oct 31, 2016
Related Publication 20190386529A1 · Dec 19, 2019
Cited By (1)
US 12,603,532