IP Library Granted Patent US 12683055
Granted Patent B2
US 12683055 · App. 18/726,245 · Granted Jul 14, 2026

Magnetization method and magnetization apparatus

Inventors: Junichi Deguchi (Toyota, JP); Kei Ohta (Toyota, JP)
Assignee: TOYOTA JIDOSHA KABUSHIKI KAISHA
H01F13/003
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Quick Facts
Patent No.
US 12683055
App. No.
18/726,245
Granted
Jul 14, 2026
Kind
B2
Abstract

A magnetization method according to one aspect of the present disclosure, which is a method for magnetizing magnetic bodies in which at least a first magnetic body, a second magnetic body, and a third magnetic body are aligned, includes a heteropolar magnetization process. In this process, heteropolar magnetic fields are generated in a first magnetization yoke and a second magnetization yoke that are opposed to each other in a radial direction with a first magnetic body before magnetization interposed therebetween, and heteropolar magnetic fields are generated in a third magnetization yoke and a fourth magnetization yoke that are opposed to each other in a radial direction with the third magnetic body before magnetization interposed therebetween. In the heteropolar magnetization process, an amount of magnetic flux flowing through the first magnetic body is made larger than an amount of magnetic flux flowing through the third magnetic body.

Claims (18)

1 . A magnetization method for magnetizing a plurality of magnetic bodies in which at least a first magnetic body, a second magnetic body, and a third magnetic body are aligned, the magnetization method comprising:

a heteropolar magnetization process for generating heteropolar magnetic fields in a first magnetization yoke and a second magnetization yoke that are opposed to each other in a radial direction with the first magnetic body before magnetization interposed therebetween and generating heteropolar magnetic fields in a third magnetization yoke and a fourth magnetization yoke that are opposed to each other in a radial direction with the third magnetic body before magnetization interposed therebetween, wherein

in the heteropolar magnetization process, an amount of magnetic flux that flows through the first magnetic body is made larger than an amount of magnetic flux that flows through the third magnetic body.

2 . The magnetization method according to claim 1 , further comprising a homopolar magnetization process that is performed before the heteropolar magnetization process is performed, wherein

in the homopolar magnetization process, the second magnetic body is magnetized by generating homopolar magnetic fields in the first magnetization yoke and the second magnetization yoke in such a way that a magnetic flux propagates toward the first magnetic body and by generating homopolar magnetic fields in the third magnetization yoke and the fourth magnetization yoke in such a way that a magnetic flux propagates away from the third magnetic body.

3 . The magnetization method according to claim 1 , wherein, in the heteropolar magnetization process, magnetic fields generated in the first magnetization yoke and the second magnetization yoke are made larger than magnetic fields generated in the third magnetization yoke and the fourth magnetization yoke, whereby an amount of magnetic flux that flows through the first magnetic body is made larger than an amount of magnetic flux that flows through the third magnetic body.

4 . The magnetization method according to claim 1 , comprising making an arrangement gap between the first magnetization yoke and the first magnetic body and between the second magnetization yoke and the first magnetic body smaller than an arrangement gap between the third magnetization yoke and the third magnetic body and between the fourth magnetization yoke and the third magnetic body, whereby an amount of magnetic flux that flows through the first magnetic body is made larger than an amount of magnetic flux that flows through the third magnetic body in the heteropolar magnetization process.

5 . A magnetization apparatus for magnetizing a plurality of magnetic bodies in which at least a first magnetic body, a second magnetic body, and a third magnetic body are aligned, wherein

the magnetization apparatus comprises a heteropolar magnetizing unit that generates heteropolar magnetic fields in a first magnetization yoke and a second magnetization yoke that are opposed to each other in a radial direction with the first magnetic body before magnetization interposed therebetween and generates heteropolar magnetic fields in a third magnetization yoke and a fourth magnetization yoke that are opposed to each other in a radial direction with the third magnetic body before magnetization interposed therebetween, and

the heteropolar magnetizing unit makes an amount of magnetic flux that flows through the first magnetic body larger than an amount of magnetic flux that flows through the third magnetic body.

6 . The magnetization apparatus according to claim 5 , further comprising a homopolar magnetizing unit configured to magnetize the second magnetic body by generating homopolar magnetic fields in the first magnetization yoke and the second magnetization yoke in such a way that a magnetic flux propagates toward the first magnetic body and by generating homopolar magnetic fields in the third magnetization yoke and the fourth magnetization yoke in such a way that a magnetic flux propagates away from the third magnetic body,

wherein the homopolar magnetizing unit generates homopolar magnetic fields before generation of the heteropolar magnetic fields in the heteropolar magnetizing unit.

7 . The magnetization apparatus according to claim 5 , wherein the heteropolar magnetizing unit makes magnetic fields generated in the first magnetization yoke and the second magnetization yoke larger than magnetic fields generated in the third magnetization yoke and the fourth magnetization yoke, whereby an amount of magnetic flux that flows through the first magnetic body is made larger than an amount of magnetic flux that flows through the third magnetic body.

8 . The magnetization apparatus according to claim 5 , wherein the heteropolar magnetizing unit performs arrangement in such a way that an arrangement gap between the first magnetization yoke and the first magnetic body and between the second magnetization yoke and the first magnetic body is made smaller than an arrangement gap between the third magnetization yoke and the third magnetic body and between the fourth magnetization yoke and the third magnetic body, whereby an amount of magnetic flux that flows through the first magnetic body is made larger than an amount of magnetic flux that flows through the third magnetic body.

9 . A magnetization apparatus for magnetizing a plurality of magnetic bodies in which at least a first magnetic body, a second magnetic body, and a third magnetic body are aligned, the magnetization apparatus comprising:

at least one memory storing instructions; and

at least one processor configured to execute the instructions to do a heteropolar magnetization process for generating heteropolar magnetic fields in a first magnetization yoke and a second magnetization yoke that are opposed to each other in a radial direction with the first magnetic body before magnetization interposed therebetween and generating heteropolar magnetic fields in a third magnetization yoke and a fourth magnetization yoke that are opposed to each other in a radial direction with the third magnetic body before magnetization interposed therebetween, wherein

in the heteropolar magnetization process, an amount of magnetic flux that flows through the first magnetic body is made larger than an amount of magnetic flux that flows through the third magnetic body.