IP Library Granted Patent US 12,671,023
Granted Patent B2
US 12,671,023 · App. 18/021,073 · Granted Jun 30, 2026

Reactor, converter, and power conversion device

Inventors: Masaya Murashita (Mie, JP); Kazuhiro Inaba (Mie, JP)
Assignees: AUTONETWORKS TECHNOLOGIES, LTD.; SUMITOMO WIRING SYSTEMS, LTD.; SUMITOMO ELECTRIC INDUSTRIES, LTD.
H01F27/24H01F27/28H02M7/537
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Quick Facts
Patent No.
US 12,671,023
App. No.
18/021,073
Granted
Jun 30, 2026
Kind
B2
Abstract

A reactor is provided with a coil and a magnetic core. The magnetic core includes a first core and a second core formed into a θ shape by being combined in an X direction. The first core includes a first end core part, at least a part of a middle core part, at least parts of both side core parts including a first side core part and a second side core part. The second core includes a second end core part, a remaining part of the middle core part and remaining parts of the first and second side core parts. Each of the first and second side core parts of the first core has a tip surface. A surface of the second core has facing surfaces facing the tip surfaces. The tip surface has a first chamfered portion.

Claims (44)

1 . A reactor, comprising:

a coil; and

a magnetic core,

the magnetic core including a first core and a second core formed into a θ shape by being combined in an X direction,

the first core including a first end core part, at least a part of a middle core part and at least parts of both side core parts including a first side core part and a second side core part,

the second core including a second end core part, a remaining part of the middle core part and remaining parts of the first and second side core parts,

the first end core part facing a first end surface of the coil,

the second end core part facing a second end surface of the coil,

the middle core part being arranged inside the coil,

the first and second side core parts being arranged outside the coil to sandwich the middle core part,

each of the first and second side core parts of the first core having a tip surface facing the second core,

a surface of the second core having facing surfaces facing the tip surfaces,

an outer side edge of the facing surface being located inwardly of an outer side edge of the tip surface in a Y direction or aligned with the outer side edge of the tip surface in the Y direction and an inner side edge of the facing surface and that of the tip surface being substantially aligned in the Y direction when the magnetic core is viewed from a Z direction,

the tip surface having a first chamfered portion along the Z direction,

the first chamfered portion including at least a first outer chamfered portion, out of the first outer chamfered portion connected to the outer side edge of the tip surface and a first inner chamfered portion connected to the inner side edge of the tip surface,

a chamfer width of the first outer chamfered portion being larger than that of the first inner chamfered portion,

the X direction being a direction along an axial direction of the middle core part,

the Y direction being a parallel direction of the middle core part, the first side core part and the second side core part,

the Z direction being a direction orthogonal to both the X direction and the Y direction,

the outer side edge of the facing surface being located inwardly in the Y direction of the outer side edge of the tip surface, and

a width in the Y direction of the facing surface being shorter than a width in the Y direction of the tip surface.

2 . The reactor of claim 1 , wherein the chamfer width of the first outer chamfered portion is 10% or more and 45% or less of a width in the Y direction of the tip surface.

3 . The reactor of claim 1 , wherein the chamfer width of the first inner chamfered portion is 12.5% or less of a width in the Y direction of the tip surface.

4 . The reactor of claim 1 , wherein the chamfer width of the first inner chamfered portion is 2 mm or less.

5 . The reactor of claim 1 , wherein the first outer chamfered portion is roundly chamfered.

6 . The reactor of claim 1 , wherein:

the first core is a compact of a composite material, a soft magnetic powder being dispersed in a resin in the composite material, and

the second core is a powder compact made of a raw powder containing a soft magnetic powder.

7 . The reactor of claim 1 , wherein a relative magnetic permeability of the first core is 5 or more and 50 or less.

8 . The reactor of claim 1 , wherein a relative magnetic permeability of the second core is 50 or more and 500 or less.

9 . The reactor of claim 1 , wherein the relative magnetic permeability of the second core is higher than that of the first core.

10 . The reactor of claim 1 , wherein the width in the Y direction of the facing surface is 60% or more and 92% or less of the width in the Y direction of the tip surface.

11 . The reactor of claim 1 , wherein:

the facing surface has a second chamfered portion along the Z direction,

the second chamfered portion includes at least a second outer chamfered portion, out of the second outer chamfered portion connected to the outer side edge of the facing surface and a second inner chamfered portion connected to the inner side edge of the facing surface, and

a chamfer width of the second outer chamfered portion is larger than that of the second inner chamfered portion.

12 . The reactor of claim 1 , wherein:

the first core includes each of the first and second side core parts entirely, and

the facing surfaces are provided on the second end core part of the second core.

13 . The reactor of claim 1 , wherein:

the first core includes a part of each of the first and second side core parts, and

the facing surface is provided on the remaining part of each of the first and second side core parts of the second core.

14 . A converter, comprising the reactor of claim 1 .

15 . A power conversion device, comprising the converter of claim 14 .