IP Library Granted Patent US 12,540,779
Granted Patent B2
US 12,540,779 · App. 18/263,034 · Granted Feb 3, 2026

Cooling structure

Inventors: Yuji Fukukawa (Tokyo, JP); Takahiro Yamashita (Tagawa, JP); Hiroaki Shoda (Tagawa, JP)
Assignee: RESONAC CORPORATION
F28F3/02F28D3/02H05K7/209
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Quick Facts
Patent No.
US 12,540,779
App. No.
18/263,034
Granted
Feb 3, 2026
Kind
B2
Abstract

A cooling structure includes a flow path-forming member that forms a flow path for a refrigerant to pass through, wherein: the flow path-forming member includes, on a basal inner wall thereof, a cooling fin installation section provided with at least one cooling fin projecting from the basal inner wall toward an inner side of the flow path, the cooling fin installation section being disposed separately from side inner walls of the flow path-forming member; and the flow path-forming member includes, on a side inner wall thereof, at least one obstacle projecting from the side inner wall toward the inner side of the flow path.

Claims (37)

1 . A cooling structure, comprising a flow path-forming member that forms a flow path for a refrigerant, wherein:

the flow path-forming member comprises, on a basal inner wall thereof, a cooling fin installation section provided with at least one cooling fin projecting from the basal inner wall toward an inner side of the flow path, the cooling fin installation section being disposed separately from side inner walls of the flow path-forming member;

the flow path-forming member comprises, on a side inner wall thereof, at least one obstacle projecting from the side inner wall toward the inner side of the flow path; and

the cooling structure comprises at least one combination of an obstacle A and a cooling fin B that satisfy a relationship according to the following formula, the obstacle A being one of the at least one obstacle, and the cooling fin B being a cooling fin located closest to the obstacle A among the at least one cooling fin:

a≥b   Formula:

wherein:

a is a length of the obstacle A in a width direction of the flow path; and

b is a minimum distance between the cooling fin B and the side inner walls of the flow path-forming member.

2 . The cooling structure according to claim 1 , wherein:

the flow path includes a narrow part at which the flow path is narrowed, and

the cooling fin installation section is provided at the narrow part of the flow path.

3 . The cooling structure according to claim 1 , wherein, when viewing the flow path from a side toward which the cooling fin projects, the at least one cooling fin and the at least one obstacle are arranged such that any straight line parallel to a flow path longitudinal direction intersects at least one selected from the group consisting of the at least one cooling fin and the at least one obstacle, within a section formed by visually extending the cooling fin installation section to the side inner walls of the flow path-forming member in a width direction.

4 . The cooling structure according to claim 1 , wherein an average length of the at least one cooling fin in a width direction of the flow path is from 0.5 mm to 20.0 mm.

5 . The cooling structure according to claim 1 , wherein an average length of the at least one obstacle in a width direction of the flow path is from 0.25 mm to 10.0 mm.

6 . The cooling structure according to claim 1 , wherein a plurality of the at least one cooling fin are provided in the cooling fin installation section.

7 . The cooling structure according to claim 1 , wherein a plurality of the at least one obstacle are provided in a region corresponding to the cooling fin installation section at the side inner walls of the flow path-forming member.

8 . A cooling structure, comprising a flow path-forming member that forms a flow path for a refrigerant, wherein:

the flow path-forming member comprises, on a basal inner wall thereof, a cooling fin installation section provided with at least one cooling fin projecting from the basal inner wall toward an inner side of the flow path, the cooling fin installation section being disposed separately from side inner walls of the flow path-forming member;

the flow path-forming member comprises, on a side inner wall thereof, at least one obstacle projecting from the side inner wall toward the inner side of the flow path; and

a relationship according to the following formula is satisfied:

c≥d   Formula:

wherein:

c is an average length of the at least one obstacle in a width direction of the flow path; and

d is a minimum distance between the at least one cooling fin and the side inner walls of the flow path-forming member.

9 . The cooling structure according to claim 8 , wherein:

the flow path includes a narrow part at which the flow path is narrowed, and

the cooling fin installation section is provided at the narrow part of the flow path.

10 . The cooling structure according to claim 8 , comprising at least one combination of an obstacle A and a cooling fin B that satisfy a relationship according to the following formula, the obstacle A being one of the at least one obstacle, and the cooling fin B being a cooling fin located closest to the obstacle A among the at least one cooling fin:

a≥b   Formula:

wherein:

a is a length of the obstacle A in a width direction of the flow path; and

b is a minimum distance between the cooling fin B and the side inner walls of the flow path-forming member.

11 . The cooling structure according to claim 8 , wherein, when viewing the flow path from a side toward which the cooling fin projects, the at least one cooling fin and the at least one obstacle are arranged such that any straight line parallel to a flow path longitudinal direction intersects at least one selected from the group consisting of the at least one cooling fin and the at least one obstacle, within a section formed by visually extending the cooling fin installation section to the side inner walls of the flow path-forming member in a width direction.

12 . The cooling structure according to claim 8 , wherein an average length of the at least one cooling fin in a width direction of the flow path is from 0.5 mm to 20.0 mm.

13 . The cooling structure according to claim 8 , wherein an average length of the at least one obstacle in a width direction of the flow path is from 0.25 mm to 10.0 mm.

14 . The cooling structure according to any claim 8 , wherein a plurality of the at least one cooling fin are provided in the cooling fin installation section.

15 . The cooling structure according to claim 8 , wherein a plurality of the at least one obstacle are provided in a region corresponding to the cooling fin installation section at the side inner walls of the flow path-forming member.

Assignments (2)
CHANGE OF ADDRESS Recorded Feb 9, 2024
From: RESONAC CORPORATION
To: RESONAC CORPORATION
Reel/Frame 066547/0677 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 27, 2023
From: FUKUKAWA, YUJI; YAMASHITA, TAKAHIRO; SHODA, HIROAKI
To: RESONAC CORPORATION
Reel/Frame 064406/0852 →
Priority Claims (1)
JP 2021-011481 · Jan 27, 2021 · national
Continuity (1)
Related Publication 20240098949A1 · Mar 21, 2024
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