IP Library Granted Patent US 11,168,943
Granted Patent B2
US 11,168,943 · App. 16/158,470 · Granted Nov 9, 2021

Channel fin heat exchangers and methods of manufacturing the same

Inventor: Yen-Chu Chi (Montgomery, AL)
Assignee: API Heat Transfer Thermasys Corporation
F28D9/0062F28F3/025F28F2240/00
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Quick Facts
Patent No.
US 11,168,943
App. No.
16/158,470
Granted
Nov 9, 2021
Kind
B2
Abstract

A heat exchanger having alternating first and second fluid passages with perpendicular flow directions separated by channels, spacer bars located at sides of the first fluid passages, side walls located at sides of the second fluid passages that are formed by folded portions of pairs of adjacent channels coupled to form a joint, fins located within the fluid passages, and side panels located at and sealing oppositely disposed ends of the series of alternating fluid passages. The heat exchanger can be produced with methods that include providing and advancing a continuous, elongated strip of material along a path, flattening the strip, folding edges of the strip to define partial fold patterns, cutting a formed portion of the strip to produce one of the channels, and assembling pairs of the channels such that the respective partial fold patterns interlock or overlap to define a joint.

Claims (28)

1. A heat exchanger comprising:

a series of alternating first and second fluid passages, the first fluid passages having a first flow direction and the second fluid passages having a second flow direction perpendicular to the first flow direction;

channels each having a longitudinal axis parallel to the second flow direction and being located between and separating the first and second fluid passages, the channels being formed of a multilayer of a braze clad alloy or a multilayer of a brazing material, the channels comprising adjacent pairs of the channels each comprising first and second channels coupled together to form the second fluid passages;

side walls located at and sealing sides of the second fluid passages, the side walls having longitudinal axes parallel to the second flow direction and perpendicular to the first flow direction, the side walls being formed by folded portions of the adjacent pairs of the channels, the folded portions of the adjacent pairs of the channels each having a longitudinal axis parallel to the longitudinal axes of the channels and being coupled together to form a joint, the folded portions of at least a first adjacent pair of the adjacent pairs of the channels comprising:

at least one U-shaped pair of adjacent folded portions formed in the first channel to define a spacing therebetween, the spacing extending along a longitudinal length of the first channel and having a width in a direction transverse to the longitudinal axis of the first channel;

at least a first V-shaped pair of adjacent folded portions formed in the second channel, the first V-shaped pair of adjacent folded portions extending along a longitudinal length of the second channel, having a width in a direction transverse to the longitudinal axis of the second channel, and defining an angle therebetween to define a gap between the first V-shaped pair of adjacent folded portions;

at least a second V-shaped pair of adjacent folded portions formed in the second channel to define a second spacing between the first and second V-shaped pairs of adjacent folded portions in the second channel, the second V-shaped pair of adjacent folded portions having a width in a direction transverse to the longitudinal axis of the second channel and extending along the longitudinal length of the second channel; and

at least a third V-shaped pair of adjacent folded portions formed in the first channel;

wherein the first V-shaped pair of adjacent folded portions of the second channel is received within the width of the spacing of the first channel, the first V-shaped pair of adjacent folded portions has an interference fit with the U-shaped pair of adjacent folded portions of the first channel, a brazing clearance is present within the gap between the first V-shaped pair of adjacent folded portions, and a braze material is within the brazing clearance;

wherein the third V-shaped pair of adjacent folded portions of the first channel is received within the second spacing of the second channel and has an interference fit with the second spacing.

2. The heat exchanger of claim 1 , wherein the side walls have a thickness in a direction parallel to the first flow direction that is larger than a thickness of portions of the channels between the first and second fluid passages in a direction perpendicular to both the first and second flow directions.

3. The heat exchanger of claim 1 , further comprising:

spacer bars located at and sealing sides of the first fluid passages, the spacers bars having longitudinal axes parallel to the first flow direction and perpendicular to the second flow direction;

fins located within the first and second fluid passages; and

side panels located at and sealing oppositely disposed ends of the series of alternating first and second fluid passages.

4. The heat exchanger of claim 1 , wherein the angle between the V-shaped pair of adjacent folded portions of the second channel is less than 3.6 degrees.

5. The heat exchanger of claim 1 , wherein the width of the spacing of the U-shaped pair of adjacent folded portions of the first channel is greater than combined thicknesses of the first V-shaped pair of adjacent folded portions of the second channel.

6. A heat exchanger comprising:

a series of alternating first and second fluid passages, the first fluid passages having a first flow direction and the second fluid passages having a second flow direction perpendicular to the first flow direction;

channels located between and separating the first and second fluid passages, the channels being formed of a multilayer of a braze clad alloy or a multilayer of a brazing material; and

side walls located at and sealing sides of the second fluid passages, the side walls having longitudinal axes parallel to the second flow direction and perpendicular to the first flow direction, the side walls being formed by folded portions of adjacent pairs of the channels coupled to form a joint;

wherein a first of the channels includes at least one spacing that is defined between two folded portions and is configured to receive a V-shaped pair of adjacent folded portions of a second of the channels, and the V-shaped pair of adjacent folded portions is configured to be received into the spacing to define a brazing clearance between the V-shaped pair of adjacent folded portions and the two folded portions of less than 0.127 mm.

7. The heat exchanger of claim 1 , wherein the first V-shaped pair of adjacent folded portions of the second channel is metallurgically joined to the U-shaped pair of adjacent folded portions of the first channel.

8. A heat exchanger comprising:

a series of alternating first and second fluid passages, the first fluid passages having a first flow direction and the second fluid passages having a second flow direction perpendicular to the first flow direction;

channels located between and separating the first and second fluid passages, the channels being formed of a multilayer of a braze clad alloy or a multilayer of a brazing material; and

side walls located at and sealing sides of the second fluid passages, the side walls having longitudinal axes parallel to the second flow direction and perpendicular to the first flow direction, the side walls being formed by folded portions of adjacent pairs of the channels coupled to form a joint;

wherein a first of the channels includes at least one spacing that is defined between two folded portions and is configured to receive a V-shaped pair of adjacent folded portions, and the V-shaped pair of adjacent folded portions is configured to be received into the spacing to define a brazing clearance between the V-shaped pair of adjacent folded portions and the two folded portions of less than 0.127 mm.

Assignments (5)
PATENT SECURITY AGREEMENT Recorded Nov 14, 2023
From: API HEAT TRANSFER THERMASYS CORPORATION; API HEAT TRANSFER INC.
To: ALTER DOMUS (US) LLC, AS ADMINISTRATIVE AGENT AND COLLATERAL AGENT
Reel/Frame 065564/0790 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 24, 2021
From: VENTECH, INC.
To: API HEAT TRANSFER THERMASYS CORPORATION
Reel/Frame 056332/0061 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 26, 2021
From: JENKINS, LANCE; CHI, YEN-CHU
To: VENTECH, INC.
Reel/Frame 055427/0692 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 15, 2021
From: VENTI TECH, INC.
To: JENKINS, LANCE; CHI, YEN-CHU
Reel/Frame 055326/0611 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 16, 2019
From: CHI, YEN-CHU
To: VENTI TECH INC.
Reel/Frame 051287/0375 →
Continuity (1)
Related Publication 20200116432A1 · Apr 16, 2020