IP Library Granted Patent US 11,965,700
Granted Patent B2
US 11,965,700 · App. 17/297,147 · Granted Apr 23, 2024

Heat exchanger for cooling multiple fluids

Inventor: Tobias Schumacher (Walddorfhäslach, DE)
Assignee: Modine Manufacturing Company
F28D9/0093F28D9/005F28F9/0221F01M5/002F16H57/0415F28F3/044
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Quick Facts
Patent No.
US 11,965,700
App. No.
17/297,147
Granted
Apr 23, 2024
Kind
B2
Abstract

A heat exchanger having a stack of nested shells joined to a base plate includes two coolant manifolds and four fluid manifolds extending through the stack. The coolant manifolds extend the entire length of the stack in the stacking direction. Two of the fluid manifolds extend from one end of the stack to an intermediate location along the stacking direction, and the other two fluid manifolds extend from the other end of the stack to the intermediate location. Fluid transfer conduits extend through the stack, from a face of the base plate opposite the stack to the fluid manifolds at the end of the stack opposite the base plate, in order to transfer fluid to and from fluid flow passages extending between those fluid manifolds at that end of the stack.

Claims (44)

1. A heat exchanger comprising:

a stack of nested shells extending in a stacking direction from a first end to a second end;

a base plate arranged at the first end, the stack of nested shells being mounted to a first face of the base plate;

a cap plate arranged at the second end and joined to the stack of nested shells;

a first and a second coolant manifold extending through the stack of nested shells from the first end to the second end;

a plurality of coolant flow passages formed between nested shells of the stack to fluidly connect the first and second coolant manifolds;

a plurality of fluid flow passages formed between nested shells of the stack, the plurality of fluid flow passages being interleaved with the plurality of coolant flow passages;

a first and a second fluid manifold extending through the stack of nested shells from the first end to an intermediate location between the first end and the second end along the stacking direction, the first and second fluid manifolds being fluidly connected by those ones of the fluid flow passages that are located between the first end and the intermediate location, the first and second fluid manifolds additionally extending through the base plate from the first face to a second face of the base plate opposite the first face;

a third and a fourth fluid manifold extending through the stack of nested shells from the second end to the intermediate location, the third and fourth fluid manifolds being fluidly connected by those ones of the fluid flow passages that are located between the second end and the intermediate location; and

a first and a second fluid transfer conduit extending through the base plate to the third and fourth fluid manifolds respectively, each of the first and second fluid transfer conduits including a first section extending in the stacking direction through the stack of nested shells, and a second section formed into the cap plate.

2. A heat exchanger comprising:

a stack of nested shells extending in a stacking direction from a first end to a second end;

a base plate arranged at the first end, the stack of nested shells being mounted to a first face of the base plate;

a cap plate arranged at the second end and joined to the stack of nested shells;

a first and a second coolant manifold extending through the stack of nested shells from the first end to the second end;

a plurality of coolant flow passages formed between nested shells of the stack to fluidly connect the first and second coolant manifolds;

a plurality of fluid flow passages formed between nested shells of the stack, the plurality of fluid flow passages being interleaved with the plurality of coolant flow passages;

a first and a second fluid manifold extending through the stack of nested shells from the first end to an intermediate location between the first end and the second end along the stacking direction, the first and second fluid manifolds being fluidly connected by those ones of the fluid flow passages that are located between the first end and the intermediate location, the first and second fluid manifolds additionally extending through the base plate from the first face to a second face of the base plate opposite the first face;

a third and a fourth fluid manifold extending through the stack of nested shells from the second end to the intermediate location, the third and fourth fluid manifolds being fluidly connected by those ones of the fluid flow passages that are located between the second end and the intermediate location; and

a first and a second fluid transfer conduit extending from the second face to the third and fourth fluid manifolds respectively, each of the first and second fluid transfer conduits including a first section extending in the stacking direction through the stack of nested shells, and a second section formed into the cap plate,

wherein the second section of the first fluid transfer conduit and the second section of the second fluid transfer conduit are each at least partially defined by an elongated bulge formed into the cap plate.

3. The heat exchanger of claim 2 , wherein the elongated bulge has an arcuate cross-section.

4. The heat exchanger of claim 1 , wherein the third fluid manifold is aligned with the first fluid manifold and the fourth fluid manifold is aligned with the second fluid manifold.

5. The heat exchanger of claim 4 , wherein first and the third fluid manifolds are separated by a first flow barrier and the second and the fourth fluid manifolds are separated by a second flow barrier, each of the first and second flow barriers being formed into at least one of the nested shells.

6. The heat exchanger of claim 1 , wherein the first and second coolant manifolds and the first, second, third, and fourth fluid manifolds are each defined by aligned apertures of the nested shells.

7. The heat exchanger of claim 6 , wherein the nested shells have a rectangular shape and wherein said apertures are arranged at corners of the nested shells.

8. The heat exchanger of claim 7 , wherein each one of the nested shells has a long direction and a short direction and wherein the first section of the first fluid transfer conduit and the first section of the second fluid transfer conduit are arranged at opposing ends of the stack in the long direction.

9. The heat exchanger of claim 8 , wherein the first section of the first fluid transfer conduit is arranged between the first coolant manifold and the first and third fluid manifolds and wherein the first section of the second fluid transfer conduit is arranged between the second coolant manifold and the second and fourth fluid manifolds.

10. The heat exchanger of claim 1 , wherein the first section of the first fluid transfer conduit and the first section of the second fluid transfer conduit are each at least partially defined by aligned apertures of the nested shells, each of said apertures being surrounded by an upturned flange that nests with the upturned flanges of the adjacent shells to hydraulically separate the first sections from the plurality of coolant flow passages and the plurality of fluid flow passages.

11. The heat exchanger of claim 1 , wherein the plurality of fluid flow passages includes a first quantity of fluid flow passages located between the first end and the intermediate location and a second quantity of fluid flow passages located between the second end and the intermediate location, wherein the second quantity is equal to the first quantity.

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

a coolant inlet port arranged on the cap plate and in fluid communication with one of the first and second coolant manifolds; and

a coolant outlet port arranged on the cap plate and in fluid communication with another of the first and second coolant manifolds;

wherein the second section of the first fluid transfer conduit and the second section of the second fluid transfer conduit are each at least partially defined by an elongated bulge formed into the cap plate.

13. The heat exchanger of claim 2 , wherein the third fluid manifold is aligned with the first fluid manifold and the fourth fluid manifold is aligned with the second fluid manifold.

14. The heat exchanger of claim 13 , wherein first and the third fluid manifolds are separated by a first flow barrier and the second and the fourth fluid manifolds are separated by a second flow barrier, each of the first and second flow barriers being formed into at least one of the nested shells.

15. The heat exchanger of claim 2 , wherein the first and second coolant manifolds and the first, second, third, and fourth fluid manifolds are each defined by aligned apertures of the nested shells, wherein the nested shells have a rectangular shape and wherein said apertures are arranged at corners of the nested shells.

16. The heat exchanger of claim 15 , wherein each one of the nested shells has a long direction and a short direction and wherein the first section of the first fluid transfer conduit and the first section of the second fluid transfer conduit are arranged at opposing ends of the stack in the long direction.

17. The heat exchanger of claim 16 , wherein the first section of the first fluid transfer conduit is arranged between the first coolant manifold and the first and third fluid manifolds and wherein the first section of the second fluid transfer conduit is arranged between the second coolant manifold and the second and fourth fluid manifolds.

18. The heat exchanger of claim 2 , wherein the first section of the first fluid transfer conduit and the first section of the second fluid transfer conduit are each at least partially defined by aligned apertures of the nested shells, each of said apertures being surrounded by an upturned flange that nests with the upturned flanges of the adjacent shells to hydraulically separate the first sections from the plurality of coolant flow passages and the plurality of fluid flow passages.

19. The heat exchanger of claim 2 , wherein the plurality of fluid flow passages includes a first quantity of fluid flow passages located between the first end and the intermediate location and a second quantity of fluid flow passages located between the second end and the intermediate location, wherein the second quantity is equal to the first quantity.

20. The heat exchanger of claim 2 , further comprising:

a coolant inlet port arranged on the cap plate and in fluid communication with one of the first and second coolant manifolds; and

a coolant outlet port arranged on the cap plate and in fluid communication with another of the first and second coolant manifolds.

Assignments (2)
SECURITY INTEREST Recorded Oct 12, 2022
From: MODINE MANUFACTURING COMPANY
To: JPMORGAN CHASE BANK, N.A., AS COLLATERAL AGENT
Reel/Frame 061394/0127 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 24, 2021
From: SCHUMACHER, TOBIAS
To: MODINE MANUFACTURING COMPANY
Reel/Frame 056653/0638 →
Cited By (2)
US 12,366,418 US 12,590,763