IP Library › Granted Patent US 11,181,329
Granted Patent B2
US 11,181,329 · App. 16/922,819 · Granted Nov 23, 2021

Monolithic bicontinuous labyrinth structures and methods for their manufacture

Inventor: Joseph T. Manzo (Tempe, AZ)
Assignee: Titan Tensor LLC
F28F7/02B22F3/1115B22F5/10B22F10/20B23K15/0086B23K26/342B33Y10/00B33Y80/00F28F13/12F28F27/00B22F2999/00F28F2250/10F28F2250/104F28F2250/106F28F2255/18F28F2260/02
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Quick Facts
Patent No.
US 11,181,329
App. No.
16/922,819
Granted
Nov 23, 2021
Kind
B2
Abstract

A heat exchanger includes a core comprising a single piece continuous boundary having a first surface defining a first labyrinth, and an opposing second surface defining a second labyrinth; a first inlet manifold connected to the first labyrinth and configured to supply a first fluid to the first labyrinth; and a second inlet manifold connected to the second labyrinth and configured to supply a second fluid to the second labyrinth; wherein the core comprises a plurality of identical three dimensional unit cell structures replicated in three orthogonal spatial dimensions.

Claims (42)

1. A heat exchanger, comprising:

a core comprising a single piece continuous boundary having a first surface defining a first labyrinth, and an opposing second surface defining a second labyrinth;

a first inlet manifold having a first inlet interface in fluid communication with the first labyrinth; and

a second inlet manifold configured to supply a second fluid to the second labyrinth;

wherein:

the core comprises a plurality of three dimensional unit cell structures replicated in three orthogonal spatial dimensions; and

the first inlet interface comprises a first inlet finning structure configured to selectively direct the first fluid away from the second labyrinth and selectively direct the first fluid into the first labyrinth.

2. The heat exchanger of claim 1 , wherein the unit cell structure exhibits substantially zero mean Gaussian curvature.

3. The heat exchanger of claim 2 , wherein the core exhibits substantially zero mean Gaussian curvature.

4. The heat exchanger of claim 3 , wherein the core is substantially devoid of braze and weld joints.

5. The heat exchanger of claim 1 , wherein:

the unit cell structure is characterized by a lattice parameter and a boundary thickness; and

the lattice parameter and boundary thickness are configurable to define respective hydraulic diameters and flow volumes for the first and second labyrinths.

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

a first discharge manifold configured to exhaust the first fluid from the first labyrinth; and

a second discharge manifold configured to exhaust the second fluid to the second labyrinth.

7. The heat exchanger of claim 1 , wherein the first labyrinth is hydraulically isolated from the second labyrinth.

8. The heat exchanger of claim 1 , wherein the first labyrinth is pneumatically isolated from the second labyrinth.

9. The heat exchanger of claim 1 , wherein the first labyrinth is intertwined with but does not intersect the second labyrinth within the core interior.

10. The heat exchanger of claim 1 , wherein:

the second inlet manifold defines a second inlet interface with the second labyrinth; and

the second inlet interface comprises a second inlet finning structure configured to selectively direct the second fluid away from the first labyrinth and selectively direct the second fluid into the second labyrinth.

11. The heat exchanger of claim 6 , wherein the first discharge manifold defines a first discharge interface with the first labyrinth, and the second discharge manifold defines a second discharge interface with the second labyrinth.

12. The heat exchanger of claim 11 , wherein:

the first discharge interface comprises a first discharge finning structure configured to close off the second labyrinth and selectively receive the first fluid from the first labyrinth; and

the second discharge interface comprises a second discharge finning structure configured to close off the first labyrinth and selectively receive the second fluid from the second labyrinth.

13. The heat exchanger of claim 10 , wherein the core, the first inlet finning structure, and the second inlet finning structure together comprise an integral monolithic structure fabricated using additive manufacturing techniques.

14. The heat exchanger of claim 12 , wherein the core, the first discharge finning structure, and the second discharge finning structure together comprise an integral monolithic structure fabricated using additive manufacturing techniques.

15. The heat exchanger of claim 1 , further comprising a support frame enclosing the core, wherein the frame and the core together comprise an integral monolithic structure fabricated using additive manufacturing techniques.

16. The heat exchanger of claim 1 , wherein:

the first labyrinth comprises a first continuous flow channel;

the second labyrinth comprises a second continuous flow channel; and

the heat exchanger further comprises a plurality of secondary surfaces extending inwardly from at least one of the first and second channel walls;

wherein the secondary surfaces are configured to: i) increase the heat exchange surface area: and ii) promote turbulent flow.

17. The heat exchanger of claim 16 , wherein the secondary surfaces and the core together comprise an integral monolithic structure fabricated using additive manufacturing techniques.

18. The heat exchanger of claim 1 , wherein:

the first labyrinth comprises a first group of cells having a first cross-sectional area, and a second group of cells having a second cross-sectional area greater than the first cross-sectional area; and

the first group of cells are disposed proximate to the flow axis, and the second group of cells are disposed remote from the flow axis proximate to an external wall of the first labyrinth.

19. The heat exchanger of claim 1 , wherein:

the first fluid comprises a first reactant and the second fluid comprises a thermal control fluid; and

the first inlet manifold is configured to simultaneously supply the first reactant and a second reactant to the first labyrinth.

20. The heat exchanger of claim 19 , further comprising a thermocouple configured to monitor the temperature within the first labyrinth and to modulate the flow rate of the thermal control fluid as a function of the monitored temperature.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 7, 2020
From: MANZO, JOSEPH T.
To: TITAN TENSOR LLC
Reel/Frame 053142/0684 →
Continuity (3)
Continuation 15806839 · Nov 8, 2017
Provisional Application 62441784 · Jan 3, 2017
Related Publication 20200333088A1 · Oct 22, 2020