IP Library Granted Patent US 10,184,699
Granted Patent B2
US 10,184,699 · App. 14/846,758 · Granted Jan 22, 2019

Fluid distribution unit for two-phase cooling system

Inventors: Timothy A. Shedd (Middleton, WI); Mark S. Meives (Waukesha, WI)
Assignee: EBULLIENT, INC.
F25B23/006F25B41/003F28D15/00F28F3/12F28F9/26F28F13/02H05K7/20327
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Quick Facts
Patent No.
US 10,184,699
App. No.
14/846,758
Granted
Jan 22, 2019
Kind
B2
Abstract

A fluid distribution unit for a two-phase cooling system can include a reservoir configured to receive a two-phase flow of dielectric coolant. A first pump can be fluidly connected to a supply line extending from the reservoir. A heat rejection loop can be fluidly connected to the reservoir. The heat rejection loop can include a heat exchanger and a second pump. The second pump can be configured to circulate a flow of single-phase liquid coolant from the reservoir, through the heat exchanger, and back to the reservoir.

Claims (42)

1. A fluid distribution unit for a two-phase cooling system, the fluid distribution unit comprising:

a reservoir comprising an inner volume configured to receive a two-phase flow of dielectric coolant comprising liquid coolant and vapor coolant;

a supply line comprising a first end and a second end, the first end of the supply line being fluidly connected to the reservoir;

a first pump fluidly connected between the first end of the supply line and the second end of the supply line;

a return line comprising a first end and a second end, the second end of the return line being fluidly connected to the reservoir; and

a heat rejection loop comprising: a first end and a second end, the first end of the heat rejection loop being fluidly connected to the reservoir, the second end of the heat rejection loop being fluidly connected to the reservoir; a heat exchanger fluidly connected to the heat rejection loop between the first end of the heat rejection loop and the second end of the heat rejection loop; and a second pump fluidly connected to the heat rejection loop between the first end of the heat rejection loop and the second end of the heat rejection loop, the second pump configured to circulate a flow of single-phase liquid coolant from the reservoir, through the heat exchanger, and back to the reservoir,

wherein the heat exchanger is a liquid-to-liquid heat exchanger comprising: a first isolated fluid pathway configured to transport dielectric coolant received from the heat rejection loop; and a second isolated fluid pathway configured to transport a fluid comprising water.

2. The fluid distribution unit of claim 1 , wherein the first end of the supply line is fluidly connected to the reservoir at a first location, and the second end of the return line is fluidly connected to the reservoir at a second location, the first location being lower on the reservoir than the second location, measured vertically between midpoints of the first location and the second location.

3. The fluid distribution unit of claim 1 , wherein the first end of the heat rejection loop is fluidly connected to the reservoir at a third location, and the second end of the heat rejection loop is fluidly connected to the reservoir at a fourth location, the third location being lower on the reservoir than the fourth location, measured vertically between midpoints of the third location and the fourth location.

4. The fluid distribution unit of claim 1 , wherein the second pump is located upstream of the heat exchanger.

5. The fluid distribution unit of claim 1 , further comprising a baffle in the inner volume of the reservoir, the baffle establishing only non-linear flow pathways between reservoir flow inlets and reservoir flow outlets, reservoir flow inlets comprising the second end of the return line and the first end of the heat rejection loop, and reservoir flow outlets comprising the first end of the supply line and the second end of the heat rejection loop.

6. The fluid distribution unit of claim 1 , wherein the fluid distribution unit is configured to slidably engage with a server rack to permit rapid installation of the fluid distribution unit, wherein the second end of the supply line comprises a first fitting that is a blind-mate coupler comprising a first non-spill valve, and the first end of the return line comprises a second fitting that is a blind-mate quick-connect coupler comprising a second non-spill valve.

7. A fluid distribution unit for a two-phase cooling system, the fluid distribution unit comprising:

a reservoir comprising an inner volume configured to receive a two-phase flow of dielectric coolant comprising liquid coolant and vapor coolant;

a supply line comprising a first end and a second end, the first end of the supply line being fluidly connected to the reservoir;

a first pump fluidly connected between the first end of the supply line and the second end of the supply line;

a return line comprising a first end and a second end, the second end of the return line being fluidly connected to the reservoir;

a heat rejection loop comprising: a first end and a second end, the first end of the heat rejection loop being fluidly connected to the reservoir, the second end of the heat rejection loop being fluidly connected to the reservoir; a heat exchanger fluidly connected to the heat rejection loop between the first end of the heat rejection loop and the second end of the heat rejection loop; and a second pump fluidly connected to the heat rejection loop between the first end of the heat rejection loop and the second end of the heat rejection loop, the second pump configured to circulate a flow of single-phase liquid coolant from the reservoir, through the heat exchanger, and back to the reservoir;

a flow quality sensor attached to the return line and configured to provide an output signal based on a flow quality of two-phase flow passing through the return line to the reservoir; and

an electronic control unit, wherein the flow quality sensor is electrically connected to the electronic control unit to permit the output signal from the flow quality sensor to be received by the electronic control unit,

wherein the first pump comprises a first variable speed drive electrically connected to the electronic control unit, wherein the electronic control unit is configured to increase a speed of the first variable speed drive when the output signal from the flow quality sensor indicates a flow quality greater than about 0.3, 0.4, or 0.5.

8. The fluid distribution unit of claim 7 , wherein the electronic control unit is configured to decrease the speed of the first variable speed drive when the output signal from the flow quality sensor indicates a flow quality less than 0.1, 0.2, or 0.3.

9. The fluid distribution unit of claim 7 , wherein the first end of the supply line is fluidly connected to the reservoir at a first location, and the second end of the return line is fluidly connected to the reservoir at a second location, the first location being lower on the reservoir than the second location, measured vertically between midpoints of the first location and the second location.

10. The fluid distribution unit of claim 7 , wherein the first end of the heat rejection loop is fluidly connected to the reservoir at a third location, and the second end of the heat rejection loop is fluidly connected to the reservoir at a fourth location, the third location being lower on the reservoir than the fourth location, measured vertically between midpoints of the third location and the fourth location.

11. The fluid distribution unit of claim 7 , further comprising a baffle in the inner volume of the reservoir, the baffle establishing only non-linear flow pathways between reservoir flow inlets and reservoir flow outlets, reservoir flow inlets comprising the second end of the return line and the first end of the heat rejection loop, and reservoir flow outlets comprising the first end of the supply line and the second end of the heat rejection loop.

12. The fluid distribution unit of claim 7 , wherein the heat exchanger is a liquid-to-liquid heat exchanger comprising: a first isolated fluid pathway configured to transport dielectric coolant received from the heat rejection loop; and a second isolated fluid pathway configured to transport a fluid comprising water.

13. The fluid distribution unit of claim 7 , wherein the second pump comprises a second variable speed drive electrically connected to the electronic control unit, wherein the electronic control unit is configured to decrease a speed of the second variable speed drive when the output signal from the flow quality sensor indicates a flow quality less than 0.1, 0.2, or 0.3.

14. A fluid distribution unit for a two-phase cooling system, the fluid distribution unit comprising:

a reservoir comprising an inner volume configured to receive a two-phase flow of dielectric coolant comprising liquid coolant and vapor coolant;

a supply line comprising a first end and a second end, the first end of the supply line being fluidly connected to the reservoir;

a first pump fluidly connected between the first end of the supply line and the second end of the supply line;

a return line comprising a first end and a second end, the second end of the return line being fluidly connected to the reservoir;

a heat rejection loop comprising: a first end and a second end, the first end of the heat rejection loop being fluidly connected to the reservoir, the second end of the heat rejection loop being fluidly connected to the reservoir; a heat exchanger fluidly connected to the heat rejection loop between the first end of the heat rejection loop and the second end of the heat rejection loop; and a second pump fluidly connected to the heat rejection loop between the first end of the heat rejection loop and the second end of the heat rejection loop, the second pump configured to circulate a flow of single-phase liquid coolant from the reservoir, through the heat exchanger, and back to the reservoir;

a flow quality sensor attached to the return line and configured to provide an output signal based on a flow quality of two-phase flow passing through the return line to the reservoir; and

an electronic control unit, wherein the flow quality sensor is electrically connected to the electronic control unit to permit the output signal from the flow quality sensor to be received by the electronic control unit,

wherein the second pump comprises a second variable speed drive electrically connected to the electronic control unit, wherein the electronic control unit is configured to increase a speed of the second variable speed drive when the output signal from the flow quality sensor indicates a flow quality greater than 0.3, 0.4, or 0.5.

15. The fluid distribution unit of claim 14 , wherein the electronic control unit is configured to decrease the speed of the second variable speed drive when the output signal from the flow quality sensor indicates a flow quality less than 0.1, 0.2, or 0.3.

16. The fluid distribution unit of claim 14 , wherein the first end of the supply line is fluidly connected to the reservoir at a first location, and the second end of the return line is fluidly connected to the reservoir at a second location, the first location being lower on the reservoir than the second location, measured vertically between midpoints of the first location and the second location.

17. The fluid distribution unit of claim 14 , wherein the first end of the heat rejection loop is fluidly connected to the reservoir at a third location, and the second end of the heat rejection loop is fluidly connected to the reservoir at a fourth location, the third location being lower on the reservoir than the fourth location, measured vertically between midpoints of the third location and the fourth location.

18. The fluid distribution unit of claim 14 , wherein the heat exchanger is a liquid-to-liquid heat exchanger comprising: a first isolated fluid pathway configured to transport dielectric coolant received from the heat rejection loop; and a second isolated fluid pathway configured to transport a fluid comprising water.

19. The fluid distribution unit of claim 14 , wherein the first pump comprises a first variable speed drive electrically connected to the electronic control unit, wherein the electronic control unit is configured to increase a speed of the first variable speed drive when the output signal from the flow quality sensor indicates a flow quality greater than about 0.3, 0.4, or 0.5.

20. The fluid distribution unit of claim 14 , wherein the first pump comprises a first variable speed drive electrically connected to the electronic control unit, wherein the electronic control unit is configured to decrease a speed of the first variable speed drive when the output signal from the flow quality sensor indicates a flow quality less than 0.1, 0.2, or 0.3.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 17, 2016
From: EBULLIENT, LLC
To: EBULLIENT, INC.
Reel/Frame 039467/0751 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 2, 2016
From: SHEDD, TIMOTHY A.; MEIVES, MARK S.
To: EBULLIENT, LLC
Reel/Frame 037395/0442 →
Continuity (15)
Continuation In Part 14604727 · Jan 25, 2015
Continuation In Part 14612276 · Feb 2, 2015
Continuation In Part 14623524 · Feb 17, 2015
Continuation In Part 14644211 · Mar 11, 2015
Continuation In Part 14663465 · Mar 20, 2015
Continuation In Part 14677833 · Apr 2, 2015
Continuation In Part 14679026 · Apr 6, 2015
Continuation In Part 14705972 · May 7, 2015
Continuation In Part 14721532 · May 26, 2015
Continuation In Part 14723388 · May 27, 2015
Continuation In Part 14826822 · Aug 14, 2015
Provisional Application 62072421 · Oct 29, 2014
Provisional Application 62099200 · Jan 1, 2015
Provisional Application 62069301 · Oct 27, 2014
Related Publication 20160120058A1 · Apr 28, 2016
Cited By (6)
US 12,363,865 US 12,464,675 US 12,501,590 US 12,515,149 US 12,520,452 US 12,532,433