IP Library › Granted Patent US 11,540,419
Granted Patent B2
US 11,540,419 · App. 17/742,708 · Granted Dec 27, 2022

Systems and methods for cooling of superconducting power transmission lines

Inventors: Stephen Paul Ashworth (Gallicano, IT); Franco Moriconi (Berkeley, CA); Timothy David Heidel (Alexandria, VA)
Assignee: Veir, Inc.
H05K7/20309B60H1/3202H01B7/423H05K7/20327H05K7/20381
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Quick Facts
Patent No.
US 11,540,419
App. No.
17/742,708
Granted
Dec 27, 2022
Kind
B2
Abstract

A cooling system includes a coolant transmitter that transmits coolant at a pressure greater than atmospheric pressure. The cooling system also includes an evaporation vessel at atmospheric pressure. The evaporation vessel can contain an amount of coolant at the boiling point of the coolant. The cooling system also includes a pressure reducer fluidically coupled to the coolant transmitter and the evaporation vessel. The pressure reducer can include an orifice. The cooling system is configured such that heat is transferred from the coolant in the coolant transmitter to the coolant contained in the evaporation vessel. An exit stream conduit can fluidically couple the coolant transmitter and the pressure reducer, with the exit stream conduit diverting a portion of the coolant from the coolant transmitter to the evaporation vessel.

Claims (52)

1. A cooling system, comprising:

a coolant transmitter configured to transmit a coolant at a pressure greater than atmospheric pressure;

a heat exchanger at atmospheric pressure at least partially disposed in the coolant transmitter, the heat exchanger configured to contain an amount of the coolant at a boiling point of the coolant; and

a pressure reducer fluidically coupled to the coolant transmitter and the heat exchanger,

wherein the cooling system is configured such that heat is transferred from the coolant in the coolant transmitter to the coolant contained in the heat exchanger.

2. The cooling system of claim 1 , further comprising:

an exit stream conduit fluidically coupled to the coolant transmitter and the pressure reducer, the exit stream conduit configured to divert a portion of the coolant from the coolant transmitter to the heat exchanger.

3. The cooling system of claim 1 , further comprising:

a level sensor disposed in the heat exchanger.

4. The cooling system of claim 3 , wherein the level sensor is a ball float level sensor physically coupled to the pressure reducer.

5. The cooling system of claim 1 , wherein the pressure reducer includes a throttle.

6. The cooling system of claim 1 , wherein the pressure reducer includes an orifice.

7. The cooling system of claim 1 , wherein the coolant includes one of liquid nitrogen, liquid hydrogen, liquid natural gas, or a combination thereof.

8. The cooling system of claim 1 , wherein the coolant transmitter includes a first portion and a second portion, the first portion and the second portion fluidically coupled via the heat exchanger.

9. The cooling system of claim 8 , wherein the heat exchanger includes a spiral tube heat exchanger.

10. The cooling system of claim 1 , further comprising:

a thermally insulating jacket disposed around the outside of the evaporation vessel.

11. The cooling system of claim 1 , further comprising:

a power transmission line electrically coupled to the coolant transmitter.

12. A cooling system, comprising:

a coolant transmitter configured to transmit a coolant at a pressure greater than atmospheric pressure;

an evaporation vessel at atmospheric pressure at least partially disposed in the coolant transmitter, the evaporation vessel configured to contain an amount of the coolant at a boiling point of the coolant; and

a pressure reducer fluidically coupled to the coolant transmitter and the evaporation vessel,

wherein the cooling system is configured such that heat is transferred from the coolant in the coolant transmitter to the coolant contained in the evaporation vessel.

13. The cooling system of claim 12 , further comprising:

an exit stream conduit fluidically coupled to the coolant transmitter and the pressure reducer, the exit stream conduit configured to divert a portion of the coolant from the coolant transmitter to the evaporation vessel.

14. The cooling system of claim 12 , further comprising:

a level sensor disposed in the evaporation vessel.

15. The cooling system of claim 14 , wherein the level sensor is a ball float level sensor physically coupled to the pressure reducer.

16. The cooling system of claim 12 , wherein the pressure reducer includes a throttle.

17. The cooling system of claim 12 , wherein the pressure reducer includes an orifice.

18. The cooling system of claim 12 , further comprising:

a heat exchanger fluidically coupled to the coolant transmitter and in physical contact with the evaporation vessel, the heat exchanger configured to circulate coolant from a first portion of the coolant transmitter to a second portion of the coolant transmitter such that heat is transferred from the coolant in the heat exchanger to the coolant in the evaporation vessel.

19. The cooling system of claim 18 , wherein the heat exchanger is at least partially submersed in the coolant in the evaporation vessel, the coolant in the evaporation vessel at the boiling point of the coolant.

20. The cooling system of claim 18 , wherein the heat exchanger includes a spiral tube heat exchanger.

21. The cooling system of claim 12 , wherein the coolant includes one of liquid nitrogen, liquid hydrogen, liquid natural gas, or a combination thereof.

22. The cooling system of claim 12 , further comprising:

a thermally insulating jacket disposed around the outside of the evaporation vessel.

23. The cooling system of claim 12 , further comprising:

a power transmission line electrically coupled to the coolant transmitter.

24. A cooling system, comprising:

a coolant transmitter configured to transmit a subcooled liquid at a pressure greater than atmospheric pressure, the subcooled liquid exposed to a first side of a heat exchange interface;

an evaporation vessel at least partially disposed in the coolant transmitter;

an exit stream conduit configured to divert a portion of the subcooled liquid from the coolant transmitter to the evaporation vessel; and

a pressure regulator at a fluidic interface between the exit stream conduit and the evaporation vessel, the pressure regulator configured to maintain a pressure difference between the exit stream conduit and the evaporation vessel;

wherein the evaporation vessel is configured to contain an amount of boiling liquid at a pressure lower than the coolant transmitter, the boiling liquid exposed to a second side of the heat exchange interface and configured to absorb heat from the subcooled liquid.

25. The cooling system of claim 24 , wherein the evaporation vessel is at atmospheric pressure and is configured to contain an amount of the coolant at a boiling point of the coolant.

26. The cooling system of claim 24 , wherein the subcooled liquid and the boiling liquid include a coolant.

27. The cooling system of claim 26 , wherein the coolant includes at least one of liquid nitrogen, liquid hydrogen, or liquid natural gas.

28. The cooling system of claim 24 , wherein the pressure regulator includes at least one of a throttle or an orifice.

29. The cooling system of claim 24 , wherein the first side of the heat exchange interface is a shell side of a shell and tube heat exchanger and the second side of the heat exchange interface is a tube side of the shell and tube heat exchanger.

30. The cooling system of claim 24 , wherein the coolant transmitter includes a first portion and a second portion fluidically coupled by a spiral tube heat exchanger.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 21, 2022
From: ASHWORTH, STEPHEN PAUL; MORICONI, FRANCO; HEIDEL, TIMOTHY DAVID
To: VEIR, INC.
Reel/Frame 060580/0200 →
Continuity (3)
Continuation 17524262 · Nov 11, 2021
Provisional Application 63115226 · Nov 18, 2020
Related Publication 20220272867A1 · Aug 25, 2022
Cited By (2)
US 12,232,298 US 12,567,520