IP Library › Granted Patent US 11,538,607
Granted Patent B2
US 11,538,607 · App. 17/750,741 · Granted Dec 27, 2022

Conductor systems for suspended or underground transmission lines

Inventors: Stephen Paul Ashworth (Gallicano, IT); Franco Moriconi (Berkeley, CA); Timothy David Heidel (Alexandria, VA)
Assignee: Veir, Inc.
H01B12/16H01B7/423
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Quick Facts
Patent No.
US 11,538,607
App. No.
17/750,741
Granted
Dec 27, 2022
Kind
B2
Abstract

A conductor assembly for transmitting power includes a former that defines a shape, a superconductor material disposed around the former, and a thermally insulating jacket (TIJ) disposed around and spaced apart from the superconductor material. An outer surface of the superconductor material and an inner surface of the TIJ can define an annulus through which a coolant can flow. The conductor assembly can also include an external layer, disposed around an outside surface of the TIJ, to provide structural support to the conductor assembly. The conductor assembly can also include an electrical insulation layer disposed around the outside surface of the TIJ or around the superconductor material.

Claims (59)

1. A conductor assembly for transmitting power, comprising:

a former configured to define a shape;

a superconductor material disposed around the former;

a thermally insulating jacket disposed around and spaced apart from the superconductor material such that an outer surface of the superconductor material and an inner surface of the thermally insulating jacket define an annulus through which a coolant can flow; and

a coolant tube disposed in the conductor assembly and configured to transport the coolant, the coolant tube including an orifice configured to limit coolant flow out of the coolant tube,

wherein the coolant transitions from a subcooled single-phase liquid to a gas as the coolant flows through the orifice.

2. The conductor assembly of claim 1 , wherein the coolant tube is disposed in the former.

3. The conductor assembly of claim 1 , further comprising:

a cable disposed within the thermally insulating jacket and configured to provide structural support to the conductor assembly.

4. The conductor assembly of claim 1 , further comprising:

a tube disposed within the thermally insulating jacket and configured to provide structural support to the conductor assembly.

5. The conductor assembly of claim 1 , further comprising:

an electrical insulation layer disposed around the thermally insulating jacket.

6. The conductor assembly of claim 1 , further comprising:

an electrical insulation layer disposed around the superconductor material.

7. The conductor assembly of claim 1 , wherein the flow orifice includes a series of pores.

8. The conductor assembly of claim 1 , further comprising:

a header tube fluidically coupled to the coolant tube.

9. The conductor assembly of claim 8 , further comprising:

a valve configured to regulate flow of coolant between the header tube and the coolant tube.

10. The conductor assembly of claim 9 , further comprising a sensor configured to adjust the valve in response to detecting an oversupply of liquid coolant in one of the annulus or the coolant tube.

11. A conductor assembly for transmitting power, comprising:

a superconducting material including at least one of a superconducting wire or a superconducting tape, disposed around an outside surface of a forming device, such that the superconducting material conforms to the shape of the forming device;

a thermally insulating jacket disposed around and spaced apart from the superconducting material, the thermally insulating jacket and the superconducting material defining an annulus that is configured to accommodate a coolant flow through the conductor assembly; and

a coolant tube disposed in the conductor assembly and configured to transport the coolant, the coolant tube including an orifice configured to limit coolant flow from the coolant tube,

wherein the coolant flows through the orifice as a bi-phasic liquid.

12. The conductor assembly of claim 11 , wherein the coolant tube is disposed in the former, thereby forming a vapor space between an outer surface of the coolant tube and an inner surface of the former.

13. The conductor assembly of claim 11 , further comprising:

a cable disposed within the thermally insulating jacket and configured to provide structural support to the conductor assembly.

14. The conductor assembly of claim 11 , wherein the thermally insulating jacket is configured to provide structural support to the conductor assembly.

15. The conductor assembly of claim 11 , further comprising:

a tube disposed within the thermally insulating jacket and configured to provide structural support to the conductor assembly.

16. The conductor assembly of claim 11 , wherein the conductor assembly has a warm dielectric configuration, the conductor assembly further comprising an electrical insulation layer disposed around the thermally insulating jacket.

17. The conductor assembly of claim 11 , further comprising an electrical insulation layer disposed around the superconducting material.

18. The conductor assembly of claim 11 , further comprising:

a former disposed in the superconducting material.

19. The conductor assembly of claim 11 , further comprising:

a header tube fluidically coupled to the coolant tube.

20. The conductor assembly of claim 19 , further comprising:

a valve configured to regulate flow of coolant between the header tube and the coolant tube.

21. A conductor assembly for transmitting power, comprising:

a thermally insulating jacket having an interior surface;

a forming device disposed inside and spaced apart from the thermally insulating jacket;

a superconducting material disposed around an outside surface of the forming device, the superconducting material conforming to a shape of the forming device, the superconducting material and the interior surface of the thermally insulating jacket defining an annular region through which a coolant can flow; and

a coolant tube disposed in the former and configured to transport the coolant, the coolant tube including an orifice and configured to limit coolant flow from the coolant tube,

wherein the coolant transitions from a subcooled single-phase liquid to a gas as the coolant flows through the orifice.

22. The conductor assembly of claim 21 , wherein a vapor space is formed between an outer surface of the coolant tube and an inner surface of the former.

23. The conductor assembly of claim 21 , further comprising:

a cable disposed within the thermally insulating jacket and configured to provide structural support to the conductor assembly.

24. The conductor assembly of claim 21 , wherein the thermally insulating jacket is configured to provide structural support to the conductor assembly.

25. The conductor assembly of claim 21 , further comprising:

a tube disposed within the thermally insulating jacket and configured to provide structural support to the conductor assembly.

26. The conductor assembly of claim 21 , further comprising an electrical insulation layer disposed around the thermally insulating jacket.

27. The conductor assembly of claim 21 , further comprising an electrical insulation layer disposed around the superconducting material.

28. The conductor assembly of claim 21 , wherein the forming device is hollow to allow passage of fluid.

29. The conductor assembly of claim 21 , further comprising:

a header tube fluidically coupled to the coolant tube.

30. The conductor assembly of claim 29 , further comprising:

a valve configured to regulate flow of coolant between the header tube and the coolant tube.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 11, 2022
From: ASHWORTH, STEPHEN PAUL; MORICONI, FRANCO; HEIDEL, TIMOTHY DAVID
To: VEIR, INC.
Reel/Frame 060469/0200 →
Continuity (3)
Continuation 17524267 · Nov 11, 2021
Provisional Application 63115348 · Nov 18, 2020
Related Publication 20220277873A1 · Sep 1, 2022
Cited By (2)
US 12,232,298 US 12,567,520