IP Library Granted Patent US 8,436,706
Granted Patent B2
US 8,436,706 · App. 13/266,538 · Granted May 7, 2013

Pumped loop refrigerant system for windings of transformer

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Quick Facts
Patent No.
US 8,436,706
App. No.
13/266,538
Granted
May 7, 2013
Kind
B2
Abstract

A pumped loop cooling system is provided to cool a hollow winding of a transformer utilizing a two phase vaporizable dielectric refrigerant. A liquid refrigerant pump circulates the refrigerant into a transformer and through a copper tube winding of the transformer where the refrigerant at least partially vaporizes in removing heat from the transformer. The refrigerant is then circulated to a condenser and then back to the pump.

Claims (31)

1. A cooling system comprising:

a condenser;

a first electrical component having a spiral winding formed from a tube and a second electrical component having a spiral winding formed from a tube, the spiral winding of the first electrical component and the spiral winding of the second electrical component fluidly positioned in parallel to each other within the system;

at least one pump that pumps a vaporizable dielectric refrigerant through the spiral winding of the first electrical component and the spiral winding of second electrical component, to the condenser, and back to the at least one pump through a plurality of conduits; and

a first flow restrictor positioned upstream the spiral winding of the first electrical component that provides a flow rate of refrigerant to the spiral winding that ensures that the refrigerant does not completely evaporate in the spiral winding; and

a second flow restrictor positioned upstream the spiral winding of the second electrical component that provides a flow rate of refrigerant to the spiral winding that ensures that the refrigerant does not completely evaporate in the spiral winding.

2. The cooling system of claim 1 , further comprising a liquid receiver positioned between the condenser and the at least one pump.

3. The cooling system of claim 1 , wherein at least one of the flow restrictors is a fixed orifice restrictor.

4. The cooling system of claim 1 , wherein at least one of the flow restrictors is an adjustable orifice restrictor.

5. The cooling system of claim 1 , wherein the spiral winding of at least one of the electrical components is a primary winding of the electrical component.

6. The cooling system of claim 1 , wherein the spiral winding of at least one of the electrical components is a secondary winding of the electrical component.

7. The cooling system of claim 1 , wherein the first electrical component is a first transformer and the second electrical component is a second transformer.

8. The cooling system of claim 7 , wherein the tube of the first transformer is a copper tube, and the tube of the second transformer is a copper tube.

9. The cooling system of claim 1 , further comprising a third electrical component having a spiral winding formed from a tube, the spiral winding of the third electrical component fluidly positioned in parallel to the spiral winding of the first electrical component and the spiral winding of the second electrical component, wherein the at least one pump pumps refrigerant through the spiral winding of the third electrical component and to the condenser through a plurality of additional conduits; and

a third flow restrictor positioned upstream from the spiral winding of the third electrical component that provides a flow rate of refrigerant to the spiral winding ensuring that the refrigerant does not completely evaporate in the spiral winding.

10. A cooling system comprising:

a condenser;

a liquid receiver;

a first electrical component having a spiral winding formed from a tube and a second electrical component having a spiral winding formed from a tube, the spiral winding of the first electrical component and the spiral winding of the second electrical component fluidly positioned in parallel to each other within the system;

at least one liquid refrigerant pump;

a vaporizable dielectric refrigerant circulated by the liquid refrigerant pump to the spiral winding of the first electrical component and to the spiral winding of the second electrical component, whereby the refrigerant is at least partially evaporated by heat generated by the electrical components, the at least partially evaporated refrigerant is circulated to the condenser where the refrigerant is condensed to a single phase liquid, and the single phase liquid refrigerant is circulated to the liquid receiver and then returned to the pump;

a first flow restrictor positioned upstream from the spiral winding of the first electrical component that provides a flow rate of refrigerant to the spiral winding ensuring that the refrigerant does not completely evaporate in the spiral winding; and

a second flow restrictor positioned upstream from the spiral winding of the second electrical component that provides a flow rate of refrigerant to the spiral winding ensuring that the refrigerant does not completely evaporate in the spiral winding.

11. The cooling system of claim 10 , wherein at least one of the flow restrictors is a fixed orifice restrictor.

12. The cooling system of claim 10 , wherein at least one of the flow restrictors is an adjustable orifice restrictor.

13. The cooling system of claim 10 , wherein the spiral winding of at least one of the electrical components is a primary winding of the electrical component.

14. The cooling system of claim 13 , wherein the spiral winding of at least one of the electrical components is a secondary winding of the electrical component.

15. The cooling system of claim 10 , wherein the first electrical component is a first transformer and the second electrical component is a second transformer.

16. The cooling system of claim 15 , wherein the tube of the first transformer is a copper tube, and the tube of the second transformer is a copper tube.

17. The cooling system of claim 10 , further comprising a third electrical component having a spiral winding formed from a tube, the spiral winding of the third electrical component fluidly positioned in parallel to the spiral winding of the first electrical component and the spiral winding of the second electrical component, wherein the at least one liquid refrigerant pump circulates refrigerant through the spiral winding of the third electrical component, whereby the refrigerant is at least partially evaporated by heat generated by the third electrical component, the at least partially evaporated refrigerant is circulated to the condenser where the refrigerant is condensed to a single phase liquid, and the single phase liquid refrigerant is circulated to the liquid receiver and then returned to the pump; and

a first flow restrictor positioned upstream from the spiral winding of the third electrical component that provides a flow rate of refrigerant to the spiral winding ensuring that the refrigerant does not completely evaporate in the spiral winding.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 5, 2018
From: PARKER-HANNIFIN CORPORATION
To: PARKER INTANGIBLES, LLC
Reel/Frame 045843/0859 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2011
From: SATHE, ABHIJIT ASHOK; GILL, SCOTT DAVID; THOMPSON, DALE ROBERT
To: PARKER HANNIFIN CORPORATION
Reel/Frame 027132/0332 →