IP Library Granted Patent US 10,451,354
Granted Patent B2
US 10,451,354 · App. 15/194,152 · Granted Oct 22, 2019

Cooling apparatus with multiple pumps

Inventors: Jorma Manninen (Vantaa, FI); Timo Koivuluoma (Vantaa, FI)
Assignee: ABB Schweiz AG
F28D15/025F04B19/006F28D1/024F28D1/0226F28D1/0358F28D15/0266F28F3/025F28F13/06H01L23/427H05K7/20309H05K7/20327F28D2015/0216F28F2250/08H01L23/467
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Quick Facts
Patent No.
US 10,451,354
App. No.
15/194,152
Granted
Oct 22, 2019
Kind
B2
Abstract

A cooling apparatus is disclosed with a base plate for receiving a heat load from an electric component, an evaporator, a condenser, and a connecting piece for passing fluid from the evaporator to the condenser. In order to efficiently fill the evaporator, the cooling apparatus is provided with a pump for pumping fluid from the condenser to the evaporator.

Claims (33)

1. A cooling apparatus comprising:

a base plate for receiving a heat load from an electric component,

a plurality of parallel evaporators having respective evaporator channels having a thermal contact with the base plate for passing the received heat load to fluid in the plurality of parallel evaporator channels,

one or more of the respective evaporator channels are located within the base plate,

a plurality of parallel condensers with condenser channels each receiving the fluid from one of the evaporators and for dissipating heat from the received fluid, and

a plurality of connecting pieces each passing the fluid from one evaporator to one condenser,

the evaporator channels and the condenser channels both extend in the vertical direction, wherein

the cooling apparatus is provided with a plurality of pumps pumping the fluid from one condenser to one evaporator, and

the plurality of pumps configured to maintain the fluid level at a height in the evaporator, while the fluid level remains at a lower height in the condenser, for cooling the entire base plate.

2. The cooling apparatus according to claim 1 , wherein each of the plurality of pumps generates an electric field or magnetic field for pumping the fluid by said field.

3. The cooling apparatus according to claim 1 , wherein each of the plurality of pumps comprises a first electrode and a second electrode arranged at a distance from each other, and a power source for generating an electrical field between the first and second electrode.

4. The cooling apparatus according to claim 2 , wherein each of the plurality of pumps comprises a first electrode and a second electrode arranged at a distance from each other, and a power source for generating an electrical field between the first and second electrode.

5. The cooling apparatus according to claim 1 , wherein an upper end of each one of the plurality of parallel evaporators and an upper end of each one of the plurality of parallel condensers are located substantially on a same height with each other, and a lower end of each one of the plurality of parallel evaporators and a lower end of each one of the plurality of parallel condensers are located substantially on a same height with each other.

6. The cooling apparatus according to claim 2 , wherein an upper end of each one of the plurality of parallel evaporators and an upper end of each one of the plurality of parallel condensers are located substantially on a same height with each other, and a lower end of each one of the plurality of parallel evaporators and a lower end of each one of the plurality of parallel condensers are located substantially on a same height with each other.

7. The cooling apparatus according to claim 3 , wherein an upper end of each one of the plurality of parallel evaporators and an upper end of each one of the plurality of parallel condensers are located substantially on a same height with each other, and a lower end of each one of the plurality of parallel evaporators and a lower end of each one of the plurality of parallel condensers are located substantially on a same height with each other.

8. The cooling apparatus according to claim 1 , wherein each one of the plurality of parallel evaporators consists of a tube with longitudinal internal walls separating a plurality of evaporator channels from each other, and

the base plate comprises a second surface which is provided with grooves into which a respective one of said tubes is arranged.

9. The cooling apparatus according to claim 2 , wherein each one of the plurality of parallel evaporators consists of a tube with longitudinal internal walls separating a plurality of evaporator channels from each other, and

the base plate comprises a second surface which is provided with grooves into which a respective one of said tubes is arranged.

10. The cooling apparatus according to claim 3 , wherein each one of the plurality of parallel evaporators consists of a tube with longitudinal internal walls separating a plurality of evaporator channels from each other, and

the base plate comprises a second surface which is provided with grooves into which a respective one of said tubes is arranged.

11. The cooling apparatus according to claim 4 , wherein each one of the plurality of parallel evaporators consists of a tube with longitudinal internal walls separating a plurality of evaporator channels from each other, and

the base plate comprises a second surface which is provided with grooves into which a respective one of said tubes is arranged.

12. The cooling apparatus according to claim 1 , wherein each one of the plurality of parallel condensers consists of a tube with longitudinal internal walls separating a plurality of condenser channels from each other.

13. The cooling apparatus according to claim 2 , wherein each one of the plurality of parallel condensers consists of a tube with longitudinal internal walls separating a plurality of condenser channels from each other.

14. The cooling apparatus according to claim 3 , wherein each one of the plurality of parallel condensers consists of a tube with longitudinal internal walls separating a plurality of condenser channels from each other.

15. The cooling apparatus according to claim 4 , wherein each one of the plurality of parallel condensers consists of a tube with longitudinal internal walls separating a plurality of condenser channels from each other.

16. The cooling apparatus according to claim 5 , wherein each one of the plurality of parallel condensers consists of a tube with longitudinal internal walls separating a plurality of condenser channels from each other.

17. The cooling apparatus according to claim 6 , wherein each one of the plurality of parallel condensers consists of a tube with longitudinal internal walls separating a plurality of condenser channels from each other.

18. The cooling apparatus according to claim 1 , wherein the apparatus comprises a fan for generating an airflow passing along an outer surface of each one of the plurality of parallel condensers.

19. The cooling apparatus according to claim 2 , wherein the apparatus comprises a fan for generating an airflow passing along an outer surface of each one of the plurality of parallel condensers.

20. The cooling apparatus according to claim 3 , wherein the apparatus comprises a fan for generating an airflow passing along an outer surface of each one of the plurality of parallel condensers.

21. The cooling apparatus according to claim 4 , wherein the apparatus comprises a fan for generating an airflow passing along an outer surface of each one of the plurality of parallel condensers.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 18, 2019
From: ABB TECHNOLOGY OY
To: ABB SCHWEIZ AG
Reel/Frame 049087/0152 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 13, 2016
From: MANNINEN, JORMA; KOIVULUOMA, TIMO
To: ABB TECHNOLOGY OY
Reel/Frame 039140/0865 →
Priority Claims (1)
EP 15174490 · Jun 30, 2015 · regional
Continuity (1)
Related Publication 20170003083A1 · Jan 5, 2017