IP Library › Granted Patent US 11,555,658
Granted Patent B2
US 11,555,658 · App. 14/946,210 · Granted Jan 17, 2023

Methods and systems to convert passive cooling to active cooling

Inventors: Zhaohui Yang (Anchorage, AK); Simon Evans (Girdwood, AK); Gregory McConnell (Eagle River, AK)
Assignee: University of Alaska Anchorage
F28D20/0052F24T10/15F24T10/17F24T10/40F28D15/00Y02E10/10Y02E60/14
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Quick Facts
Patent No.
US 11,555,658
App. No.
14/946,210
Granted
Jan 17, 2023
Kind
B2
Abstract

Provided are methods and systems for converting a passive cooling system into an active hydronic ground cooling system. In an aspect, an existing passive cooling device can be first discharged of working fluid. An existing pipe of the passive cooling system can then be cut to a predetermined height. A top portion of the existing pipe can be threaded and fitted with a cap base. Tubing can then be installed within the existing pipe. A cap can be attached to the cap base. The tubing can be attached to a chiller system and filled with coolant. Similar procedure can be applied to convert a thermopile or traditional pipe pile to into an active cooling system.

Claims (18)

1. An active ground cooling system comprising:

an existing pipe of a passive ground cooling system, wherein fluid in the existing pipe has been discharged and wherein the existing pipe has been cut to a predetermined height and situated adjacent to or within permafrost soil;

a temperature sensor situated within the permafrost soil;

a chiller system configured to chill a coolant to a temperature that is less than a current ambient temperature based on feedback received from the temperature sensor indicative of a current permafrost soil temperature, wherein the chiller system is configured to cause the coolant to circulate throughout the existing pipe, and wherein the current ambient temperature is greater than the current permafrost soil temperature;

a coolant pipe forming a coolant loop associated with the chiller system;

a cap integrated with the existing pipe, wherein the cap defines an inlet opening sized to receive the coolant pipe and an outlet opening sized to receive the coolant pipe, and wherein the coolant pipe extends through the cap and wherein the coolant pipe extends through over half of the existing pipe toward a closed end of the existing pipe; and

a power source connected to the chiller system.

2. The active ground cooling system of claim 1 , wherein the power source comprises a solar power source.

3. The active ground cooling system of claim 1 , wherein the existing pipe is filled with a thermally conductive medium.

4. The active ground cooling system of claim 3 , wherein the thermally conductive medium comprises silicone rubber.

5. The active ground cooling system of claim 1 , wherein the chiller system is in communication with the temperature sensor.

6. The active ground cooling system of claim 1 , wherein the chiller system is further configured to receive the feedback from the temperature sensor.

7. The active ground cooling system of claim 1 , further comprising insulation affixed to an outer side of the existing pipe.

8. The active ground cooling system of claim 7 , wherein the insulation is removable insulation.

9. The active ground cooling system of claim 1 , wherein the existing pipe comprises an inner surface, and wherein the inner surface is coated with a layer.

10. The active ground cooling system of claim 9 , wherein the layer is a corrosion prevention layer or a sealant layer.

11. The active ground cooling system of claim 1 , wherein the existing pipe is a thermosyphon pipe.

12. The active ground cooling system of claim 1 , further comprising: a spacer between the cap and the coolant pipe configured to separate the cap and the coolant pipe.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 7, 2018
From: YANG, ZHAOHUI; EVANS, SIMON; MCCONNELL, GREGORY
To: UNIVERSITY OF ALASKA ANCHORAGE
Reel/Frame 047439/0584 →
Continuity (2)
Provisional Application 62081844 · Nov 19, 2014
Related Publication 20160223270A1 · Aug 4, 2016
Cited By (1)
US 12,326,301