IP Library Granted Patent US 11,359,865
Granted Patent B2
US 11,359,865 · App. 16/518,871 · Granted Jun 14, 2022

Dual Cooling Tower Time Share Water Treatment System

Inventors: Larry Stone (Austin, TX); Alex McManis (Austin, TX); Jason Mayo (Austin, TX); Ron Slezak (Austin, TX)
Assignee: Green Revolution Cooling, Inc.
F28D5/02F28F19/00H05K7/20272H05K7/20281H05K7/20781
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Quick Facts
Patent No.
US 11,359,865
App. No.
16/518,871
Granted
Jun 14, 2022
Kind
B2
Abstract

A method of operating a cooling system including at least two water cooling circuits, an analyzer/controller configured to analyze water in the at least two water cooling circuits and solenoid valves operably connected to the at least two water cooling circuits. The method comprising opening solenoid valves associated with a first water cooling circuit of the at least two water cooling circuits to allow cooling water to flow to the analyzer/controller, detecting if the cooling water comprises one or more impurities above one or more predetermined thresholds and treating the cooling water if the analyzer/cooler detects one or more impurities in the cooling water above one or more predetermined thresholds.

Claims (37)

1. A method of operating a cooling system comprising:

opening first solenoid valves associated with a first water cooling circuit of at least two water cooling circuits to allow cooling water from the first water cooling circuit to be analyzed for impurities by an analyzer configured to separately analyze cooling water in each of the at least two water cooling circuits for impurities;

detecting, by the analyzer, whether the cooling water from the first water cooling circuit comprises one or more impurities above one or more predetermined thresholds; and

in response to detecting that the analyzed cooling water from the first water cooling circuit comprises the one or more impurities above the one or more predetermined thresholds:

treating the analyzed cooling water from the first water cooling circuit;

closing the first solenoid valves associated with the first water cooling circuit;

opening second solenoid valves associated with a second water cooling circuit of the at least two water cooling circuits to allow the cooling water from the second water cooling circuit to be analyzed for impurities by the analyzer;

detecting, by the analyzer, whether the cooling water from the second water cooling circuit comprises one or more impurities above the one or more predetermined thresholds; and

treating the analyzed cooling water from the second water cooling circuit in response to the analyzer detecting that the analyzed cooling water from the second water cooling circuit comprises one or more impurities above the one or more predetermined thresholds.

2. The method of claim 1 , wherein treating the cooling water comprises at least one of dispensing de-scaling chemicals into the cooling water or dispensing a biocide into the cooling water.

3. The method of claim 2 , wherein treating the cooling water comprises dispensing the de-scaling chemicals into the cooling water and dispensing the biocide into the cooling water.

4. The method of claim 1 , further comprising directing the cooling water from the first water cooling circuit to a first cooling tower located on top of a shipping container in response to closing the first solenoid valves, the first cooling tower comprising a first heat exchanger.

5. The method of claim 4 , further comprising:

detecting whether the cooling water from the second cooling circuit comprises one or more impurities above the one or more predetermined thresholds in response to opening the second solenoid valves; and

in response to detecting that the cooling water from the second cooling circuit comprises the one or more impurities above the one or more predetermined thresholds:

treating the cooling water from the second cooling circuit;

closing the second solenoid valves associated with the second water cooling circuit; and

directing the cooling water from the second water cooling circuit to a second cooling tower located on top of the shipping container, the second cooling tower comprising a second heat exchanger.

6. The method of claim 4 , further comprising directing hot dielectric fluid from a first set of tanks located in the shipping container to the first cooling tower to be cooled by the cooling water from the first water cooling circuit.

7. The method of claim 6 , further comprising directing hot dielectric fluid from a second set of tanks located in the shipping container to the second cooling tower to be cooled by the cooling water from the second water cooling circuit.

8. A cooling system comprising:

at least two water cooling circuits;

an analyzer configured to separately analyze cooling water in each of the at least two water cooling circuits for impurities;

first solenoid valves operably connected to a first water cooling circuit of the at least two water cooling circuits; and

second solenoid valves operably connected to a second water cooling circuit of the at least two water cooling circuits,

wherein opening the first solenoid valves associated with the first water cooling circuit of the at least two water cooling circuits allows the cooling water from the first water cooling circuit to be treated in response to the analyzer detecting that the analyzed cooling water from the first water cooling circuit comprises one or more impurities above one or more predetermined thresholds, and

wherein opening the second solenoid valves associated with the second water cooling circuit of the at least two water cooling circuits allows the cooling water from the second water cooling circuit to be treated in response to the analyzer detecting that the analyzed cooling water from the second water cooling circuit comprises one or more impurities above the one or more predetermined thresholds.

9. The cooling system of claim 8 , wherein the cooling system is configured such that in response to the first solenoid valves associated with the first water cooling circuit being closed, the cooling water from the first cooling circuit flows to a first cooling tower.

10. The cooling system of claim 9 , wherein the first cooling tower comprises a first heat exchanger and the first cooling tower is located on top of a shipping container.

11. The cooling system of claim 10 , further comprising an inhibitor dispenser and a biocide dispenser, wherein as part of treating the analyzed cooling water at least one of the inhibitor dispenser dispenses de-scaling chemicals into the cooling water from the first water cooling circuit or the biocide dispenser dispenses a biocide into the cooling water from the first water cooling circuit.

12. The cooling system of claim 11 , wherein the analyzer, the inhibiter dispenser and the biocide dispenser are located inside the shipping container.

13. The cooling system of claim 12 , further comprising a plurality of tanks located in the shipping container, wherein the plurality of tanks contain electronic equipment and a dielectric fluid, wherein the dielectric fluid from a first set of the plurality of tanks is provided to the first cooling tower to be cooled by the cooling water in the first water cooling circuit.

14. The cooling system of claim 13 , wherein the second solenoid valves associated with the second water cooling circuit of the at least two water cooling circuits are closed in response to the first solenoid valves associated with the first water cooling circuit opening.

15. The cooling system of claim 14 , wherein the second solenoid valves associated with the second water cooling circuit are configured to be opened in response to the first solenoid valves associated with first cooling water circuit closing.

16. The cooling system of claim 14 , wherein the cooling system further comprises:

a second cooling tower located on top to the shipping container, the second cooling tower comprising a second heat exchanger,

wherein the dielectric fluid from a second set of the plurality of tanks is provided to the second cooling tower to be cooled by the cooling water in the second water cooling circuit.

Assignments (6)
CORRECTIVE ASSIGNMENT TO CORRECT THE APPLICATION NUMBER INCORRECTLY LISTED AS 17253403 SHOULD BE LISTED AS 17523403 PREVIOUSLY RECORDED ON REEL 59594 FRAME 67. ASSIGNOR(S) HEREBY CONFIRMS THE CORRECTIVE ASSIGNMENT. Recorded Feb 13, 2025
From: GREEN REVOLUTION COOLING, INC.
To: GREEN REVOLUTION COOLING, INC.
Reel/Frame 070897/0290 →
SECURITY INTEREST Recorded Feb 19, 2024
From: GREEN REVOLUTION COOLING, INC.
To: CFIP2 GRC LLC
Reel/Frame 066491/0188 →
CORRECTED ADDRESS CHANGE TO CORRECT SPELLING OF THE COVEYING &RECEIVING PARTIES; &THE ERRONEOUSLY RECORDED APPLICATION NO. 29775264 WHICH WAS A TYPOGRAPHICAL ERROR RECORDED AT REEL/FRAME 059218/0576 Recorded Jul 5, 2022
From: GREEN REVOLUTION COOLING, INC.
To: GREEN REVOLUTION COOLING, INC.
Reel/Frame 061086/0814 →
CORRECTIVE ASSIGNMENT TO CORRECT THE ASSIGNOR AND ASSIGNEE NAMES PREVIOUSLY RECORDED AT REEL: 059218 FRAME: 0576. ASSIGNOR(S) HEREBY CONFIRMS THE CHANGE OF ADDRESS. Recorded Apr 4, 2022
From: GREEN REVOLUTION COOLING, INC.
To: GREEN REVOLUTION COOLING, INC.
Reel/Frame 059594/0067 →
ADDRESS CHANGE Recorded Feb 23, 2022
From: GREEN REVOLUTION COOLNG, INC.
To: GREEN REVOLUTION COOLNG, INC.
Reel/Frame 059218/0576 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 22, 2019
From: STONE, LARRY; MCMANIS, ALEX; MAYO, JASON; SLEZAK, RON
To: GREEN REVOLUTION COOLING, INC.
Reel/Frame 049824/0907 →
Continuity (2)
Provisional Application 62702067 · Jul 23, 2018
Related Publication 20200025451A1 · Jan 23, 2020
Cited By (10)
US 1,124,280 US 12,207,433 US 12,309,975 US 12,389,566 US 12,414,273 US 12,437,348 US 12,437,349 US 12,462,312 US 12,513,853 US 12,526,954