IP Library Granted Patent US 9,250,636
Granted Patent B2
US 9,250,636 · App. 13/439,471 · Granted Feb 2, 2016

Coolant and ambient temperature control for chillerless liquid cooled data centers

Inventors: Timothy J. Chainer (Putnam Valley, NY); Milnes P. David (Fishkill, NY); Madhusudan K. Iyengar (Woodstock, NY); Pritish R. Parida (Fishkill, NY); Robert E. Simons (Poughkeepsie, NY)
Assignee: INTERNATIONAL BUSINESS MACHINES CORPORATION
G05D23/1932G06F1/206H05K7/20836G06F2200/201Y02B60/1275
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Quick Facts
Patent No.
US 9,250,636
App. No.
13/439,471
Granted
Feb 2, 2016
Kind
B2
Abstract

Cooling control methods include measuring a temperature of air provided to a plurality of nodes by an air-to-liquid heat exchanger, measuring a temperature of at least one component of the plurality of nodes and finding a maximum component temperature across all such nodes, comparing the maximum component temperature to a first and second component threshold and comparing the air temperature to a first and second air threshold, and controlling a proportion of coolant flow and a coolant flow rate to the air-to-liquid heat exchanger and the plurality of nodes based on the comparisons.

Claims (21)

1. A cooling control method, comprising:

measuring the temperature of air provided to a plurality of nodes by an air-to-liquid heat exchanger;

measuring the temperature of at least one component of the plurality of nodes and finding a maximum component temperature across all such nodes;

comparing the maximum component temperature to a first and second component threshold and comparing the air temperature to a first and second air threshold; and

controlling a proportion of coolant flow and a coolant flow rate to the air-to-liquid heat exchanger and to the plurality of nodes based on said comparisons.

2. The cooling control method of claim 1 , further comprising repeating said measuring, comparing, and controlling at periodic intervals.

3. The cooling method of claim 2 , wherein said periodic intervals are based on historical rates of temperature change.

4. The cooling method of claim 1 , wherein controlling a proportion of coolant flow to the air-to-liquid heat exchanger and the plurality of nodes comprises controlling a three-way valve that divides an input coolant flow between the air-to-liquid heat exchanger and the plurality of nodes.

5. The cooling method of claim 1 , wherein the plurality of nodes are connected in series with the air-to-liquid heat exchanger and wherein controlling a proportion of coolant flow to the air-to-liquid heat exchanger and the plurality of nodes comprises controlling a two-way bypass valve that allows coolant to flow directly to the liquid cooling system.

6. The cooling method of claim 1 , wherein controlling a coolant flow rate to the air-to-liquid heat exchanger and the plurality of nodes comprises controlling a pump speed that determines a rate of input coolant flow.

7. The cooling method of claim 1 , wherein controlling a coolant flow rate to the air-to-liquid heat exchanger comprises controlling a two-way valve configured to limit a coolant flow to the air-to-liquid heat exchanger.

8. The cooling method of claim 1 , wherein controlling a coolant flow rate to the plurality of nodes comprises controlling a two-way valve configured to limit a coolant flow to the plurality of nodes.

9. A cooling control method, comprising:

measuring the temperature of air provided to a plurality of nodes by an air-to-liquid heat exchanger;

measuring the temperature of at least one component of the plurality of nodes and finding a maximum component temperature across all such nodes;

comparing the maximum component temperature to a first and second component threshold and comparing the air temperature to a first and second air threshold; and

controlling a proportion of coolant flow and a coolant flow rate to the air-to-liquid heat exchanger and to the plurality of nodes based on said comparing by adjusting one or more valves that control relative flow rate between the air-to-liquid heat exchanger and the plurality of nodes.

10. The cooling method of claim 9 , wherein the one or more valves include a three-way valve that divides an input coolant flow between the air-to-liquid heat exchanger and the plurality of nodes.

11. The cooling method of claim 9 , wherein the plurality of nodes are connected in series with the air-to-liquid heat exchanger and wherein the one or more valves include a two-way bypass valve that allows coolant to flow directly to the liquid cooling system.

12. The cooling method of claim 9 , wherein the one or more valves include a two-way valve configured to limit a coolant flow to the air-to-liquid heat exchanger.

13. The cooling method of claim 9 , wherein the one or more valves include a two-way valve configured to limit a coolant flow to the plurality of nodes.

Assignments (2)
CONFIRMATORY LICENSE Recorded Oct 22, 2015
From: INTERNATIONAL BUSINESS MACHINES CORPORATION
To: ENERGY, UNITED STATES DEPARTMENT OF
Reel/Frame 036929/0660 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 4, 2012
From: CHAINER, TIMOTHY J.; DAVID, MILNES P.; IYENGAR, MADHUSUDAN K.; PARIDA, PRITISH R.; SIMONS, ROBERT E.
To: INTERNATIONAL BUSINESS MACHINES CORPORATION
Reel/Frame 027989/0775 →
Continuity (1)
Related Publication 20130264046A1 · Oct 10, 2013