High-efficiency cooling systems and methods for a computer data center
View Patent ↗To facilitate the use of high-efficiency heat exchangers in a computer data center, a refrigerant bypass line may be provided with a valve configured to adjust the refrigerant flow therethrough. The bypass line may be used to direct at least some refrigerant from the refrigerant supply line directly to the refrigerant return line so as to keep the refrigerant temperature in the return line at or below a preset maximum refrigerant temperature prior to reaching the refrigerant source.
1 . A cooling system for a facility employing equipment requiring active cooling, the cooling system comprising:
a refrigerant supply line providing a refrigerant at a first pressure from a refrigerant source,
a refrigerant return line directing the refrigerant at a second pressure toward the refrigerant source for cooling and recirculating of the refrigerant at the refrigerant source, wherein the second pressure is lower than the first pressure,
a first heat exchanger configured to use the refrigerant circulating through the first heat exchanger to cool air or liquid which passes through the first heat exchanger and is used for active cooling of the equipment in the facility, the first heat exchanger having a first refrigerant inlet configured to receive at least some refrigerant from the refrigerant supply line, the first heat exchanger having a first refrigerant outlet operably connected to direct at least some refrigerant to the refrigerant return line,
a return line temperature sensor positioned in the refrigerant return line downstream of the first heat exchanger, wherein the return line temperature sensor is configured to measure refrigerant temperature in the refrigerant return line prior to reaching the refrigerant source,
a first bypass line equipped with an in-line adjustable first valve operable, when at least partially open, to allow at least some refrigerant to flow from the refrigerant supply line toward and mix with the refrigerant of the refrigerant return line without flowing through the first heat exchanger, and
a controller operatively connected to the return line temperature sensor and the first valve, the controller configured to adjust an opening of the first valve based on the measured refrigerant temperature in the refrigerant return line to maintain the refrigerant temperature at or below a preset maximum refrigerant temperature,
thereby reducing a temperature of the refrigerant in the refrigerant return line to or below the a preset maximum refrigerant temperature prior to reaching the refrigerant source.
2 . The cooling system, as in claim 1 , wherein the return line temperature sensor is positioned downstream of all heat exchangers in the cooling system and upstream of the refrigerant source.
3 . The cooling system, as in claim 1 , wherein the first heat exchanger further comprises a first outlet temperature sensor positioned at or downstream the first refrigerant outlet, the first outlet temperature sensor is configured to measure refrigerant temperature after passing through the first heat exchanger.
4 . The cooling system, as in claim 1 , wherein the refrigerant passing through the first heat exchanger is selected from a group consisting of a one-phase refrigerant, a two-phase refrigerant, water, and a mix of water and glycol.
5 . The cooling system, as in claim 1 , further comprising a second heat exchanger configured to use the refrigerant circulating through the second heat exchanger to cool air or liquid which passes through the second heat exchanger and is also used for active cooling of the equipment of the facility, the second heat exchanger having a second refrigerant inlet configured to receive at least some refrigerant from the refrigerant supply line, the second heat exchanger having a second refrigerant outlet operably connected to direct at least some refrigerant to the refrigerant return line.
6 . The cooling system, as in claim 5 , further comprising a second bypass line equipped with an in-line adjustable second valve operable, when at least partially open, to allow at least some refrigerant to flow from the refrigerant supply line toward and mix with the refrigerant of the refrigerant return line without flowing through the second heat exchanger, wherein the controller is operatively connected to the second valve and configured to independently adjust both the first valve and the second valve based on the measured refrigerant temperature in the refrigerant return line.
7 . The cooling system, as in claim 3 , further comprising a second heat exchanger as recited in claim 5 , wherein the first outlet temperature sensor is positioned downstream the first refrigerant outlet of the first heat exchanger or downstream the second refrigerant outlet of the second heat exchanger.
8 . The cooling system, as in claim 1 , wherein the facility is a computer data center and the air or liquid passing through the first heat exchanger is used for active cooling of computer equipment of the data center.
9 . The cooling system, as in claim 1 , further comprising a supplemental heat exchanger fluidly connected to and positioned downstream of the first heat exchanger, the supplemental heat exchanger placed outside the facility, wherein the supplemental heat exchanger receives refrigerant from the refrigerant return line after mixing with bypass flow from the first bypass line.
10 . The cooling system, as in claim 9 , further comprising a circulation bypass line with an in- line circulation bypass valve, the circulation bypass line is configured to direct the refrigerant directly downstream and not through the supplemental heat exchanger.
11 . A method for cooling a facility employing equipment requiring active cooling, the method comprising the following steps:
a. directing a refrigerant from a refrigerant supply line pressurized at a first pressure through a first heat exchanger, wherein the first heat exchanger is configured to use the refrigerant circulating through the first heat exchanger to cool air or liquid which passes through the first heat exchanger and is used for active cooling of the equipment in the facility,
b. directing the refrigerant to flow from the first heat exchanger to a refrigerant return line at a second pressure, wherein the second pressure is lower than the first pressure,
c. detecting a refrigerant temperature in the refrigerant return line using a return line temperature sensor positioned downstream of the first heat exchanger,
d. directing sufficient bypass flow of the refrigerant from the refrigerant supply line directly to the refrigerant return line via a first bypass line and without flowing through the first heat exchanger, and
e. adjusting, via a controller operatively connected to the return line temperature sensor and a first valve positioned in the first bypass line, an opening of the first valve based on the detected refrigerant temperature to maintain the refrigerant temperature at or below a preset maximum refrigerant temperature,
thereby keeping the refrigerant temperature in the refrigerant return line at or below the preset maximum refrigerant temperature.
12 . The method for cooling the facility, as in claim 11 , further comprising a step of detecting a refrigerant temperature in the refrigerant return line and using thereof for adjusting the bypass flow of the refrigerant to be sufficient to not exceed the preset maximum refrigerant temperature in the refrigerant return line.
13 . The method for cooling the facility, as in claim 11 , wherein the facility is a computer data center and the air or liquid passing through the first heat exchanger is used for active cooling of computer equipment of the data center.
14 . The method for cooling the facility, as in claim 11 , further comprising a step of providing a supplemental heat exchanger positioned outside the facility and a step of directing refrigerant from the first heat exchanger to the supplemental heat exchanger to at least partially extract heat from the refrigerant after adjusting the refrigerant temperature via the bypass flow and prior to directing the refrigerant to the refrigerant return line.
15 . The method for cooling the facility, as in claim 14 , wherein the step of directing the refrigerant to flow through the supplemental heat exchanger is only done when an ambient temperature is below a refrigerant temperature at the first refrigerant outlet of the first heat exchanger.
16 . The method for cooling the facility, as in claim 11 , further comprising:
f. directing at least some refrigerant coming out of the first heat exchanger to flow through a second heat exchanger prior to directing the refrigerant to the refrigerant return line,
wherein the controller adjusts the opening of the first valve based on a combined refrigerant temperature in the refrigerant return line resulting from refrigerant flowing through both the first heat exchanger and the second heat exchanger.