Patent classifications
H05K7/20827
External cooling unit design for a data center with two phase fluid thermal loops
A cooling system includes an ingress port to receive refrigerant in a vapor form from an evaporator, an egress port to return refrigerant in a liquid form back to the evaporator, a condenser coupled to the ingress port and the egress port, and a compressor coupled to the ingress port and the condenser. When the cooling system operates in a first mode, the condenser is configured to receive and condense the refrigerant from the vapor form into the liquid form and to return the refrigerant in the liquid form to the regress port. When the cooling system operates in a second mode, the compressor is configured to compress the refrigerant in the vapor form and to supply the compressed refrigerant to the condenser to be condensed therein.
HYBRID COOLING SYSTEMS FOR DATACENTERS
Systems and methods for operating a datacenter are disclosed. In at least one embodiment, hybrid cooling unit is disclosed wherein an evaporative cooler is to provide a source of cooled air and a liquid heat exchanger is to provide a source of cooled liquid for cooling one or more electronic components, the hybrid cooling unit further including an air inlet to direct a flow of external air to remove heat from the evaporative cooler and the liquid heat exchanger.
DISAGGREGATED SYSTEM ARCHITECTURE FOR IMMERSION COOLING
In one embodiment, a cooling system comprises an information technology (IT) cluster layer with multiple immersion tanks, each immersion tanks including electronic components submerged in a two-phase liquid coolant; and a cooling capacity layer that includes a vapor subsystem, a liquid subsystem, and a condensing cooler. The system further includes a distribution layer that include vapor lines for transmitting vapor from each of the immersion tanks to the vapor subsystem, and liquid lines for distributing liquid from the liquid subsystem to each immersion tank in the IT cluster layer. The two subsystems operate independently to maintain proper fluid level in the immersion tanks efficiently.
THERMAL MANAGEMENT SYSTEM WITH PHASE CHANGE AND AUXILIARY COOLING SYSTEMS
A thermal management system includes a cooling unit, a condenser, and a processor. The processor is located within a server, and the system also includes a phase change cooling device in thermal communication with the processor, and in fluid communication with the condenser. The system also includes a single phase cooling device in thermal communication with the phase change cooling device, and in fluid communication with the liquid cooling unit. The system also includes a temperature sensor in thermal communication with the single phase cooling device, and a fluid pump to move fluid between the liquid cooling unit and the single phase cooling device. A TEC device may also be implemented between the phase change cooling device and the single phase cooling device.
TWO PHASE IMMERSION COOLING SYSTEM WITH DUAL CONDENSER UNITS
An immersion cooling system includes an immersion tank and one or more information technology (IT) equipment situated within the immersion tank. The IT equipment is configured to provide IT services and is at least partially submerged within a phase change liquid, where, when the IT equipment provides the IT services, the IT equipment generates heat that is transferred to the phase change liquid thereby causing at least some of the phase change liquid to turn into vapor phase. The immersion cooling system includes a primary condenser unit positioned above the immersion tank and a secondary condenser unit, where, either a single, or both the primary and secondary condenser units are configured to receive cooling liquid from an external cooling unit to condense the phase change liquid in vapor phase back into liquid phase.
MODULAR BASED DESIGN FOR DATA CENTERS
The disclosure provides a system, for designing and developing immersion cooling in data centers. The system includes an internet technology (IT) tank that houses a computing device immersed in a two phase coolant; an aisle, in which the immersion tank is disposed, that captures a first vaporized portion of the two phase coolant escaped from the immersion tank; a condenser that transforms the first vaporized portion of the two phase coolant that escaped from the immersion tank into a first liquid portion of the two phase coolant; a second condenser captures and condenses a second portion of vapor; and a liquid distributor manages the cooling fluid and coolant fluid for the IT tank and two condensers.
FULLY REDUNDANT COOLING UNIT WITH PHASE CHANGE FLOW CONTROL UNIT
In one embodiment, a liquid cooling apparatus includes a first cooling loop to provide cooling liquid to a heat load, wherein the first cooling loop comprises a first condenser unit, a first liquid supply line, and a first vapor return line and a second cooling loop to provide cooling liquid to the heat load, wherein the second cooling loop comprises a second condenser unit, a second liquid supply line, and a second vapor return line, wherein the first vapor return line and the second vapor return line are coupled by an interconnection loop. The liquid cooling apparatus further includes a first pressure sensor coupled to the first vapor return line, a second pressure sensor coupled to the second vapor return line, and at least one main cooling source controlled based on the first pressure sensor and the second pressure sensor.
MULTIPLE PHASE MULTIPLE SYSTEM ARCHITECTURE
A multiple phase cooling system is described for an electronic rack, a cluster of servers, and for a data centers. An inlet of a 3-way flow control valve (FCV) is coupled to a main coolant source. A first outlet of the FCV is coupled to a single-phase cooling system and a second outlet of the FCV is coupled to a two-phase cooling system. The FCV is configured to adjust an amount of coolant between the single-phase cooling system and the two-phase cooling system. Upon detecting a rise in vapor pressure in a return line of the two-phase cooling system, the FCV can be adjusted to direct more coolant to the two-phase cooling system and less coolant to the single-phase system. The FCV can continuously monitor the vapor pressure and adjust the amount of coolant to each cooling system accordingly.
HEAT REMOVAL SYSTEMS AND METHODS WITH AUTOMATED FIRE SUPPRESSION FOR DATA CENTERS
In an open-loop heat removal system for a building such as a data center or a home, cool air is supplied to the building by a chilling unit and hot air is expelled from the building without recycling, recirculating, or re-cooling the hot air. For fire suppression, the system receives temperature reading(s) from temperature sensor(s) and determines whether any temperature reading reaches or exceeds a temperature that indicates presence of a fire. If so, a louver positioned over an inlet module is automatically or programmatically closed, shutting off air supply to the building. The system determines whether the building is under a negative pressure internally. If not, an exhaust fan at the outlet of the building is turned on to create a negative pressure internally. The system determines whether an oxygen level of the building indicates that the fire has been contained. If not, a sprinkler system is activated.
DISTRIBUTED COMPOSITE REFRIGERATION SYSTEM AND DATA CENTER
A distributed composite refrigeration system includes a multichannel heat exchanger and at least two refrigeration units. The at least two refrigeration units are connected to at least two indoor areas in one-to-one correspondences. Each refrigeration unit includes a refrigeration part, a heat exchange part, and a heat dissipation part. A refrigerant flows between the refrigeration part and the heat exchange part, an intermediate medium flows in the heat exchange part, and the refrigerant and the intermediate medium implement heat exchange at the heat exchange part. The heat exchange part delivers the intermediate medium obtained after heat exchange to the heat dissipation part and/or the multichannel heat exchanger for heat dissipation. The multichannel heat exchanger is thermally connected to an external pipe network, and the intermediate medium performs heat exchange with a heat carrying body in the external pipe network.