Scalable rack-mount air-to-liquid heat exchanger

US10010013B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-10010013-B2
Application numberUS-201615016249-A
CountryUS
Kind codeB2
Filing dateFeb 4, 2016
Priority dateDec 21, 2015
Publication dateJun 26, 2018
Grant dateJun 26, 2018

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

An Information Handling System (IHS) includes at least one node provisioned with heat-generating components and an air passage that enables air to pass through the node and exit the node as exhaust air. An air-to-liquid heat exchanger (ATLHE) block is placed in a path of the exhaust air. The ATLHE block has an air directing structure, one or more air movers to move the exhaust air through the air directing structure, and an ATLHE. The ATLHE includes a liquid transfer conduit having at least one liquid supply port extending into a heat transfer section, which terminates into at least one liquid return port, the liquid transfer conduit enabling cooling liquid transfer through the ATLHE. A liquid cooling subsystem includes supply and return conduits. The supply conduit is sealably mated to the at least one supply port and the return conduit is sealably mated to the at least one return port.

First claim

Opening claim text (preview).

What is claimed is: 1. An Information Handling System (IHS) comprising: at least one node provisioned with heat-generating components and having an air passage that enables air to pass through the node and exit the node as exhaust air; an air-to-liquid heat exchanger (ATLHE) block placed in a path of the exhaust air, the ATLHE block comprising an air directing structure, one or more air movers to move the exhaust air through the air directing structure, and an air-to-liquid heat exchanger (ATLHE) with a liquid transfer conduit having at least one liquid supply port extending into a heat transfer section, which terminates into at least one liquid return port, the liquid transfer conduit enabling cooling liquid transfer through the ATLHE; a liquid cooling subsystem comprising a supply conduit and a return conduit, the supply conduit sealably mated to the at least one supply port and the return conduit sealably mated to the at least one return port; and a liquid infrastructure management controller (LIMC) in communication with a first and a second temperature sensor and a dynamic control valve to dynamically adjust a volume of cooling liquid, based at least in part on a difference between the detected air temperatures, to provide sufficient heat transfer from the node via cooling liquid absorption of heat from the exhaust air circulating through the ATLHE block. 2. The IHS of claim 1 , wherein the node provides an exhaust end through which the exhaust air exits the node and the ATLHE block is aligned in fluid communication with the exhaust end. 3. The IHS of claim 1 , further comprising a rack having one or more chasses for receiving nodes, wherein the node is inserted into a front bay of a chassis, wherein the ATLHE block is received in a rear section of the rack at back of the chassis, with the air directing structure closely positioned to the at least one node to receive the exhaust air. 4. The IHS of claim 3 , wherein: the ATLHE block comprises: a supply bypass tube and a return bypass tube; and a dynamic control valve that directs a portion of cooling liquid from the supply bypass tube through the ATLHE and to the return bypass tube; the supply conduit comprises one or more modular liquid distribution (MLD) conduits that connect for fluid transfer to the supply bypass tube of the ATLHE block and to a selected one of a supply bypass tube corresponding to an adjacent node and a facility supply; and the return conduit comprises one or more MLD conduits that connect for fluid transfer to the return bypass tube of the node and a selected one of a return bypass tube corresponding to the adjacent node and a facility return. 5. The IHS of claim 4 , further comprising one or more liquid cooled (LC) nodes arranged in the rack where each LC node includes a supply bypass tube and a return bypass tube connected to another adjacent node by MLD conduits, wherein a plurality of MLD conduits connected across a plurality of nodes form a liquid rail. 6. The IHS of claim 3 , wherein the cooling liquid flowing through the ATLHE absorbs and removes substantially all of the heat generated by the heat-generating components and the IHS further comprises an air-tight enclosure associated with the at least one node and the ATLHE block and having a return structure directing air from the air movers of the ATLHE block towards an air intake of the at least one node to recirculate exhaust air that passes through and is cooled by the ATLHE back to the air passage through the node, wherein the air-tight enclosure provides a closed-loop air flow, which substantially minimizes intake of air-born contaminants and particles from ambient air outside of the RIHS. 7. The IHS of claim 6 , further comprising: a dynamic control valve that directs at least a portion of cooling liquid from a facility supply through the at least one liquid supply port; a first temperature sensor positioned to detect an air temperature at one of a return path to the intake and the intake of the at least one node, which air temperature correlates to a temperature of cooled exhaust air exiting the ATLHE; and a second temperature sensor positioned to detect an air temperature within the at least one node. 8. The IHS of claim 1 , further comprising: a dynamic control valve that directs at least a portion of cooling liquid from a facility supply through the at least one liquid supply port; a first temperature sensor positioned to detect an air temperature of a selected one of an intake and an exhaust of the at least one node; a second temperature sensor positioned to detect a hottest air temperature within the at least one node; a liquid infrastructure management controller (LIMC) in communication with the first and second temperature sensors and the dynamic control valve to dynamically adjust a volume of cooling liquid based at least in part on a difference between the detected air temperatures. 9. The IHS of claim 1 , wherein the air directing structure of the ATLHE block is configured with a form factor to receive at least two nodes. 10. The IHS of claim 1 , wherein the air directing structure of the ATLHE block is configured with a form factor to receive at least 1 node. 11. The IHS of claim 1 , wherein: the at least one node comprises a cuboid-shaped node enclosure with an exhaust end; the air directing structure comprises a cuboid-shaped cavity having an open end dimensioned to closely receive the exhaust end of the cuboid-shaped node-enclosure; the one or more air movers comprises fan modules received in an opposing side of the ATLHE block from the open end of the air directing structure; and the ATLHE is traversely positioned inside the air directing structure between the fan modules and the exhaust end of the one or more nodes. 12. An air-to-liquid heat exchanger (ATLHE) block for use in a liquid cooled rack information handling system (RIHS) having at least one air-cooled node with heat generating components, the ATLHE block comprising: an air directing structure at a front portion of the ATLHE block; one or more air movers positioned at a back section of the ATLHE block and which moves exhaust air through the air directing structure; an air-to-liquid heat exchanger (ATLHE) having a cooling liquid transfer conduit configured with at least one liquid supply port for sealably mating with a supply side conduit of a liquid cooling supply subsystem, the supply port extending into a heat transfer section of conduit providing direct surface exposure to the exhaust air received into the air directing structure and which terminates into at least one liquid return port for sealably mating with a return side conduit of the liquid cooling supply system, the liquid transfer conduit enabling cooling liquid transfer through the ATLHE to absorb heat from the exhaust air directed through the ATLHE; and one or more rack-connecting affordances that enables secure connection of the ATLHE block to a back of rack behind a node-receiving chassis and in front of a liquid cooling subsystem conduits, wherein the air directing structure is closely positioned to an exhaust end of at least one node to receive the exhaust air. 13. The ATLHE block of claim 12 , wherein the at least one liquid supply port and liquid return port are configured to receive and mate to a modular liquid distribution (MLD) conduit within a liquid rail structure of the liquid cooling supply system. 14. The ATLHE block of claim 12 , wherein the cooling liquid flowing through the ATLHE absorbs and removes substantially all of the heat generated by heat-generating components and the ATLHE block is sealed to an air-tight air ret

Assignees

Inventors

Classifications

  • Liquid coolant without phase change · CPC title

  • Thermal management, e.g. cabinet temperature control · CPC title

  • Cabinets therefor, e.g. chassis or racks or mechanical interfaces between blades and support structures · CPC title

  • Liquid coolant with phase change, e.g. heat pipes · CPC title

  • Forced ventilation of a gaseous coolant (in closed loop H05K7/206 or H05K7/20609 or H05K7/20618) · CPC title

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What does patent US10010013B2 cover?
An Information Handling System (IHS) includes at least one node provisioned with heat-generating components and an air passage that enables air to pass through the node and exit the node as exhaust air. An air-to-liquid heat exchanger (ATLHE) block is placed in a path of the exhaust air. The ATLHE block has an air directing structure, one or more air movers to move the exhaust air through the a…
Who is the assignee on this patent?
Dell Products Lp
What technology area does this patent fall under?
Primary CPC classification H05K7/20663. Mapped technology areas include Electricity.
When was this patent published?
Publication date Tue Jun 26 2018 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 12 related publications on this page (citations in our corpus or others sharing the same primary CPC).