H05K7/20672

SERVER HEAT DISSIPATION STRUCTURE

A server heat dissipation structure, configured to dissipate the heat of a host casing of a dense type server. The server heat dissipation structure includes a thermosiphon heat sink and a fan assembly. The thermosiphon heat sink includes a heat absorbing end and a heat dissipation end that are connected via a connection tube. The fan assembly is disposed on a side of the heat dissipation end so as to help the heat dissipation of the heat dissipation end.

Sensors for cooling system fluid attributes

An example device in accordance with an aspect of the present disclosure includes a sensor, a controller, and an injector. The sensor is to provide sensor output regarding fluid chemistry of a fluid of a cooling system. The controller is to identify attributes of the fluid. The injector is to inject at least one additive into the fluid to bring at least one attribute into a threshold range.

Cooling device

A cooling device of an embodiment includes an evaporator, a condenser, a first connection pipe, a second connection pipe, and a third connection pipe. A refrigerant is vaporized in the evaporator by heat generated by a heating element. The condenser is located above the evaporator, and configured to condense the vaporized refrigerant by exchanging heat with an external fluid. The first connection pipe guides the refrigerant vaporized by the evaporator to the condenser. The second connection pipe guides the refrigerant condensed by the condenser to the evaporator. The third connection pipe connects a portion of the first connection pipe and a portion of the second connection pipe. A connection position between the third connection pipe and the first connection pipe is higher than a maximum liquid level height of the refrigerant in the second connection pipe during an operation.

SYSTEMS AND METHODS FOR USING ADDITIVE MANUFACTURING FOR THERMAL MANAGEMENT

According to one embodiment, a thermal management system for electronic devices, including a heat frame, a conformal slot portion, chassis frame, and heat fins wherein the heat frame, conformal slot, chassis frame, and heat fins are integrally formed as a unitary structure by additive manufacturing. In another example, there is a modular vapor assembly for electronic components having a vapor chamber comprising a component surface and a top surface with a vapor channel formed therebetween with at least one liquid receptacle and having a wick structure on at least some of an interior of the component surface. In operation, there is a circuit card with at least some of the electronic components coupled to the vapor chamber component surface and the wick structures transfer at least some of the liquid from the receptacle towards the electronic components, wherein the liquid turns to a vapor that moves towards the receptacle.

ELECTRONIC ASSEMBLIES HAVING EMBEDDED PASSIVE HEAT PIPES AND ASSOCIATED METHOD
20200245447 · 2020-07-30 ·

An electronic assembly may include a chassis, and electronic modules mounted within the chassis. Each electronic module may include a printed circuit substrate, heat-generating electronic components mounted on the printed circuit substrate, and a heat sink body mounted to the printed circuit substrate and having a plurality of heat pipe receiving passageways extending between opposing side edges and overlying corresponding heat-generating components. A respective elongate, passive, heat pipe may extend within each heat pipe receiving passageway and be removably fastened to at least one end to the heat sink body for enhanced conductive heat transport.

Flexible thermal cooling assembly

A cooling assembly for cooling a heat source includes a cold plate to absorb heat from the heat source. The cold plate defines a first groove. A thermally conductive clamp is removably secured to a liquid cooling tube. The thermally conductive clamp defines a second groove. A heat pipe includes a first end to fit within the first groove in the cold plate and a second end to fit within the second groove in the thermally conductive clamp. The heat pipe transfers heat absorbed by the cold plate to the liquid cooling tube via the thermally conductive clamp.

THERMAL MANAGEMENT FOR MODULAR ELECTRONIC DEVICES
20200191498 · 2020-06-18 · ·

Thermal management for modular electronic devices is provided. In one embodiment, a modular electronic device comprises: a primary electronics assembly comprising a least one module bay configured to receive a pluggable electronics module, wherein the pluggable electronics module comprises at least one heat conduction riser that protrudes from the pluggable electronics module; a heat management mechanism coupled to the primary electronics assembly, wherein the heat management mechanism includes at least one floating heat sink thermally coupled to the heat conduction riser of the pluggable electronic module by a heat pipe that defines a direct thermal conductive heat path between the pluggable electronics module and the floating heat sink. The heat pipe is mounted to the primary electronics assembly by a spring loaded floating heat pipe interface that applies a clamping force against the heat pipe, and maintains contact between the interface and the heat conduction riser.

Electronic assemblies having embedded passive heat pipes and associated method
10667378 · 2020-05-26 · ·

An electronic assembly may include a chassis, and electronic modules mounted within the chassis. Each electronic module may include a printed circuit substrate, heat-generating electronic components mounted on the printed circuit substrate, and a heat sink body mounted to the printed circuit substrate and having a plurality of heat pipe receiving passageways extending between opposing side edges and overlying corresponding heat-generating components. A respective elongate, passive, heat pipe may extend within each heat pipe receiving passageway and be removably fastened to at least one end to the heat sink body for enhanced conductive heat transport.

Systems and methods for using additive manufacturing for thermal management

According to one embodiment, a thermal management system for electronic devices, including a heat frame, a conformal slot portion, chassis frame, and heat fins wherein the heat frame, conformal slot, chassis frame, and heat fins are integrally formed as a unitary structure by additive manufacturing. In another example, there is a modular vapor assembly for electronic components having a vapor chamber comprising a component surface and a top surface with a vapor channel formed therebetween with at least one liquid receptacle and having a wick structure on at least some of an interior of the component surface. In operation, there is a circuit card with at least some of the electronic components coupled to the vapor chamber component surface and the wick structures transfer at least some of the liquid from the receptacle towards the electronic components, wherein the liquid turns to a vapor that moves towards the receptacle.

Two-phase fluid-actuated cooling device, system, and method
10602635 · 2020-03-24 · ·

An electronics circuit card system includes a flexible elongated hollow receptacle; a working fluid disposed within the flexible elongated hollow receptacle; one or more wicking structures formed within an interior hollow region of the flexible elongated hollow receptacle, wherein the one or more wicking structures are configured to circulate the working fluid within the flexible elongated hollow receptacle and expand the flexible elongated hollow receptacle against an electronics circuit card; and a chassis configured to hold the flexible elongated hollow receptacle against the electronics circuit card.