Patent classifications
H01L23/44
CIRCUIT DEVICES INTEGRATED WITH BOILING ENHANCEMENT FOR TWO-PHASE IMMERSION COOLING
A two-phase immersion cooling system for integrated circuit assemblies may be formed utilizing a heat dissipation device thermally coupled to at least one integrated circuit device, wherein the heat dissipation device includes at least one surface and at least one projection extending from the at least one surface, wherein the at least one projection includes at least one sidewall, and wherein the at least one sidewall of the at least one projection includes at least one surface area enhancement structure. Utilizing such a heat dissipation device can boost nucleate boiling, improve boiling performance, reduce superheat required to initiate boiling, boost the critical heat flux during boiling, and can translate to a greater number of integrated circuit devices/packages that can be placed into a single immersion cooling system.
COOLING SYSTEM AND COOLING METHOD FOR ELECTRONIC EQUIPMENT
There are provided a cooling system and a cooling method that are simple and efficient and improve cooling performances for an electronic device. A cooling system (10) includes a cooling bath (12). In the open space of the cooling bath (12), a second coolant (13) with a boiling point (T.sub.2) is contained. In the open space of the cooling bath (12), an electronic device (100) is housed. The electronic device (100) is mounted with a processor (110) as a heat generating component on a board (120). The electronic device (100) is immersed in the second coolant 13. A boiling cooling device (200) is a cooling device thermally connected to the processor (110), and encloses a first coolant 11 with a boiling point (T.sub.1) (where T.sub.2>T.sub.1).
Circuit board, chip cooling housing, assembly and method for cooling a semiconductor chip
A circuit board includes an electrically insulating part and an electrically conductive part. At least one semiconductor chip is embedded into the electrically insulating part in a part of the circuit board. Through openings in the part of the circuit board provide for passage of a cooling liquid. The through openings extend from a first surface of the circuit board to a second surface of the circuit board. The electrically conductive part includes a first outer conductive layer on the first surface and a second outer conductive layer on the second surface. The electrically conductive part also includes a first inner conductive layer which is electrically connected to the semiconductor chip. The first inner conductive layer is electrically insulated from the first outer conductive layer and from the second outer conductive layer by the electrically insulating part in the part of the circuit board.
Circuit board, chip cooling housing, assembly and method for cooling a semiconductor chip
A circuit board includes an electrically insulating part and an electrically conductive part. At least one semiconductor chip is embedded into the electrically insulating part in a part of the circuit board. Through openings in the part of the circuit board provide for passage of a cooling liquid. The through openings extend from a first surface of the circuit board to a second surface of the circuit board. The electrically conductive part includes a first outer conductive layer on the first surface and a second outer conductive layer on the second surface. The electrically conductive part also includes a first inner conductive layer which is electrically connected to the semiconductor chip. The first inner conductive layer is electrically insulated from the first outer conductive layer and from the second outer conductive layer by the electrically insulating part in the part of the circuit board.
Superconducting computing system in a liquid hydrogen environment
Superconducting computing system housed in a liquid hydrogen environment and related aspects are described. An example superconducting computing system includes a housing, arranged inside a liquid hydrogen environment, where a lower pressure is maintained inside the housing than a pressure outside the housing. The superconducting computing system further includes a substrate, arranged inside the housing, having a surface, where a plurality of components attached to the surface is configured to provide at least one of a computing or a storage functionality, and the substrate further comprises a plurality of circuit traces for interconnecting at least a subset of the plurality of the components. The housing is configured such that each of the plurality of components is configured to operate at a first temperature, where the first temperature is below 4.2 Kelvin, despite the liquid hydrogen environment having a second temperature greater than 4.2 Kelvin.
COOLING MODULE AND A METHOD OF ASSEMBLING THE COOLING MODULE TO AN ELECTRONIC CIRCUIT MODULE
Example implementations relate to a cooling module of a circuit assembly having a frame and an electronic circuit module including first and second chipsets, and a method of assembling the cooling module. The cooling module includes first and second cooling components. The first cooling component is connectable to the frame to establish a first thermal interface between the first cooling component and the first chipset. The first cooling component is positioned within a recess portion of the second cooling component, and each connector of a pair of second fluid connectors in the second cooling component is movably connected to a respective connector of a pair of first fluid connectors in the first cooling component to establish a fluid-flow path between the first and second cooling components. The second cooling component is connectable to the frame to establish a second thermal interface between the second cooling component and the second chipset.
IMMERSION COOLING ARRANGEMENTS FOR ELECTRONIC DEVICES
An electronics cooling arrangement includes a housing configured to contain a coolant and an electronic device disposed within the housing. The electronic device has a passageway with at least one inlet and at least one outlet and is configured to allow fluid flowing between the inlet and the outlet to cool the electronic device.
IMMERSION COOLING SYSTEMS AND METHODS
An immersion cooled electronic arrangement includes a sealed housing, a coolant contained within the housing, and an electronic device submerged within the coolant. An agitator is disposed within the housing to control passive heat transfer between the electronic device and the coolant. An immersion cooling system and related method are also described.
Three-dimensional laminated integrated circuit
A three-dimensional stacked integrated circuit includes a plurality of interposers between respective integrated circuits of the three-dimensional stacked integrated circuit and below a lowermost integrated circuit, wherein a plurality of movement paths of a coolant are respectively provided in the plurality of interposers, and the plurality of movement paths of the coolant provided in the plurality of interposers are connected to each other. Alternatively, the three-dimensional stacked integrated circuit is configured by immersion and the system thereof is simplified by the coolant interacting with the outside in grooves provided to the edges of the interposers. In this case, a path for allowing the coolant to flow in the layer direction is not necessary.
Three-dimensional laminated integrated circuit
A three-dimensional stacked integrated circuit includes a plurality of interposers between respective integrated circuits of the three-dimensional stacked integrated circuit and below a lowermost integrated circuit, wherein a plurality of movement paths of a coolant are respectively provided in the plurality of interposers, and the plurality of movement paths of the coolant provided in the plurality of interposers are connected to each other. Alternatively, the three-dimensional stacked integrated circuit is configured by immersion and the system thereof is simplified by the coolant interacting with the outside in grooves provided to the edges of the interposers. In this case, a path for allowing the coolant to flow in the layer direction is not necessary.