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NANO-STRUCTURED TWO-PHASE HEAT SPREADER FOR COOLING ULTRA-HIGH HEAT FLUX SOURCES

机译:用于冷却超高热通量源的纳米结构化两相散热器

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A two-phase heat spreader has been developed for cooling high heat flux sources in high-power lasers, high-intensity light-emitting diodes, and semiconductor power devices. The heat spreader targets the passive cooling of heat sources with fluxes greater than 5 W/mm~2 without requiring any active power consumption for the thermal solution. The prototype vapor chamber consists of an evaporator plate, a condenser plate and an adiabatic section, with water as the phase-change fluid. The custom-designed high heat flux source is composed of a platinum resistive heating pattern and a temperature sensor on an aluminum nitride substrate which is soldered to the outside of the evaporator. Experiments were performed with several different microstructures as evaporator surfaces under varying heat loads. The first microstructure investigated, a screen mesh, dissipated 2 W/mm~2 of heat load but with an unacceptably high evaporator temperature. A sintered copper powder microstructure with particles of 50 μm mean diameter supported 8.5 W/mm~2 without dryout. Four sets of particle diameters and different thicknesses for the sintered copper powder evaporators were tested. Additionally, some of the sintered structures were coated with multi-walled carbon nanotubes (CNT) that were rendered hydrophilic. Such nano-structured evaporators successfully showed a further reduction in thermal resistance of the vapor chamber.
机译:两相散热器已被开发用于在高功率激光器,高强度发光二极管和半导体功率器件冷却高热通量源。散热器靶向被动与通量大于5W /毫米〜2更大,而不需要用于热溶液中的任何活性功耗热源的冷却。原型蒸汽室由蒸发器板,冷凝器板和绝热段,以水为相变流体。定制设计的高热通量源是由被焊接到蒸发器的外侧的铂电阻加热模式和一个温度传感器的氮化铝衬底上的。实验用不同的热负荷下的几个不同的微观结构作为蒸发器表面上进行。第一微结构研究,筛网,消散的热负荷的2 W /毫米〜2但是具有不可接受的高的蒸发器温度。用50微米的平均直径的粒子的烧结铜粉微观结构支持8.5 W /毫米〜2无干涸。四套粒径和烧结铜粉蒸发器不同的厚度进行了测试。此外,一些烧结结构被涂覆有被赋予亲水性的多壁碳纳米管(CNT)。这种纳米结构的蒸发器顺利显示在所述蒸汽室的热电阻的进一步降低。

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