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Spray Cooling of High Aspect Ratio Open Microchannels

机译:高纵横比开放式微通道的喷雾冷却

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摘要

Direct spraying of dielectric liquids has been shown to be an effective method of cooling high-power electronics. Recent studies have illustrated that even higher heat transfer can be obtained by adding extended structures, particularly straight fins, to the heated surface. In the current work, spray cooling of high-aspect-ratio open microchannels was explored, which substantially increases the total surface area and allows more residence time for the incoming liquid to be heated by the wall. Five such heat sinks were constructed, and their thermal performance was investigated. These heat sinks featured a projected area of 1.41×1.41 cm{sup}2, channel width of 360 μm, a fin width of 500 μm, and fin lengths of 0.25 mm, 0.50 mm, 1.0 mm, 3.0 mm, and 5.0 mm. The five enhanced surfaces and a flat surface with the same projected area were sprayed with a full cone nozzle using PF-5060 at 30℃ and nozzle pressure differences from 1.36-4.08 atm (69-121 ml/min). In all cases, the enhanced surfaces improved thermal performance compared to the flat surface. Longer fins were found to outperform shorter ones in the single-phase regime. Adding fins also resulted in the onset of two-phase effects (and higher-heat transfer) at lower wall temperatures than the flat surface. The two-phase regime was characterized by a balance between added area, changing flow flux, flow channeling, and added conduction resistance. Spray efficiency calculations indicated that a much larger percentage of the liquid sprayed onto the enhanced surface evaporated than with the flat surface. Fin lengths between 1 mm and 3 mm appeared to be optimum for heat fluxes as high as 124 W/cm{sup}2 (based on projected area) and the range of conditions studied.
机译:直接喷涂介电液体已被证明是冷却大功率电子设备的有效方法。最近的研究表明,通过在加热表面添加扩展结构,特别是直翅片,可以获得更高的传热。在目前的工作中,探索了高纵横比开放式微通道的喷雾冷却,这大大增加了总表面积,并允许更多的停留时间让进入的液体被壁加热。构建了五个这样的散热器,并研究了它们的热性能。这些散热器的投影面积为 1.41×1.41 cm{sup}2,通道宽度为 360 μm,翅片宽度为 500 μm,翅片长度为 0.25 mm、0.50 mm、1.0 mm、3.0 mm 和 5.0 mm。使用PF-5060在30°C和1.36-4.08个大气压差(69-121 ml/min)下,用全锥形喷嘴喷涂五个增强表面和具有相同投影面积的平坦表面。在所有情况下,与平面相比,增强的表面提高了热性能。发现在单相状态下,较长的鳍片优于较短的鳍片。添加翅片还导致在比平坦表面更低的壁温下发生两相效应(和更高的传热)。两相状态的特点是增加面积、改变流量通量、流动通道和增加传导阻力之间的平衡。喷雾效率计算表明,喷洒到增强表面上的液体蒸发的百分比比平坦表面大得多。1 mm 和 3 mm 之间的翅片长度似乎最适合高达 124 W/cm{sup}2(基于投影面积)和所研究条件范围的热通量。

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