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Self-Driven Electronic Cooling Based on Thermosyphon Effect of Room Temperature Liquid Metal

机译:基于室温液态金属热虹吸效应的自驱动电子冷却

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Thermal management has been a critical issue for the safe running of an electronic device. Driving liquid metal with low melting point to extract heat from the thermal source is highly efficient because of its superior thermophysical properties over conventional coolant such as water or the like. In this paper, utilizing thermosyphon effect to drive room temperature liquid metal for electronic cooling was proposed for the first time with its technical feasibility demonstrated. This may lead to a self supported cooling which just utilizes the waste heat produced by the hot chip to drive the flow of liquid metal. And the device thus fabricated will be the one without any external pump and moving elements inside. A series of conceptual experiments under different operational conditions were performed to evaluate the cooling performance of the new method. Meanwhile, the results were also compared with that of water cooling by ways of thermal infrared graph and temperatures acquired by thermocouples. According to the measurements, it was found that the cooling performance of liquid metal was much stronger than that of water, and this will become even better with the increase of heat load, and height difference between the cooler and heater. A theoretical thermal resistance model was established and convective heat transfer coefficient was calculated to interpret the phenomenon with uncertainty analyzed. With further improvement of the present system and liquid metal coolant, this method is expected to be flexibly useful for heat dissipation of light-emitting diode (LED) street lamp, desk computer and radio remote unit (RRU), where confined space, efficient cooling, low energy consumption, dust-proof and water-proof are critically requested.
机译:热管理一直是确保电子设备安全运行的关键问题。驱动具有低熔点的液态金属以从热源提取热量是高效的,这是因为其具有比常规冷却剂(例如水等)优越的热物理特性。本文首次提出了利用热虹吸效应驱动室温液态金属进行电子冷却的技术可行性。这可能会导致自我支持的冷却,该冷却仅利用由热切屑产生的废热来驱动液态金属的流动。这样制成的装置将是其中没有任何外部泵和移动元件的装置。在不同的操作条件下进行了一系列概念性实验,以评估新方法的冷却性能。同时,通过热红外图和热电偶获得的温度,将结果与水冷却的结果进行了比较。根据测量结果,发现液态金属的冷却性能比水强得多,并且随着热负荷的增加以及冷却器和加热器之间的高度差的增加,这种性能将变得更好。建立了理论热阻模型,并计算了对流换热系数,以解释该现象,并进行了不确定性分析。随着本系统和液态金属冷却剂的进一步改进,该方法有望灵活用于发光二极管(LED)路灯,台式计算机和无线电遥控单元(RRU)的散热,其中空间狭窄,有效冷却要求低能耗,防尘和防水。

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