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Vibration-enhanced direct contact heat exchange using gallium as a solid phase change material

机译:振动增强的直接接触热交换使用镓作为固相变化材料

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摘要

This study experimentally addresses cooling hot liquid in a heat sink under mechanical vibrational excitations. We investigated vibration-enhanced direct contact heat exchange between hot water and a heat sink composed of a phase change material, solid gallium (Ga). The whole sink assembly was vibrated with a sinusoidal wave in the vertical direction. Latent heat and low melting temperature of Ga restricted the maximum temperature rise and the superheating of molten Ga between the water and the solid Ga body. The total amount of Ga melted during the heat exchange with water was measured, providing the share of latent and, in turn, sensible heat absorbed by Ga during the process. Vibration drastically enhanced the cooling rates of hot water under the tested frequencies (20 and 50 Hz) and amplitudes (0.3, 0.5 and 0.7 mm). The enhancement in water cooling was better pronounced for amplitudes higher than 0.3 mm. Under 50 Hz frequency and 0.7 mm amplitude, 99% of heat lost by water was dumped into the gallium sink and 1% was dissipated into the surrounding environment. Under static non-vibrating conditions the heat sink could only capture about 60% of the heat lost by the water. The rest was dissipated into the environment.
机译:本研究通过机械振动激发实验地解决了散热器中的冷却热液体。我们调查了热水和由相变材料,固体镓(GA)组成的散热器之间的振动增强的直接接触热交换。整个水槽组件在垂直方向上用正弦波振动。 GA的潜热和低熔点温度限制了水和固体GA主体之间的最大温升和熔融Ga的过热。测量在热交换期间熔化的Ga的总量,提供潜伏的份额,又在该过程中被Ga吸收的明智的热量。振动在测试频率(20和50Hz)和振荡下大大提高了热水的冷却速率(0.3,0.5和0.7mm)。水冷却的增强更加明显高于0.3mm的幅度。在50 Hz频率下和0.7mm的振幅下,99%的水丢失到镓水槽中,1%被消散到周围环境中。在静态非振动条件下,散热器只能捕获水损失的约60%。其余的被消散到环境中。

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