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首页> 外文期刊>International Communications in Heat and Mass Transfer >Nucleate pool boiling heat transfer enhancement in saturated Novec 7100 using titanium dioxide nanotube arrays
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Nucleate pool boiling heat transfer enhancement in saturated Novec 7100 using titanium dioxide nanotube arrays

机译:使用二氧化钛纳米管阵列含有饱和Novec 7100的核池沸腾的热传递增强

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The effect of titanium dioxide (TiO_2) nanotubes on pool boiling heat transfer is experimentally investigated. Four surfaces including plain or nanotube coated copper or titanium substrates are tested in the saturated Novec 7100. Both the nanotube coated surfaces enhances the critical heat flux (CHF) at around 40% compared to the relative plain surfaces. The nanotube coated titanium substrate effectively improves the heat transfer coefficient at around 65% over the plain surface, while the nanotube coated copper substrate shows the average heat transfer coefficient at about 20% lower than its plain surface. From the coincident boiling curves after reducing a thermal interface resistance from the nanotube coated copper substrate and bubble departure characteristics of the two coated surfaces, it is inferred that the nanotubes are effective in enhancing both the heat transfer coefficient and CHF. The observation shows both the improvements of the nanotube surfaces could be attributed to the modified bubble dynamics and effective rewetting of the dry spots, related to the faster liquid replenishment due to capillary wicking of the tube-like structure. The identification of the TiO_2 nanotube influence on pool boiling with the dielectric fluids can help the further applications of the nanotube coating in two-phase cooling systems.
机译:实验研究了二氧化钛(TiO_2)纳米管对池沸腾热传递的影响。在饱和Novec 7100中测试包括普通或纳米管涂覆的铜或钛基材的四个表面。与相对普通表面相比,纳米管涂覆的表面两者均增强临界热通量(CHF)约为40%。纳米管涂覆的钛基底有效地将传热系数提高了大约65%的普通表面,而纳米管涂覆的铜基材显示出比其平原表面低约20%的平均传热系数。从纳米管涂覆的铜基板和两个涂覆表面的气泡脱离特性降低热界面电阻后,推断纳米管在增强传热系数和CHF方面是有效的。观察结果表明,纳米管表面的改进既可能归因于改进的气泡动力学和有效重复干斑,与管状结构的毛细管芯吸引起的较快的液体补充有关。 TiO_2纳米管对池沸腾的识别与介电流液的影响可以帮助纳米管涂层在两相冷却系统中的进一步应用。

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