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Non-equilibrium molecular dynamics study of nanoscale thermal contact resistance

机译:纳米级热接触电阻的非平衡分子动力学研究

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摘要

Interfaces play an important role in microscale and nanoscale heat transfer processes with molecular dynamics ( MD) simulations often used to study these interfacial phenomena. In this study, two models were used to simulate thermal conduction across micro contact points and the thermal contact resistance using non- equilibrium molecular dynamics simulations with consideration of the near field radiation. When the ratio of the length of the micro contact to the length of the conduction region is less than 0.125, the influence of the near field radiation should be considered; but when the ratio is larger than 0.2, it can be neglected. When the computational domain sizes are 8.50 x 10.62 x 8.50 nm and 10.62 x 10.62 x 10.62 nm, the MD results show that the thermal contact resistance exponentially increases with decreasing area of the micro contact point and increases with increasing micro contact layer thickness. The MD thermal contact resistances in nanoscale are much larger than that of the classical thermal analysis since the material thermal conductivity reduction is ignored in the classical model. The results also show that material defects increase the thermal resistance.
机译:界面在微米级和纳米级传热过程中起着重要作用,而分子动力学(MD)模拟通常用于研究这些界面现象。在这项研究中,使用了两个模型来模拟跨微接触点的热传导和使用非平衡分子动力学模拟并考虑到近场辐射的热接触电阻。当微接触的长度与导电区域的长度之比小于0.125时,应考虑近场辐射的影响。但是当比率大于0.2时,可以忽略不计。当计算域大小为8.50 x 10.62 x 8.50 nm和10.62 x 10.62 x 10.62 nm时,MD结果表明,热接触电阻随微接触点面积的减小而呈指数增长,随微接触层厚度的增加而呈指数增加。由于在经典模型中忽略了材料导热系数的降低,因此纳米级的MD热接触电阻比经典的热分析大得多。结果还表明材料缺陷增加了热阻。

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