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MOLECULAR DYNAMICS SIMULATIONS OF THERMAL INTERACTIONS IN NANOSCALE LIQUID CHANNELS

机译:纳米尺度液体通道中热相互作用的分子动力学模拟

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Molecular Dynamics (MD) simulations of nano-scale flows typically utilize fixed lattice crystal interactions between the fluid and stationary wall molecules. This approach cannot properly model thermal exchange at the wall-fluid interface. Therefore, we use an interactive thermal wall model that can properly simulate the flow and heat transfer in nano-scale channels. Using the interactive thermal wall, Fourier law of heat conduction is verified for the 3.24 nm channel, while the thermal conductivity obtained from Fourier law is verified using the predictions of Green-Kubo theory. Moreover, temperature jumps at the liquid/solid interface, corresponding to the well known Kapitza resistance, are observed. Using systematic studies thermal resistance length at the interface is characterized as a function of the surface wettability, thermal oscillation frequency, wall temperature and thermal gradient. An empirical model for the thermal resistance length, which could be used as the jump-coefficient of a Navier boundary condition, is developed.
机译:纳米级流的分子动力学(MD)模拟通常利用流体与固定壁分子之间的固定晶格晶体相互作用。这种方法不能正确地模拟壁-流体界面处的热交换。因此,我们使用交互式热壁模型,可以正确模拟纳米级通道中的流动和传热。使用交互式热壁,验证了3.24 nm通道的傅里叶热传导定律,同时使用Green-Kubo理论的预测验证了从傅里叶定律获得的热导率。此外,观察到在液体/固体界面处的温度跳跃,这与众所周知的Kapitza电阻相对应。通过系统的研究,界面处的热阻长度是表面润湿性,热振荡频率,壁温和热梯度的函数。建立了热阻长度的经验模型,该模型可以作为Navier边界条件的跳跃系数。

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