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Effects of viscous heating and wall-fluid interaction energy on rate-dependent slip behavior of simple fluids

机译:粘性加热和壁流体相互作用能量对简单流体速率依赖性滑动行为的影响

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摘要

Molecular dynamics simulations are used to investigate the rate and temperature dependence of the slip length in thin liquid films confined by smooth, thermal substrates. In our setup, the heat generated in a force-driven flow is removed by the thermostat applied on several wall layers away from liquid-solid interfaces. We found that for both high and low wall-fluid interaction (WFI) energies, the temperature of the fluid phase rises significantly as the shear rate increases. Surprisingly, with increasing shear rate, the slip length approaches a constant value from above for highWFI energies and from below for low WFI energies. The two distinct trends of the rate-dependent slip length are rationalized by examining S(G_1), the height of the main peak of the in-plane structure factor of the first fluid layer (FFL) together with D_(WF), which is the average distance between the wall and FFL. The results of numerical simulations demonstrate that reduced values of the structure factor, S(G_1), correlate with the enhanced slip, while smaller distances D_(WF) indicate that fluid atoms penetrate deeper into the surface potential leading to larger friction and smaller slip. Interestingly, at the lowest WFI energy, the combined effect of the increase of S(G1) and decrease of D_(WF) with increasing shear rate results in a dramatic reduction of the slip length.
机译:分子动力学模拟用于研究薄液体膜在狭窄的热基板上限制的薄液膜中的速率和温度依赖性。在我们的设置中,通过在几个壁层上施加在液体固体接口上的​​恒温器去除在力驱动流中产生的热量。我们发现,对于高壁流体相互作用(WFI)能量,随着剪切速率的增加,流体相的温度显着上升。令人惊讶的是,随着剪切速率的增加,滑动长度从上面接近恒威能量的恒定值,并且从下面从下面达到低WFI能量。通过检查S(G_1),第一流体层(FFL)的平面结构因子的主峰值的高度与D_(WF)一起合理地进行率依赖性滑动长度的两个明显的趋势。墙壁和FFL之间的平均距离。数值模拟的结果表明,结构因子,S(G_1)的减小值与增强的滑动相关,而较小的距离D_(WF)表明流体原子深入进入表面电位,导致较大的摩擦和更小的滑动。有趣的是,在最低WFI能量下,S(G1)增加的综合效果和D_(WF)的降低导致滑动长度的显着降低。

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