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Rheological properties of water films nanoconfined in parallel Au plates by molecular dynamics simulations

机译:分子动力学模拟通过平行Au板纳米镍纳米镍的流变性能

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Rheological properties of water films nanoconfined in two parallel Au plates are investigated with the aid of molecular dynamics simulations. The density distribution, velocity profile, and diffusion coefficients of the water film in a Couette flow are studied. Shear viscosity and its dependence on the shear rate of the water film are also examined in the present research. It is found that the density of the water molecules near the plates is much higher than that in the other regions. This indicates that many water molecules are adsorbed by the plates and adsorbed layers are formed in the vicinity of the plates. The diffusion of the whole film increases dramatically as the shear rate becomes greater than 10~(10)s~(-1). The shear viscosity decreases as the shear rate increases, especially for the water film with a small thickness, which indicates the shear-thinning behavior for viscosity of the nanoconfined film. Moreover, an increase in shear viscosity with a decrease in the film thickness can also be found in the present study.
机译:借助于分子动力学模拟研究了两个平行Au板中纳米镍的水膜的流变性能。研究了沟槽流中水膜的密度分布,速度分布和扩散系数。在本研究中还研究了剪切粘度及其对水膜剪切速率的依赖性。结果发现板附近的水分子的密度远高于其他地区的密度。这表明许多水分子被平板吸附,并且在平板附近形成吸附层。随着剪切速率变得大于10〜(10)〜(-1),整个膜的扩散急剧增加。随着剪切速率的增加,剪切粘度降低,特别是对于具有小厚度的水膜,这表明纳米织膜的粘度的剪切变薄行为。此外,还可以在本研究中发现膜厚度降低的剪切粘度的增加。

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