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Effects of wettability and interfacial nanobubbles on flow through structured nanochannels: an investigation of molecular dynamics

机译:润湿性和界面纳米气泡对通过结构化纳米通道流动的影响:分子动力学研究

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Solid-fluid boundary conditions are strongly influenced by a number of factors, including the intrinsic properties of the solid/fluid materials, surface roughness, wettability, and the presence of interfacial nanobubbles (INBs). The interconnected nature of these factors means that they should be considered jointly. This paper employs molecular dynamics (MD) simulation in a series of studies aimed at elucidating the influence of wettability in boundary behaviour and the accumulation of interfacial gas. Specifically, we examined the relationship between effective slip length, the morphology of nanobubbles, and wettability. Two methods were employed for the promotion of hydrophobicity between two structured substrates with similar intrinsic contact angles. We also compared anisotropic and isotropic atomic arrangements in the form of graphite and Si(100), respectively. A physical method was employed to deal with variations in surface roughness, whereas a chemical method was used to adjust the wall-fluid interaction energy (E-wf). We first compared the characteristic properties of wettability, including contact angle and fluid density within the cavity. We then investigated the means by which variations in solid-fluid interfacial wettability affect interfacial gas molecules. Our results reveal that the morphology of INB on a patterned substrate is determined by wettability as well as the methods employed for the promotion of hydrophobicity. The present study also illustrates the means by which the multiple effects of the atomic arrangement of solids, surface roughness, wettability and INB influence effective slip length.
机译:固体-流体边界条件受许多因素的强烈影响,包括固体/流体材料的固有性质,表面粗糙度,润湿性和界面纳米气泡(INB)的存在。这些因素的相互联系的性质意味着应将它们共同考虑。本文在一系列研究中采用了分子动力学(MD)模拟,旨在阐明可湿性对边界行为和界面气体聚集的影响。具体来说,我们研究了有效滑移长度,纳米气泡的形态和润湿性之间的关系。采用两种方法来促进具有相似固有接触角的两个结构化基材之间的疏水性。我们还分别比较了石墨和Si(100)形式的各向异性和各向同性原子排列。使用物理方法来处理表面粗糙度的变化,而使用化学方法来调整壁-流体相互作用能(E-wf)。我们首先比较了润湿性的特性,包括接触角和型腔内的流体密度。然后,我们研究了固液界面润湿性变化影响界面气体分子的方式。我们的结果表明,图案化基材上INB的形态取决于润湿性以及促进疏水性的方法。本研究还说明了固体原子排列,表面粗糙度,润湿性和INB的多重影响影响有效滑移长度的方法。

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