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Newtonian flow inside carbon nanotube with permeable boundary taking into account van der Waals forces

机译:考虑范德华力具有可渗透边界的碳纳米管内部的牛顿流

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摘要

Here, water flow inside large radii semi-infinite carbon nanotubes is investigated. Permeable wall taking into account the molecular interactions between water and a nanotube, and the slip boundary condition will be considered. Furthermore, interactions among molecules are approximated by the continuum approximation. Incompressible and Newtonian fluid is assumed, and the Navier-Stokes equations, after certain assumptions, transformations and derivations, can be reduced into two first integral equations. In conjunction with the asymptotic expansion technique, we are able to derive the radial and axial velocities analytically, capturing the effect of the water leakage, where both mild and exceptionally large leakages will be considered. The radial velocity obeys the prescribed boundary condition at the (im)permeable wall. Through the mean of the radial forces, the sufficiently large leakages will enhance the radial velocity at the center of the tube. On the other hand, unlike the classical laminar flow, the axial velocity attains its maximum at the wall due to the coupling effect with the radial forces as water is being pushed into the proximity of the inner wall. In addition, the axial velocity and the flux with the consideration of the suck-in forces, induced by the tubes’ entry turn out to be one order higher than that without the suck-in forces. All the aforementioned considerations might partially resolve the mysteriously high water penetration through nanotubes. Axial velocity also drops with the tube’s length when the water leakage is permitted and the suck-in forces will ease the decline rate of the axial velocity. The present mathematical framework can be directly employed into the water flow inside other porous nano-materials, where large water leakage is permitted and therefore are of huge practical impact on ultra-filtration and environmental protection.
机译:在此,研究了大半径半无限碳纳米管内部的水流。考虑到水和纳米管之间的分子相互作用以及滑移边界条件,应考虑渗透墙。此外,通过连续近似来近似分子之间的相互作用。假定存在不可压缩流体和牛顿流体,并且在进行了某些假设,变换和推导之后,Navier-Stokes方程可简化为两个第一积分方程。结合渐进扩展技术,我们能够分析得出径向速度和轴向速度,从而捕获漏水的影响,在漏水中将考虑轻度泄漏和异常大的泄漏。径向速度在(不渗透)壁处遵守规定的边界条件。通过径向力的平均值,足够大的泄漏将提高管中心的径向速度。另一方面,与传统的层流不同,当水被推入内壁附近时,由于与径向力的耦合作用,轴向速度在壁上达到了最大值。另外,考虑到吸气力,由管子的入口引起的轴向速度和通量比没有吸气力时高了一个数量级。所有上述考虑因素可能会部分解决神秘的高水透过纳米管的问题。当允许漏水时,轴向速度也会随着管子的长度而下降,而吸力将减轻轴向速度的下降速度。本数学框架可直接用于其他多孔纳米材料内部的水流中,在这种情况下允许大量漏水,因此对超滤和环境保护具有巨大的实际影响。

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