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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Investigation of entrance and exit effects on liquid transport through a cylindrical nanopore
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Investigation of entrance and exit effects on liquid transport through a cylindrical nanopore

机译:研究进出口对通过圆柱状纳米孔的液体传输的影响

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摘要

The entrance and exit effects on liquid transport through a nano-sized cylindrical pore under different solid wall-liquid interactions were studied by comparing molecular dynamics (MD) results of a finite length nanopore in a membrane with those of an infinite length one. The liquid transport through a finite length nanopore in a membrane was carried out by using a pressure-driven non-equilibrium molecular dynamics (NEMD) method proposed by Huang et al. [C. Huang, K. Nandakumar, P. Choi and L. W. Kostiuk, J. Chem. Phys., 2006, 124, 234701]. The fluid motion through an infinite length nanopore, which had the same cross-stream dimension as the finite length channel in the membrane, but with periodic boundary conditions in the stream-wise direction, was carried out by using the external-field driven NEMD approach [J. Koplik, J. R. Bavanar and J. F. Willemsen, Phys. Rev. Lett., 1988, 60, 1282]. The NEMD results show that the pressure and density distributions averaged over the channel in the radial direction in both finite and in finite length channels are similar, but the radial distributions of the stream-wise velocity were significantly different when the solid wall was repulsive. The entrance and exit effects lead to a decrease in flow rate at about 39% for the repulsive wall and 6% for the neutral-like wall.
机译:通过比较有限长纳米孔在膜中的分子动力学结果与无限长纳米孔中的分子动力学结果,研究了在不同的固体壁-液体相互作用下,液体通过纳米尺寸的圆柱孔进入和流出的影响。通过使用由Huang等人提出的压力驱动的非平衡分子动力学(NEMD)方法,可以实现液体在膜中通过有限长度纳米孔的传输。 [C。 Huang,K. Nandakumar,P. Choi和L.W. Kostiuk,J. Chem。物理学报,2006,124,234701]。通过使用外场驱动的NEMD方法,通过无限长的纳米孔进行流体运动,该无限长的纳米孔具有与膜中有限长度的通道相同的横流尺寸,但在流方向上具有周期性边界条件。 [J. Koplik,J。R. Bavanar和J. F. Willemsen,物理学。 Rev. Lett。,1988,60,1282]。 NEMD结果表明,在有限长度通道和有限长度通道中,整个通道在径向上的平均压力和密度分布都相似,但是当固体壁排斥时,沿流速度的径向分布却显着不同。入口和出口效应导致排斥壁的流速降低约39%,中性壁降低6%。

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