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首页> 外文期刊>The Journal of Chemical Physics >Molecular dynamics simulation of a pressure-driven liquid transport process in a cylindrical nanopore using two self-adjusting plates
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Molecular dynamics simulation of a pressure-driven liquid transport process in a cylindrical nanopore using two self-adjusting plates

机译:使用两个自调节板的圆柱形纳米孔中压力驱动液体传输过程的分子动力学模拟

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摘要

Fluid transport through a nanopore in a membrane was investigated by using a novel molecular dynamics approach proposed in this study. The advantages of this method, relative to dual-control-volume grand-canonical molecular dynamics method, are that it eliminates disruptions to the system dynamics that are normally created by inserting or deleting particles from control volumes, and that it functions well for dense systems due to the number of particles being fixed in the system. Using the proposed method, we examined liquid argon transport through a nanopore by performing nonequilibrium molecular dynamics (NEMD) simulations under different back pressures. Validation of the code was performed by comparing simulation results to published experimental data obtained under equilibrium conditions. NEMD results show that constant pressure difference across the membrane was readily achieved. (c) 2006 American Institute of Physics.
机译:通过使用这项研究中提出的新型分子动力学方法,研究了通过膜中纳米孔的流体传输。相对于双控制体积大经典分子动力学方法,此方法的优点是,它消除了通常通过在控制体积中插入或删除粒子而造成的系统动力学中断,并且对于稠密系统运行良好由于系统中固定的粒子数量。使用提出的方法,我们通过在不同背压下进行非平衡分子动力学(NEMD)模拟,研究了液态氩在纳米孔中的传输。通过将仿真结果与在平衡条件下获得的已发布实验数据进行比较,对代码进行验证。 NEMD结果表明,容易在膜上获得恒定的压差。 (c)2006年美国物理研究所。

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