Department of Chemical Engineering, McMaster University, Hamilton, Ontario L8S 4L7, Canada.
J Chem Phys. 2013 Mar 28;138(12):124701. doi: 10.1063/1.4794685.
Nonequilibrium molecular dynamics (NEMD) simulations are presented to investigate the effect of water-membrane interactions on the transport properties of pressure-driven water flow passing through carbon nanotube (CNT) membranes. The CNT membrane is modified with different physical properties to alter the van der Waals interactions or the electrostatic interactions between water molecules and the CNT membranes. The unmodified and modified CNT membranes are models of simplified nanofiltration (NF) membranes at operating conditions consistent with real NF systems. All NEMD simulations are run with constant pressure difference (8.0 MPa) temperature (300 K), constant pore size (0.643 nm radius for CNT (12, 12)), and membrane thickness (6.0 nm). The water flow rate, density, and velocity (in flow direction) distributions are obtained by analyzing the NEMD simulation results to compare transport through the modified and unmodified CNT membranes. The pressure-driven water flow through CNT membranes is from 11 to 21 times faster than predicted by the Navier-Stokes equations. For water passing through the modified membrane with stronger van der Waals or electrostatic interactions, the fast flow is reduced giving lower flow rates and velocities. These investigations show the effect of water-CNT membrane interactions on water transport under NF operating conditions. This work can help provide and improve the understanding of how these membrane characteristics affect membrane performance for real NF processes.
非平衡分子动力学 (NEMD) 模拟用于研究水-膜相互作用对通过碳纳米管 (CNT) 膜的压力驱动水流传输特性的影响。通过改变 CNT 膜的范德华相互作用或水分子与 CNT 膜之间的静电相互作用来修饰 CNT 膜,以改变其物理性质。未修饰和修饰的 CNT 膜是简化纳滤 (NF) 膜的模型,其操作条件与实际 NF 系统一致。所有 NEMD 模拟均在恒定压差 (8.0 MPa)、温度 (300 K)、恒定孔径 (CNT(12,12) 的半径为 0.643nm) 和膜厚度 (6.0nm) 下进行。通过分析 NEMD 模拟结果,获得水流速率、密度和速度(流向)分布,以比较通过修饰和未修饰的 CNT 膜的传输。与纳维斯托克斯方程预测相比,通过 CNT 膜的压力驱动水流速度快 11 到 21 倍。对于通过范德华相互作用或静电相互作用更强的修饰膜的水,快速流动会减少,从而降低流速和速度。这些研究表明了水-CNT 膜相互作用对 NF 操作条件下的水传输的影响。这项工作可以帮助提供和提高对这些膜特性如何影响实际 NF 过程中膜性能的理解。