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首页> 外文期刊>Journal of Chemical Engineering of Japan >A Study of Permeation of n-Butane through ZSM-5 Membrane by Using Monte Carlo and Euqilibrium/Non-Equilibrium Molecular Dynamics Simulations
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A Study of Permeation of n-Butane through ZSM-5 Membrane by Using Monte Carlo and Euqilibrium/Non-Equilibrium Molecular Dynamics Simulations

机译:蒙特卡罗和平衡态/非平衡态分子动力学模拟研究ZSM-5膜渗透正丁烷

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摘要

Molecular simulations have been performed on permeation and adsorption of n-butane in a ZSM-5 zeolite membrane. In all simulations, a flexible potential model is used for n-butane since the smallest size of the permeating molecule is almost the same as the pore size of the ZSM-5 crystal. Equilibrium densities of n-butane in the ZSM-5 membrane calculated from the MC method are in good agreement with experimental adsorption data, being represented by the Langmuir adsorption isotherm model. Permeability of n-butane calculated from the muVT-NEMD method has a maximum against temperature, which agrees qualitatively with the experimental results. It is noted that the whole pores in the membrane are filled with molecules at room temperature. As compared with the local values of the Fick and the Maxwell-Stefan diffusion coefficients (D_F, D_MS) and the self-diffusion coefficients in the permeate direction (D_s,x), we confirm that the D_MS is almost independent of molecular loadings in the membrane, and that D_F>D_MS>D_s,x at high loadings. In addition, the three diffusion coefficients are almost identical at the zero loading. By providing a modification for the distribution coefficient (S) and diffusion coefficient (D) in the dase of nonlinear isotherms, we have clearly demonstrated that the permeaton at low temperatures is controlled by the diffusio process, where whole pores are filled with molecules, and then the controlling step changes to the adsorption process at higher temperature where the pores are characteried by medium loadings.
机译:对正丁烷在ZSM-5沸石膜中的渗透和吸附进行了分子模拟。在所有模拟中,由于正分子的最小尺寸几乎与ZSM-5晶体的孔径相同,因此将柔性电势模型用于正丁烷。 MC方法计算得到的ZSM-5膜中正丁烷的平衡密度与实验吸附数据吻合良好,用Langmuir吸附等温线模型表示。由muVT-NEMD方法计算得出的正丁烷的渗透率相对于温度具有最大值,在质量上与实验结果相符。注意,在室温下,膜中的整个孔充满分子。与Fick和Maxwell-Stefan扩散系数(D_F,D_MS)的局部值以及渗透方向(D_s,x)的自扩散系数相比,我们确认D_MS几乎与分子中的分子负载无关膜,在高载荷下D_F> D_MS> D_s,x另外,三个扩散系数在零负载时几乎相同。通过对非线性等温线的分布系数(S)和扩散系数(D)进行修改,我们清楚地证明了低温下的磁导率由扩散过程控制,整个孔隙中充满了分子,并且然后,控制步骤将改变为在较高温度下的吸附过程,在此过程中,孔的特征是中等负荷。

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