李维仲

个人信息Personal Information

教授

博士生导师

硕士生导师

性别:男

毕业院校:Nottingham trent University

学位:博士

所在单位:能源与动力学院

学科:制冷及低温工程. 工程热物理. 热能工程

办公地点:能动学院新大楼822室

联系方式:wzhongli@dlut.edu.cn

电子邮箱:wzhongli@dlut.edu.cn

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A multi-scale flow analysis in hydrogen separation membranes using a coupled DSMC-SPH method

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论文类型:期刊论文

发表时间:2012-01-01

发表刊物:INTERNATIONAL JOURNAL OF HYDROGEN ENERGY

收录刊物:SCIE、EI

卷号:37

期号:1

页面范围:894-902

ISSN号:0360-3199

关键字:Proton exchange membrane fuel cell (PEMFC); Membrane separation; Multi-scale flow; Direct simulation Monte Carlo (DSMC); Smoothed particle hydrodynamics (SPH)

摘要:The membrane separation process has been developed as an effective and efficient method for obtaining ultra-high purity hydrogen from impure feed streams. A typical membrane gas flow possesses multi-scale flow characteristics, comprising a macroscopic flow regime on both sides of the membrane and a microscopic flow regime in the pores within the membrane. A better understanding of the fundamentals of such flow behaviors and mass transfer at a multi-scale level is therefore crucial for a better membrane architecture design, which could lead to better membrane separation efficiency and reliability for hydrogen productions in fuel cells. In this paper, a novel numerical analysis method combining the direct simulation Monte Carlo (DSMC) method with the smoothed particle hydrodynamics (SPH) method is presented for the multi-scale flow prediction in a membrane. Using the coupled method, the rarefied flow behaviors within a micro-orifice pore can be predicted by the DSMC method, while the continuum flow behaviors on both sides of the membrane can be simulated by the SPH method simultaneously. To investigate the various flow behaviors and mass transfer between different components, such as H-2 and CO in the membrane, the pressure, velocity, molar concentration, mass flowrate and rarefaction of the H-2 and CO components are compared in details. The influences to the multi-scale flow from the orifice feature and size are discussed. Some unique phenomena are observed to be quite different from that observed in either a solely macroscopic or microscopic flow. The results can be greatly beneficial for the understanding of the mechanism of membrane separation, and the designing of the membranes for hydrogen productions in fuel cell applications. Copyright (C) 2011, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.