甲烷
吸附
肿胀 的
水分
分子动力学
煤
含水量
热力学
化学
化学工程
材料科学
计算化学
物理
复合材料
地质学
岩土工程
有机化学
工程类
作者
Junfang Zhang,Michael B. Clennell,David N. Dewhurst,Keyu Liu
出处
期刊:Fuel
[Elsevier BV]
日期:2014-01-18
卷期号:122: 186-197
被引量:257
标识
DOI:10.1016/j.fuel.2014.01.006
摘要
Abstract A quantitative understanding of methane (CH 4 ) adsorption on dry and moist coal and the mechanism of coal swelling is vital for successful coal bed methane (CBM) projects. CH 4 adsorption isotherms of coal with moisture contents ranging from 0 to 3 wt% water, the temperature effect on maximum adsorption capacity, coal swelling, and adsorbed phase density have been modeled by performing combined Monte Carlo (MC) and molecular dynamics (MD) simulations at temperatures of 308 and 370 K (35 and 97 °C) and at pressures up to 10 MPa. Simulation results demonstrate that absolute adsorption (expressed as a mass basis) divided by bulk density is independent of temperature for CH 4 on dry coal when pressure is over 8 MPa. Both the adsorption capacity and adsorption rate of CH 4 decrease, while coal swells as moisture content increases. These results show that the presence of water in the coal matrix reduces the interaction between the coal and methane. Our results indicate that coal–water interaction dominates and is the main contributing factor to the coal swelling. The interaction of CH 4 –H 2 O and CH 4 –CH 4 is negligible and the absolute adsorption of CH 4 on both dry and moist coal follows the Langmuir isotherm for the pressure range simulated. This study provides a quantitative understanding of the effects of moisture and temperature on CH 4 adsorption, coal swelling, and the adsorbed CH 4 density from a microscopic perspective. Molecular modeling proves to be a valuable and cost-effective tool for studying gas adsorption behavior in complex and complicated systems.
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