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国家自然科学基金(41302127)

作品数:3 被引量:75H指数:3
相关作者:曾凡桂李彬相建华宋晓夏梁虎珍更多>>
相关机构:太原理工大学更多>>
发文基金:国家自然科学基金国家教育部博士点基金更多>>
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低中煤级煤结构演化的XRD表征被引量:31
2016年
通过对28个最大镜质组反射率0.30%-2.05%镜煤样品的X射线衍射(XRD)分析,获得XRD结构参数,得到这些参数随反射率增大呈现的阶段性规律。在镜质组反射率小于1.0%阶段,L_a和L_c急剧增加,d_(002)迅速减小,含氧官能团的脱落和脂肪长度支链化程度减小占主导;在1.0%-1.6%阶段,L_a持续增加,d_(002)先增加后减小,L_c先减小然后趋于平稳,芳香体系脱氢和调整空间位阻同时进行;在1.6%-2.0%阶段,d_(002)持续减小,L_c和L_a的增大,煤结构演化以芳构化为主。XRD结构参数演化与第一、二次煤化作用跃变关系密切。
李霞曾凡桂王威董夔
关键词:XRD
CH_4/CO_2/H_2O在煤分子结构中吸附的分子模拟被引量:33
2014年
煤与CH4,CO2和H2O相互作用的分子机制是深入认识流体在煤中的赋存状态、流体诱导的煤溶胀(或收缩)等现象的基础.相对于各种仪器分析技术,基于分子力学、分子动力学及量子化学的分子模拟技术是揭示物质结构与性质间关系、了解物理化学体系中物质相互作用机制的有力工具.本文应用巨正则系综蒙特卡洛(GCMC)及分子动力学(MD)方法对兖州煤模型(C222H185N3O17S5)的吸附行为进行了研究,获得了CH4,CO2与H2O的吸附量、吸附构型以及含氧官能团的影响,并利用等量吸附热及能量变化数据揭示了三种物质的不同吸附机理.(1)单组分CH4,CO2和H2O的等温吸附曲线均与Langmuir模型吻合较好,吸附量相对大小为CH4CO2>CH4;温度越高,等量吸附热越小;压力对吸附热则无明显影响.(3)CH4在孔隙中呈聚集态分布,CO2呈两两交叉的排列形式H2O分子在氢键作用下,O原子规律地指向周围H2O分子中或煤分子中的H原子;三者分子间距分别为0.421,0.553和0.290 nm,径向分布函数显示H2O分子排列最为紧凑并形成紧密分子层.(4)H2O围绕煤表面的含氧官能团形成明显分层分布,作用强度从大到小依次为羟基>羧基>羰基;CO2与CH4仅出现微弱的分层.(5)兖州煤模型吸附CH4,CO2及H2O分子后,体系总能量、体系价电子能和体系非成键能均降低.体系总能量降低幅度表明兖州煤模型中吸附优先顺序为H2O>CO2>CH4.价电子能的降低,表明地质条件下由于压力作用形成的"应变煤",在与流体作用过程中发生结构重排以形成更加稳定的构象,可能是流体与煤作用后产生溶胀的分子机制.范德华力、静电力与氢键力对非成键能降低的不同贡献揭示,煤与CH4的相互作用为典型物理
相建华曾凡桂梁虎珍李彬宋晓夏
关键词:CH4H2O吸附等温线径向分布函数
Molecular simulation of the CH_4/CO_2/ H_2O adsorption onto the molecular structure of coal被引量:15
2014年
Clarification of the molecular mechanism underlying the interaction of coal with CH4, CO2, and H2 O molecules is the basis for an in-depth understanding of the states of fluid in coal and fluid-induced coal swelling/contraction. In terms of instrumental analysis, molecular simulation technology based on molecular mechanics/dynamics and quantum chemistry is a powerful tool for revealing the relationship between the structure and properties of a substance and understanding the interaction mechanisms of physical-chemical systems. In this study, the giant canonical ensemble Monte Carlo(GCMC) and molecular dynamics(MD) methods were applied to investigate the adsorption behavior of a Yanzhou coal model(C222H185N3O17S5). We explored the adsorption amounts of CH4, CO2, and H2 O onto Yanzhou coal, the adsorption conformation, and the impact of oxygen-containing functional groups. Furthermore, we revealed the different adsorption mechanisms of the three substances using isosteric heat of adsorption and energy change data.(1) The adsorption isotherms of the mono-component CH4, CO2, and H2 O were consistent with the Langmuir model, and their adsorption amounts showed an order of CH4CO2〉CH4. In addition, at higher temperatures, the isosteric heat of adsorption decreased; pressure had no significant effect on the heat of adsorption.(3) CH4 molecules displayed an aggregated distribution in the pores, whereas CO2 molecules were cross arranged in pairs. Regarding H2 O molecules, under the influence of hydrogen bonds, the O atom pointed to surrounding H2 O molecules or the H atoms of coal molecules in a regular pattern. The intermolecular distances of the three substances were 0.421, 0.553, and 0.290 nm, respectively. The radial distribution function(RDF) analysis showed that H2 O molecules were arranged in the most compact fashion, forming a tight molecular layer.(4) H2 O molecules showed a significantly stratified distribution around oxygen-containing functional groups on the coal surface, and the b
XIANG JianHuaZENG FanGuiLIANG HuZhenLI BinSONG XiaoXia
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