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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Adsorption of binary hydrocarbon mixtures in carbon slit pores: A density functional theory study
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Adsorption of binary hydrocarbon mixtures in carbon slit pores: A density functional theory study

机译:碳缝隙孔中二元烃混合物的吸附:密度泛函理论研究

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Adsorption of binary hydrocarbon mixtures involving methane in carbon slit pores is theoretically studied here from the viewpoints of separation and of the effect of impurities on methane storage. It is seen that even small amounts of ethane, propane, or butane can significantly reduce the methane capacity of carbons. Optimal pore sizes and pressures, depending on impurity concentration, are noted in the present work, suggesting that careful adsorbent and process design can lead to enhanced separation. These results are consistent with earlier literature studies for the infinite dilution limit. For methane storage applications a carbon micropore width of 11.4 Angstrom (based on distance between centers of carbon atoms on opposing walls) is found to be the most suitable from the point of view of lower impurity uptake during high-pressure adsorption and greater impurity retention during low-pressure delivery. The results also theoretically confirm unusual recently reported observations of enhanced methane adsorption in the presence of a small amount of heavier hydrocarbon impurity. [References: 27]
机译:从分离的角度以及杂质对甲烷存储的影响的角度,理论上研究了在甲烷缝隙孔中吸附含甲烷的二元烃混合物。可以看出,即使少量的乙烷,丙烷或丁烷也可以显着降低碳的甲烷容量。根据当前的杂质浓度,最佳孔径和压力取决于杂质浓度,这表明谨慎的吸附剂和工艺设计可以提高分离度。这些结果与较早的有关无限稀释极限的文献研究一致。对于甲烷存储应用,从高压吸附过程中较低的杂质吸收和较高的杂质保留期间来看,发现碳微孔宽度为11.4埃(基于相对壁上碳原子中心之间的距离)是最合适的。低压输送。从理论上讲,该结果还证实了最近报道的在少量重烃杂质存在下甲烷吸附增强的不寻常观察结果。 [参考:27]

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