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关于正构烷烃/一氧化碳体系密度行为的分子模拟研究

Molecular Simulation Study on the Density Behavior of -Alkane/CO Systems.

作者信息

Wang Youhui, Chen Yulong, Wang Junliang, Pan Zhiyan, Liu Jun

机构信息

College of Materials Science and Engineering, Zhejiang University of Technology, Hangzhou 310014, China.

College of Environment, Zhejiang University of Technology, Hangzhou 310014, China.

出版信息

ACS Omega. 2021 Oct 29;6(44):29618-29628. doi: 10.1021/acsomega.1c03889. eCollection 2021 Nov 9.

Abstract

The density and volumetric behavior of three typical -alkanes (hexane, octane, and decane) influenced by different mole fractions of CO injected in them at temperatures from 303 to 363 K and pressures from 3.8 to 8.67 MPa were investigated by performing molecular dynamics simulations. It is shown that the mass density first increases and then decreases with increasing CO mole fraction. Correspondingly, the system volume only slightly swells at low CO contents while suddenly expanding when the CO mole fraction exceeds a value of ∼60%. The calculations of structural properties and interaction energies indicate that at low CO mole fractions, there are a few CO molecules existing in the gap of alkane molecules, resulting in poor compressibility, while at higher CO concentrations, the CO molecules begin to separate from the CO-saturated alkane phase and form a gas phase, leading to higher compressibility. Therefore, at high CO mole fractions, the system density and volume can more easily be changed by temperature and pressure than that at low CO mole fractions. In addition, since it is harder for alkanes with longer chains to separate from each other, the volume swelling decreases and the density increases with increasing carbon number of -alkane chains. Finally, we found that the increase in CO mole fraction, temperature, and the decrease in alkane chain length would promote the diffusion of both CO and alkane molecules. However, the influence of pressure on molecular diffusion is very limited except when = 8.67 MPa and = 333 K, where CO is in the supercritical state. This work is helpful for understanding the density and volumetric behavior of -alkane/CO mixtures at a molecular level and provides useful information for guiding carbon sequestration and CO-enhanced oil recovery.

摘要

通过分子动力学模拟研究了在303至363 K温度和3.8至8.67 MPa压力下,三种典型的直链烷烃(己烷、辛烷和癸烷)在注入不同摩尔分数CO时的密度和体积行为。结果表明,质量密度随CO摩尔分数的增加先增大后减小。相应地,在低CO含量时系统体积仅略有膨胀,而当CO摩尔分数超过约60%时系统体积会突然膨胀。结构性质和相互作用能的计算表明,在低CO摩尔分数下,有少量CO分子存在于烷烃分子的间隙中,导致可压缩性较差,而在较高CO浓度下,CO分子开始从CO饱和的烷烃相中分离并形成气相,导致可压缩性较高。因此,在高CO摩尔分数下,系统密度和体积比在低CO摩尔分数下更容易随温度和压力变化。此外,由于链长较长的烷烃彼此分离更困难,随着直链烷烃链碳原子数的增加,体积膨胀减小而密度增大。最后,我们发现CO摩尔分数、温度的增加以及烷烃链长度的减小会促进CO和烷烃分子的扩散。然而,压力对分子扩散的影响非常有限,除非在压力为8.67 MPa且温度为333 K时,此时CO处于超临界状态。这项工作有助于在分子水平上理解直链烷烃/CO混合物的密度和体积行为,并为指导碳封存和CO2强化采油提供有用信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f839/8582050/859e67e8e56c/ao1c03889_0002.jpg

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