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Correlations/estimation of equilibrium interfacial tension for methane/CO2-water/brine systems based on mutual solubility

机译:基于相互溶解性的甲烷/二氧化碳/盐水系统平衡界面张力的相关性/估计

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In this study, an effort has been made to accurately correlate equilibrium interfacial tension (IFT) between methane and water/brine with their mutual solubility in a temperature range of 278.2-477.6 K and pressure range of 0.01-107.10 MPa, respectively, while comparisons have been made between the CO2-water pair and methane-water pair and then the IFT estimation is extended to ternary systems with a newly developed mixing rule. The newly developed model is found to reproduce IFTs between methane and water with an absolute average relative deviation (AARD) of 3.5% and greatly outperform the three existing correlations. Both a higher methane solubility in aqueous phase and a higher water solubility in hydrocarbon phase can decrease the IFT. Also, the new model can help explain the slight IFT change for methane-water pair but a simultaneously great change of their mutual solubility at low pressures. Temperature is found to exert an effect on IFT mainly through regulating the water solubility in hydrocarbon phase, while the pressure imposes an impact on IFT mainly through regulating the methane solubility in aqueous phase. The newly developed model can yield a reasonable estimate for the IFTs between natural gas and water/brine. It is found that using two sets of correlations and adding a pressure term are both necessary to account for the density effects on IFT for CO2-water pair in the vapor-liquid (aqueous) region at temperatures lower and near the CO2 critical temperature (i.e., 304.3 K), whereas they are not necessary for methane-water pair, whose density is changed more smoothly rather than sharply in the supercritical region. In addition, a new mixing rule is developed to successfully extend the IFT correlations based on mutual solubility to the ternary methane-CO2-water systems with an AARD of 5.2%. (C) 2018 Elsevier B.V. All rights reserved.
机译:在这项研究中,已经努力在278.2-477.6k和0.01-107.10MPa的压力范围内,甲烷和水/盐水之间的平衡界面张力(IFT)在甲烷和水/盐水之间精确地相关,其相互溶解度分别为0.01-107.10MPa的压力范围,而比较已经在CO2-水对和甲烷 - 水对之间进行,然后IFT估计扩展到具有新开发的混合规则的三元系统。发现新开发的模型在甲烷和水之间繁殖IFTS,其绝对平均相对偏差(AARD)为3.5%,大大优于三个现有相关性。在水性相中甲烷溶解度均较高,烃相中较高的水溶性可以降低IFT。此外,新模型可以帮助解释甲烷水对的轻微IFT变化,但在低压力下同时变化它们的相互溶解度。发现温度主要通过调节烃相中的水溶性来对IFT发挥作用,而压力主要通过调节水相中的甲烷溶解度来对IFT产生影响。新开发的模型可以为天然气和水/盐水之间的IFTS产生合理的估计。发现使用两组相关性和添加压力术语都必须考虑在蒸汽 - 液体(水溶性)区域的IFT上的IFT对CO2水对的密度效应,在低于和接近CO 2临界温度(即304.3 k),而它们不是必需的甲烷 - 水对,其密度更平滑地变化而不是急剧地变化。此外,开发了一种新的混合规则,以基于与AARD为5.2%的三元甲烷-CO2-水系统的相互溶解度来成功扩展IFT相关性。 (c)2018 Elsevier B.v.保留所有权利。

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