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Measurement and modelling of interfacial tension in methane/water and methane/brine systems at reservoir conditions

机译:储层条件下甲烷/水和甲烷/盐水系统界面张力的测量和建模

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摘要

It is well established that the presence of salt in the aqueous phase raises the interfacial tension (IFT) of gas water systems when compared to the case of pure water under the same pressure and temperature conditions. However, experimental data for gas brine systems is still scarce, in particular at high pressure and high temperature (HPHT) conditions. In this communication, IFT data for methane with distilled water were experimentally determined using the pendant drop and bubble rise methods for temperatures ranging from (311-473) K and pressures up to 92 MPa and the results compared against literature data. Moreover, for the first time, the effect of NaCl on the IFT of the methane water system was investigated in solutions with a maximum salinity of 10 wt% at HPHT conditions. The Cubic-Plus-Association equation of state (CPA EoS) along with the Debye-Huckel activity model was used to describe the effect of salt in the phase behaviour of the methane water system and bulk properties used to compute the IFT of the studied systems with the Density Gradient Theory (DGT). The modelling results showed that by using only bulk phase properties and one temperature independent binary interaction parameter adjusted to the methane water system, the DGT was able to predict the impact of NaCl on the IFT with remarkably low deviations from measured values. Furthermore, the impact of the fluids microstructure and the distribution of molecules across the interface on the IFT were evaluated with the DGT. (C) 2015 Elsevier B.V. All rights reserved.
机译:公认的是,与在相同压力和温度条件下的纯水相比,水相中盐的存在会提高气体水系统的界面张力(IFT)。但是,气体卤水系统的实验数据仍然很少,特别是在高压和高温(HPHT)条件下。在此通讯中,使用悬滴法和气泡上升法通过实验确定了蒸馏水与甲烷的IFT数据,其温度范围为(311-473)K,压力最高为92 MPa,并将结果与​​文献数据进行了比较。此外,这是首次在HPHT条件下,在最大盐度为10 wt%的溶液中研究了NaCl对甲烷水系统IFT的影响。使用立方加缔合状态方程(CPA EoS)以及Debye-Huckel活性模型来描述盐对甲烷水系统相行为的影响以及用于计算研究系统IFT的整体性质密度梯度理论(DGT)。建模结果表明,通过仅使用本体相性质和一个与温度无关的二元相互作用参数(针对甲烷水系统进行调整),DGT能够预测NaCl对IFT的影响,与测量值的偏差极低。此外,使用DGT评估了流体微观结构的影响以及跨界面的分子分布对IFT的影响。 (C)2015 Elsevier B.V.保留所有权利。

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