Phase equilibrium calculations in shale gas reservoirs

Q1 Physics and Astronomy
Tao Zhang, Yiteng Li, Shuyu Sun
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引用次数: 18

Abstract

Cited as: Zhang, T., Li, Y., Sun, S. Phase equilibrium calculations in shale gas reservoirs. Capillarity, 2019, 2(1): 8-16, doi: 10.26804/capi.2019.01.02. Abstract: Compositional multiphase flow in subsurface porous media is becoming increasingly attractive due to issues related with enhanced oil recovery, CO2 sequestration and the urgent need for development in unconventional oil/gas reservoirs. One key effort to construct the mathematical model governing the compositional flow is to determine the phase compositions of the fluid mixture, and then calculate other related physical properties. In this paper, recent progress on phase equilibrium calculations in unconventional reservoirs has been reviewed and concluded with authors’ own analysis, especially focusing on the special mechanisms involved. Phase equilibrium calculation is the main approach to investigate phase behaviors, which could be conducted using different variable specifications, such as the NPT flash and NVT flash. Recently, diffuse interface models, which have been proved to possess a high consistency with thermodynamic laws, have been introduced in the phase equilibrium calculation, incorporating the realistic equation of state (EOS), e.g. Peng-Robinson EOS. In the NVT flash, the Helmholtz free energy is minimized instead of the Gibbs free energy used in NPT flash, and this thermodynamic state function is decomposed into two terms using the convex-concave splitting technique. A semi-implicit numerical scheme is applied to the dynamic model, which ensures the thermodynamic stability and then preserves the fast convergence property. A positive definite coefficient matrix is designed to meet the Onsager reciprocal principle so as to keep the entropy increasing property in the presence of capillary pressure, which is required by the second law of thermodynamics. The robustness of the proposed algorithm is demonstrated by using two numerical examples, one of which has up to seven components. In the complex fluid mixture, special phenomena could be captured from the global minimum of tangent plane distance functions and the phase envelope. It can be found that the boundary between the single-phase and vapor-liquid two phase regions shifts in the presence of capillary pressure, and then the area of each region changes accordingly. Furthermore, the effect of the nanopore size distribution on the phase behavior has been analyzed and a multi-scale scheme is presented based on literature reviews. Fluid properties including swelling factor, criticality, bubble point and volumetrics have been investigated thoroughly by comparing with the bulk fluid flow in a free channel.
页岩气储层相平衡计算
引用自:张涛,李勇,孙诗。页岩气储层相平衡计算。毛细管学,2019,2(1):8-16,doi: 10.26804/capi.2019.01.02。摘要:由于提高采收率、封存CO2以及非常规油气藏开发的迫切需要,地下多孔介质组分多相流技术越来越受到人们的关注。建立控制组分流动的数学模型的一个关键工作是确定流体混合物的相组成,然后计算其他相关的物理性质。本文综述了近年来非常规储层相平衡计算的研究进展,并结合作者的分析对其进行了总结,重点介绍了相平衡计算的特殊机理。相平衡计算是研究相行为的主要方法,可以采用不同的可变规格,如NPT闪蒸和NVT闪蒸。近年来,在相平衡计算中引入了与热力学定律高度一致的弥散界面模型,其中包含了现实状态方程(EOS),如Peng-Robinson EOS。在NVT闪蒸中,采用极小化亥姆霍兹自由能代替NPT闪蒸中的吉布斯自由能,并利用凹凸分裂技术将该热力学状态函数分解为两项。对动力学模型采用半隐式数值格式,既保证了热力学稳定性,又保持了快速收敛性。设计了一个符合Onsager倒易原理的正定系数矩阵,以保持毛细管压力存在时的熵增加特性,满足热力学第二定律的要求。通过两个算例验证了该算法的鲁棒性,其中一个算例包含多达七个分量。在复杂流体混合物中,切平面距离函数的全局最小值和相包络可以捕捉到特殊现象。可以发现,在毛细管压力存在下,单相区和气液两相区之间的边界发生了位移,各区域的面积也随之发生了变化。此外,分析了纳米孔尺寸分布对相行为的影响,并在文献综述的基础上提出了多尺度方案。通过与自由通道中流体流动的比较,对膨胀系数、临界、气泡点和体积等流体特性进行了深入的研究。
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来源期刊
Capillarity
Capillarity Physics and Astronomy-Surfaces and Interfaces
CiteScore
7.10
自引率
0.00%
发文量
15
审稿时长
2~3 weeks
期刊介绍: Capillarity publishes high-quality original research articles and current reviews on fundamental scientific principles and innovations of capillarity in physics, chemistry, biology, environmental science and related emerging fields. All advances in theoretical, numerical and experimental approaches to capillarity in capillary tube and interface dominated structure and system area are welcome. The following topics are within (but not limited to) the scope of capillarity: i) Capillary-driven phenomenon in natural/artificial tubes, porous and nanoporous materials ii) Fundamental mechanisms of capillarity aided by theory and experiments iii) Spontaneous imbibition, adsorption, wicking and related applications of capillarity in hydrocarbon production, chemical process and biological sciences iv) Static and dynamic interfacial processes, surfactants, wettability, film and colloids v) New approaches and technologies on capillarity Capillarity is a quarterly open access journal and free to read for all. The journal provides a communicate platform for researchers who are interested in all fields of capillary phenomenon.
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