4.6 Article

Pore-Scale Perspective of Gas/Water Two-Phase Flow in Shale

期刊

SPE JOURNAL
卷 26, 期 2, 页码 828-846

出版社

SOC PETROLEUM ENG
DOI: 10.2118/205019-PA

关键词

-

资金

  1. National Natural Science Foundation Projects of China [50974128, 51504269, 51490654]
  2. Science Foundation of China University of Petroleum, Beijing [2462018YJRC033, C201605]
  3. NanoGeosciences Laboratory at the Bureau of Economic Geology
  4. Mudrock Systems Research Laboratory at the Bureau of Economic Geology
  5. China Scholarship Council

向作者/读者索取更多资源

Transport behaviors of single-phase gas and single-phase water at the nanoscale deviate from the predictions of continuum flow theory, especially when both gases and liquids flow simultaneously in pores or networks of pores. A pseudopotential-based lattice Boltzmann method was developed to simulate gas/water two-phase flow at the pore scale, incorporating fluid/fluid and fluid/solid interactions to capture microscopic interactions among phases. The study demonstrated the successful application of the proposed method in modeling gas/water two-phase flow in systems like single nanopores, parallel nanopores, and nanoporous media.
The transport behaviors of both single-phase gas and single-phase water at nanoscale deviate from the predictions of continuum flow theory. The deviation is greater and more complex when both gas and liquid flow simultaneously in a pore or network of pores. We developed a pseudopotential-based lattice Boltzmann (LB) method (LBM) to simulate gas/water two-phase flow at pore scale. A key element of this LBM is the incorporation of fluid/fluid and fluid/solid interactions that successfully capture the microscopic interactions among phases. To calibrate the model, we simulated a series of simple and static nanoscale two-phase systems, including phase separation, a Laplace bubble, contact angle, and a static nanoconfined bubble. In this work, we demonstrate the use of our proposed LBM to model gas/water two-phase flow in systems like a single nanopore, two parallel nanopores, and nanoporous media. Our LBM simulations of static water-film and gas-film scenarios in nanopores agree well with the theory of disjoining pressure and serve as critical steps toward validating this approach. This work highlights the importance of interfacial forces in determining static and dynamic fluid behaviors at the nanoscale. In the Applications section, we determine the water-film thickness and disjoining pressure in a hydrophilic nanopore under the drainage process. Next, we model water imbibition into gas-filled parallel nanopores with different wettability, and simulate gas/water two-phase flow in dual-wettability nanoporous media. The results showed that isolated patches of organic matters (OMs) impede water flow, and the water relative permeability curve cuts off at water saturation [= 1-volumetric total organic carbon (TOC)]. The residual gas saturation is also controlled by the volumetric TOC, ascribed to the isolation of organic patches by the saturating water; therefore, the gas relative permeability curve cuts off at water saturation (= 1-volumetric TOC).

作者

我是这篇论文的作者
点击您的名字以认领此论文并将其添加到您的个人资料中。

评论

主要评分

4.6
评分不足

次要评分

新颖性
-
重要性
-
科学严谨性
-
评价这篇论文

推荐

暂无数据
暂无数据