Phase stability analysis for tight porous media by minimization of the Helmholtz free energy

被引:11
作者
Achour, Sofiane Haythem [1 ]
Okuno, Ryosuke [1 ]
机构
[1] Univ Texas Austin, Austin, TX 78712 USA
关键词
Phase stability; Capillary pressure; Helmholtz free energy; Equation of state; Shadow-phase region; CAPILLARY-PRESSURE; FLASH CALCULATIONS; RESERVOIR; ALGORITHM; VOLUME; EQUILIBRIUM; BEHAVIOR; THERMODYNAMICS; SIMULATION; ENVELOPE;
D O I
10.1016/j.fluid.2020.112648
中图分类号
O414.1 [热力学];
学科分类号
摘要
This paper presents a new method of phase stability analysis in the presence of capillary pressure by minimization of the Helmholtz free energy. The thermodynamic consistency of phase stability is rigorously preserved between the Helmholtz and Gibbs free energy. Case studies demonstrate the main advantages of the new method over the conventional methods using the Gibbs free energy. The effect of capillary pressure on phase stability is inherently considered in the new method using the Helmholtz free energy. The most fundamental reason for various issues associated with using the conventional methods is that the Gibbs free energy in composition space requires a pressure to be specified; i.e., the conventional methods involve two Gibbs free energy surfaces and their relative location changes during the iterative solution with capillary pressure. Case studies further show that there exist indefinite solutions in phase stability analysis with capillary pressure, in which the fluid is unstable, but no two-phase solution exists. Also, it is demonstrated that the shadow-phase region in the presence of capillary pressure can be defined with the Helmholtz free energy, but not with the Gibbs free energy. (C) 2020 Elsevier B.V. All rights reserved.
引用
收藏
页数:17
相关论文
共 53 条
  • [31] Increasing the computational speed of flash calculations with applications for compositional, transient simulations
    Rasmussen, CP
    Krejbjerg, K
    Michelsen, ML
    Bjurstrom, KE
    [J]. SPE RESERVOIR EVALUATION & ENGINEERING, 2006, 9 (01) : 32 - 38
  • [32] Rezaveisi M, 2018, SPE J, V23, P1977
  • [33] Robinson D.B., 1978, The Characterization of the Heptanes and Heavier Fraction for the GPA Peng-Robinson Programs
  • [34] Rowlinson J. S., 2003, MOL THEORY CAPILLARI
  • [35] VT-Based Phase Envelope and Flash Calculations in the Presence of Capillary Pressure
    Sandoval, Diego R.
    Michelsen, Michael L.
    Yan, Wei
    Stenby, Erling H.
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2019, 58 (13) : 5291 - 5300
  • [36] Influence of Adsorption and Capillary Pressure on Phase Equilibria inside Shale Reservoirs
    Sandoval, Diego R.
    Yan, Wei
    Michelsen, Michael L.
    Stenby, Erling H.
    [J]. ENERGY & FUELS, 2018, 32 (03) : 2819 - 2833
  • [37] The Phase Envelope of Multicomponent Mixtures in the Presence of a Capillary Pressure Difference
    Sandoval, Diego R.
    Yan, Wei
    Michelsen, Michael L.
    Stenby, Erling H.
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2016, 55 (22) : 6530 - 6538
  • [38] Parachors based on modern physics and their uses in IFT prediction of reservoir fluids
    Schechter, DS
    Guo, B
    [J]. SPE RESERVOIR EVALUATION & ENGINEERING, 1998, 1 (03) : 207 - 217
  • [39] Thermodynamics of the multicomponent vapor-liquid equilibrium under capillary pressure difference
    Shapiro, AA
    Stenby, EH
    [J]. FLUID PHASE EQUILIBRIA, 2001, 178 (1-2) : 17 - 32
  • [40] Stability analysis for multicomponent mixtures including capillary pressure
    Sherafati, Marjan
    Jessen, Kristian
    [J]. FLUID PHASE EQUILIBRIA, 2017, 433 : 56 - 66