Evaluation of numerical schemes for capturing shock waves in modeling proppant transport in fractures

被引:2
|
作者
Roostaei, Morteza [1 ]
Nouri, Alireza [1 ]
Fattahpour, Vahidoddin [1 ]
Chan, Dave [1 ]
机构
[1] Univ Alberta, Dept Civil & Environm Engn, Edmonton, AB, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Proppant transport; Hyperbolic partial differential equations; Frac pack; Hydraulic fracturing; CONSERVATION-LAWS; DIFFERENCE-SCHEMES; EQUATIONS; SIMULATION; SYSTEMS; FLOWS;
D O I
10.1007/s12182-017-0194-x
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In petroleum engineering, the transport phenomenon of proppants in a fracture caused by hydraulic fracturing is captured by hyperbolic partial differential equations (PDEs). The solution of this kind of PDEs may encounter smooth transitions, or there can be large gradients of the field variables. The numerical challenge posed in a shock situation is that high-order finite difference schemes lead to significant oscillations in the vicinity of shocks despite that such schemes result in higher accuracy in smooth regions. On the other hand, first-order methods provide monotonic solution convergences near the shocks, while giving poorer accuracy in the smooth regions. Accurate numerical simulation of such systems is a challenging task using conventional numerical methods. In this paper, we investigate several shock-capturing schemes. The competency of each scheme was tested against one-dimensional benchmark problems as well as published numerical experiments. The numerical results have shown good performance of high-resolution finite volume methods in capturing shocks by resolving discontinuities while maintaining accuracy in the smooth regions. These methods along with Godunov splitting are applied to model proppant transport in fractures. It is concluded that the proposed scheme produces non-oscillatory and accurate results in obtaining a solution for proppant transport problems.
引用
收藏
页码:731 / 745
页数:15
相关论文
共 50 条
  • [41] Numerical simulation of proppant transport in propagating fractures with the multi-phase particle-in-cell method
    Zeng, Junsheng
    Li, Heng
    Zhang, Dongxiao
    [J]. FUEL, 2019, 245 : 316 - 335
  • [42] Numerical symmetry-preserving techniques for low-dissipation shock-capturing schemes
    Fleischmann, Nico
    Adami, Stefan
    Adams, Nikolaus A.
    [J]. COMPUTERS & FLUIDS, 2019, 189 : 94 - 107
  • [43] NUMERICAL EVALUATION OF STEAM NORMAL SHOCK-WAVES
    KAKATSIOS, XK
    [J]. ACTA MECHANICA, 1995, 110 (1-4) : 183 - 197
  • [44] On the Integral Convergence of Numerical Schemes Calculating Gas-Dynamic Shock Waves
    V. V. Ostapenko
    E. I. Polunina
    N. A. Khandeeva
    [J]. Doklady Mathematics, 2023, 108 : 374 - 381
  • [45] On the Integral Convergence of Numerical Schemes Calculating Gas-Dynamic Shock Waves
    Ostapenko, V. V.
    Polunina, E. I.
    Khandeeva, N. A.
    [J]. DOKLADY MATHEMATICS, 2023, 108 (02) : 374 - 381
  • [46] Control of numerical effects of dispersion and dissipation in numerical schemes for efficient shock-capturing through an optimal Courant number
    Appadu, A. R.
    Dauhoo, M. Z.
    Rughooputh, S. D. D. V.
    [J]. COMPUTERS & FLUIDS, 2008, 37 (06) : 767 - 783
  • [47] Evaluation of some high-order shock capturing schemes for direct numerical simulation of unsteady two-dimensional free flows
    Tenaud, C
    Garnier, E
    Sagaut, P
    [J]. INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN FLUIDS, 2000, 33 (02) : 249 - 278
  • [48] Theoretical modeling and numerical simulations of plasmas generated by shock waves
    LI JianQiao
    HAO Li
    LI Jian
    [J]. Science China Technological Sciences, 2019, (12) : 2204 - 2212
  • [49] Collision and reflection of shock waves: Numerical modeling and laboratory experiment
    Rybakov, VA
    Artem'ev, VI
    Medvedyuk, SA
    Chernin, AD
    [J]. ASTRONOMY LETTERS-A JOURNAL OF ASTRONOMY AND SPACE ASTROPHYSICS, 1998, 24 (06): : 758 - 763
  • [50] Theoretical modeling and numerical simulations of plasmas generated by shock waves
    LI JianQiao
    HAO Li
    LI Jian
    [J]. Science China(Technological Sciences), 2019, 62 (12) : 2204 - 2212