Simulation of Fluid Flow on Fractures and Implications for Reactive Transport Simulations

被引:0
|
作者
Jens-Oliver Schwarz
Frieder Enzmann
机构
[1] University of Mainz,Institute of Geosciences
来源
Transport in Porous Media | 2013年 / 96卷
关键词
Fracture; Numerical simulation; Fluid flow; Reactive transport;
D O I
暂无
中图分类号
学科分类号
摘要
The diverse numerical simulation techniques employed to predict fluid flow properties of fractures yield differing results which limits their applicability for reactive transport simulations. Basically the fluid flow simulation techniques can be divided in two groups: (i) techniques that yield average fluid flow characteristics and (ii) techniques that produce space-resolved properties. These differences may have substantial impact on the reactive transport simulations but may also depend on the fracture characteristics. For this reason, a sensitivity analysis of the geometrical properties of fractures on the fluid flow properties is conducted and evaluated with respect to their impact on reactive transport modeling. Although employing space-resolved simulation techniques, the results of the tests show average values for permeability and fluid velocity that are comparable to previous studies that used other simulation techniques. Observed fluid flow channeling appears to be related to fracture surfaces matching and anisotropy. However, average flow velocities at potential sites for reactive transport differ up to a factor of five from the average ones for the entire fracture. Furthermore, extreme values at reactive transport sites may differ even more and the flow may be directed against the applied pressure gradient. For studies concerned with simulation of reactive transport, these deviations are crucial and should be explicitly considered in the calculations. Hence space-resolved fluid flow simulations should be employed for the simulation of reactive transport.
引用
收藏
页码:501 / 525
页数:24
相关论文
共 50 条
  • [21] On transport of reactive solute in a pulsatile Casson fluid flow through an annulus
    Debnath, S.
    Saha, A. K.
    Mazumder, B. S.
    Roy, A. K.
    INTERNATIONAL JOURNAL OF COMPUTER MATHEMATICS, 2020, 97 (11) : 2303 - 2319
  • [22] Coupled reactive mass transport and fluid flow: Issues in model verification
    Freedman, VL
    Ibaraki, M
    ADVANCES IN WATER RESOURCES, 2003, 26 (01) : 117 - 127
  • [23] Interaction of fluid flow, heat and mass transport, and chemical reactions in oceanic hydrothermal systems: New insights from fully coupled reactive transport simulations
    Alt-Epping, P.
    Diamond, L. W.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2007, 71 (15) : A17 - A17
  • [24] Mass transfer towards a reactive particle in a fluid flow: Numerical simulations and modeling
    Sulaiman, Mostafa
    Climent, Eric
    Hammouti, Abdelkader
    Wachs, Anthony
    CHEMICAL ENGINEERING SCIENCE, 2019, 199 : 496 - 507
  • [25] Numerical simulations of irreversibility for nonlinearly radiative and chemically reactive flow of Maxwell fluid
    Borgohain, Debozani
    DISCOVER APPLIED SCIENCES, 2025, 7 (02)
  • [26] Transport of reactive tracers in rock fractures
    Cvetkovic, V
    Selroos, JO
    Cheng, H
    JOURNAL OF FLUID MECHANICS, 1999, 378 : 335 - 356
  • [27] Modeling Reactive Transport Processes in Fractures
    Deng, Hang
    Spycher, Nicolas
    REACTIVE TRANSPORT IN NATURAL AND ENGINEERED SYSTEMS, 2019, 85 (01): : 49 - 74
  • [28] CONDITIONAL SIMULATIONS OF FLUID-FLOW IN 3-DIMENSIONAL NETWORKS OF DISCRETE FRACTURES
    ANDERSSON, J
    DVERSTORP, B
    WATER RESOURCES RESEARCH, 1987, 23 (10) : 1876 - 1886
  • [29] Numerical simulations of incompressible fluid flow in synthetic fractures using lattice Boltzmann method
    Guan Rong
    Long Cheng
    Junsong Quan
    Yaosheng Tan
    Renhui He
    Jie Tan
    Arabian Journal of Geosciences, 2020, 13
  • [30] Numerical simulations of incompressible fluid flow in synthetic fractures using lattice Boltzmann method
    Rong, Guan
    Cheng, Long
    Quan, Junsong
    Tan, Yaosheng
    He, Renhui
    Tan, Jie
    ARABIAN JOURNAL OF GEOSCIENCES, 2020, 13 (22)