Monte Carlo simulation of contaminant transport. II. Morphological disorder in fracture connectivity

被引:6
|
作者
Mukhopadhyay, S [1 ]
Cushman, JH [1 ]
机构
[1] Purdue Univ, Ctr Appl Math, W Lafayette, IN 47907 USA
关键词
disordered fracture network; correlated percolation; transport of contaminants by groundwater; heterogeneities; long-range correlations;
D O I
10.1023/A:1006530216201
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Simulating contaminant transport in fractured geologic media is challenging. Aside from the difficulties encountered in properly modeling the heterogeneities in the hydraulic properties of the fractures and the matrix, it is difficult to quantify and model the disorder in the fracture connectivity. Correct prediction of the spread of contaminants in fractured geologic media is not possible without considering this inherent morphological disorder. Here, we develop a network model of fractures, and use the model to study transport of contaminants. We investigate the influence of morphology on the transport process by introducing disorder in the fracture connectivity through a novel percolation scheme. The network close to the percolation threshold is very complex and allows the contaminant particles to follow many slow paths. This closely captures the physical situation. We show, how the disorder in the network changes the residence time distributions and its various temporal moments. We also show how the residence time distribution and the temporal moments are influenced by the interaction of the disorder with the various transport mechanisms, such as convection. dispersion, adsorption, and first-order decay.
引用
收藏
页码:183 / 211
页数:29
相关论文
共 50 条
  • [41] Monte Carlo simulation of electron transport and X-ray generation.: II.: Radiative processes and examples in electron probe microanalysis
    Llovet, X
    Salvat, F
    Fernández-Varea, JM
    MICROCHIMICA ACTA, 2004, 145 (1-4) : 111 - 120
  • [42] Monte Carlo Simulation of Electron Transport and X-Ray Generation. II. Radiative Processes and Examples in Electron Probe Microanalysis
    Xavier Llovet
    Francesc Salvat
    José M. Fernández-Varea
    Microchimica Acta, 2004, 145 : 111 - 120
  • [43] The stationary Monte Carlo method for device simulation. II. Event biasing and variance estimation
    Nedjalkov, M
    Kosina, H
    Selberherr, S
    JOURNAL OF APPLIED PHYSICS, 2003, 93 (06) : 3564 - 3571
  • [44] Monte Carlo simulation of fast electron and proton tracks in liquid water - II. Nonhomogeneous chemistry
    Frongillo, Y
    Goulet, T
    Fraser, MJ
    Cobut, V
    Patau, JP
    Jay-Gerin, JP
    RADIATION PHYSICS AND CHEMISTRY, 1998, 51 (03): : 245 - 254
  • [45] Conformation of a polymer chain near the solvent critical region. II. Monte Carlo simulation
    Vasilevskaya, VV
    Khalatur, PG
    Khokhlov, AR
    JOURNAL OF CHEMICAL PHYSICS, 1998, 109 (12): : 5119 - 5125
  • [46] Monte Carlo simulation of particle aggregation and gelation: II. Pair correlation function and structure factor
    M. Rottereau
    J. C. Gimel
    T. Nicolai
    D. Durand
    The European Physical Journal E, 2004, 15 : 141 - 148
  • [47] Monte Carlo simulation of particle aggregation and gelation: II. Pair correlation function and structure factor
    Rottereau, M
    Gimel, JC
    Nicolai, T
    Durand, D
    EUROPEAN PHYSICAL JOURNAL E, 2004, 15 (02): : 141 - 148
  • [48] MONTE-CARLO SIMULATION ON INSITU ANNEALING OF DISORDER
    MAZZONE, AM
    SERVIDORI, M
    CEMBALI, G
    RADIATION EFFECTS LETTERS, 1984, 85 (03): : 131 - 142
  • [49] MONTE-CARLO SIMULATION OF A HUBBARD CHAIN WITH DISORDER
    MURAMATSU, A
    HANKE, W
    PHYSICA SCRIPTA, 1986, T13 : 319 - 321
  • [50] Disorder in ice polymorphs:: A Monte Carlo simulation study
    Bartok, Albert
    Baranyai, Andras
    JOURNAL OF NON-CRYSTALLINE SOLIDS, 2007, 353 (28) : 2698 - 2707