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      KCI등재 SCOPUS SCIE

      Spatial moment analysis of multispecies contaminant transport in porous media

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      https://www.riss.kr/link?id=A105118366

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      다국어 초록 (Multilingual Abstract)

      Spatial moment analysis has been performed on the concentration of the first species in a multispecies solute transport in porous media. Finite difference numerical technique was used in obtaining the solute concentration. A constant continuous source...

      Spatial moment analysis has been performed on the concentration of the first species in a multispecies solute transport in porous media. Finite difference numerical technique was used in obtaining the solute concentration. A constant continuous source of contaminant was injected at the inlet of the domain. Results suggest that the decaying of solute mass increases as the magnitude of mean fluid velocity increases. The dispersion coefficient is highly time dependent under decaying of solutes with a complex behavior of mixing of solutes. The solute mobility and mixing varies non-linearly with time during its initial period, while the same ceases with higher decay rates of the first species much faster.

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      목차 (Table of Contents)

      • ABSTRACT
      • 1. Introduction
      • 2. Governing Equations
      • 3. Numerical Method and Spatial Moment Analysis
      • 4. Results and Discussion
      • ABSTRACT
      • 1. Introduction
      • 2. Governing Equations
      • 3. Numerical Method and Spatial Moment Analysis
      • 4. Results and Discussion
      • 5. Conclusions
      • References
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      참고문헌 (Reference)

      1 Dagan G, "Spatial moments of a kinetically sorbing solute plume in a heterogeneous aquifer" 29 : 4053-4061, 1993

      2 Valocchi AJ, "Spatial moment analysis of the transport of kinetically adsorbing solutes through stratified aquifers" 25 : 273-279, 1989

      3 Natarajan N, "Spatial moment analysis of solute transport with Langmuir sorption in a fracture-skin-matrix coupled system" 28 : 157-164, 2016

      4 Suresh Kumar G, "Spatial moment analysis for transport of nonreactive solutes in a fracture-matrix system" 10 : 192-199, 2005

      5 Slodicka M, "Singular value decomposition method for multi-species first-order reactive transport with identical decay rates" 73 : 161-172, 2008

      6 Maloszewski P, "On the theory of tracer experiments in fissured rocks with a porous matrix" 79 : 333-358, 1985

      7 Aris R, "On the dispersion of a solute in a fluid flowing through a tube" 235 : 67-77, 1956

      8 Natarajan N, "Numerical modelling and spatial moment analysis of solute transport with Langmuir sorption in a fracture matrix-coupled system" 21 : 28-41, 2015

      9 Clement TP, "Natural attenuation of chlorinated solvent compounds: Model development and field-scale application" 42 : 113-140, 2000

      10 Sekhar M, "Modeling transport of linearly sorbing solutes in a single fracture: Asymptotic behavior of solute velocity and dispersivity" 24 : 183-201, 2006

      1 Dagan G, "Spatial moments of a kinetically sorbing solute plume in a heterogeneous aquifer" 29 : 4053-4061, 1993

      2 Valocchi AJ, "Spatial moment analysis of the transport of kinetically adsorbing solutes through stratified aquifers" 25 : 273-279, 1989

      3 Natarajan N, "Spatial moment analysis of solute transport with Langmuir sorption in a fracture-skin-matrix coupled system" 28 : 157-164, 2016

      4 Suresh Kumar G, "Spatial moment analysis for transport of nonreactive solutes in a fracture-matrix system" 10 : 192-199, 2005

      5 Slodicka M, "Singular value decomposition method for multi-species first-order reactive transport with identical decay rates" 73 : 161-172, 2008

      6 Maloszewski P, "On the theory of tracer experiments in fissured rocks with a porous matrix" 79 : 333-358, 1985

      7 Aris R, "On the dispersion of a solute in a fluid flowing through a tube" 235 : 67-77, 1956

      8 Natarajan N, "Numerical modelling and spatial moment analysis of solute transport with Langmuir sorption in a fracture matrix-coupled system" 21 : 28-41, 2015

      9 Clement TP, "Natural attenuation of chlorinated solvent compounds: Model development and field-scale application" 42 : 113-140, 2000

      10 Sekhar M, "Modeling transport of linearly sorbing solutes in a single fracture: Asymptotic behavior of solute velocity and dispersivity" 24 : 183-201, 2006

      11 Clement TP, "Modeling multi- species reactive transport in groundwater aquifers" 18 : 79-92, 1998

      12 Natarajan N, "Lower order spatial moments for colloidal transport in a fracture-matrix coupled system" 20 : 200-211, 2014

      13 Natarajan N, "Lower order spatial moments for colloidal transport in a fracture-matrix coupled system" 20 : 200-211, 2014

      14 Bear J, "Groundwater hydraulics" McGraw-Hill 1979

      15 Clement TP, "Generalized solution to multispecies transport equations coupled with a first-order reaction network" 37 : 157-163, 2001

      16 Natarajan N, "Finite difference approach for modeling multispecies transport in porous media" 2 : 3344-3350, 2010

      17 Marle C, "Etude du deplacement de fluides miscibles en milieu poreux stratifie" 22 : 272-294, 1967

      18 Suresh Kumar G, "Effect of sorption intensities on dispersivity and macro-dispersion coefficient in a single fracture with matrix diffusion" 16 : 235-249, 2008

      19 Kumar GS, "Effect of sorption intensities on dispersivity and macro-dispersion coefficient in a single fracture with matrix diffusion" 16 : 235-249, 2008

      20 Natarajan N, "Effect of non-linear sorption on multi-species solute transport in a coupled fracture matrix system" 2 : 96-101, 2012

      21 Natarajan N, "Effect of distance-dependent and time-dependent dispersion on non-linearly sorbed multispecies contaminants in porous media" 22 : 16-29, 2016

      22 Brenner H, "Dispersion resulting from flow through spatially periodic porous media" 297 : 81-133, 1980

      23 Sun Y, "Development of analytical solutions for multispecies transport with serial and parallel reactions" 35 : 185-190, 1999

      24 Lunn M, "Determining analytic solutions of multiple species contaminant transport, with sorption and decay" 180 : 195-210, 1996

      25 Slodicka M, "Decomposition method for solving multi-species reactive transport problems coupled with first-order kinetics applicable to a chain with identical reaction rates" 234 : 1069-1077, 2010

      26 Van Genuchten M, "Convective-dispersive transport of solutes involved in sequential first-order decay reactions" 11 : 129-147, 1985

      27 Horn FJM, "Calculation of dispersion coefficients by means of moments" 17 : 613-620, 1971

      28 Guerrero JSP, "Analytical solution for multi-species contaminant transport subject to sequential first-order decay reactions in finite media" 80 : 373-387, 2009

      29 Guven O, "An analysis of dispersion in a stratified aquifer" 20 : 1337-1354, 1984

      30 Sun Y, "A new analytical solution for multiple species reactive transport in multiple dimension" 35 : 429-440, 1999

      31 Freyberg DL, "A natural gradient experiment on solute transport in a sand aquifer: 2. Spatial moments and the advection and dispersion of nonreactive tracers" 22 : 2031-2046, 1986

      32 Sun Y, "A generalized decomposition method for solving coupled multi-species reactive transport problems" 37 : 327-346, 1999

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