A reactive transport benchmark on modeling biogenic uraninite re-oxidation by Fe(III)-(hydr)oxides

被引:0
|
作者
S. Sevinç Şengör
K. Ulrich Mayer
Janek Greskowiak
Christoph Wanner
Danyang Su
Henning Prommer
机构
[1] Southern Methodist University,Civil and Environmental Engineering Department
[2] The University of British Columbia,Department of Earth, Ocean and Atmospheric Sciences
[3] University of Oldenburg,Department of Biology and Environmental Sciences
[4] Lawrence Berkeley National Laboratory,Earth Sciences Division
[5] CSIRO Land and Water,School of Earth and Environment
[6] University of Western Australia,National Centre for Groundwater Research and Training (NCGRT)
[7] Flinders University,undefined
来源
Computational Geosciences | 2015年 / 19卷
关键词
Reactive transport benchmark; Uranium; Bioremediation; Reoxidation; Numerical dispersion;
D O I
暂无
中图分类号
学科分类号
摘要
A reactive transport benchmark on uranium (U) bioreduction and concomitant reoxidation has been developed based on the multicomponent biogeochemical reaction network presented by Spycher et al. (Geochim Cosmochim Acta 75:4426–4440, 2011). The benchmark problem consists of a model inter-comparison starting with the numerical simulations of the original batch experiments of Sani et al. (Geochim Cosmochim Acta 68:2639–2648, 2004). The batch model is then extended to 1D and 2D reactive transport models, designed to evaluate the model results for the key biogeochemical reaction processes and their coupling with physical transport. Simulations are performed with four different reactive transport simulators: PHREEQC, PHT3D, MIN3P, and TOUGHREACT. All of the simulators are able to capture the complex biogeochemical reaction kinetics and the coupling between transport and kinetic reaction network successfully in the same manner. For the dispersion-free variant of the problem, a 1D-reference solution was obtained by PHREEQC, which is not affected by numerical dispersion. PHT3D using the sequential non-iterative approach (SNIA) with an explicit TVD scheme and MIN3P using the global implicit method (GIM) with an implicit van Leer flux limiter provided the closest approximation to the PHREEQC results. Since the spatial weighting schemes for the advection term and numerical dispersion played an important role for the accuracy of the results, the simulators were further compared using different solution schemes. When all codes used the same spatial weighting scheme with finite-difference approximation, the simulation results agreed very well among all four codes. The model intercomparison for the 2D-case demonstrated a high level of sensitivity to the mixing of different waters at the dispersive front. Therefore this benchmark problem is well-suited to assess code performance for mixing-controlled reactive transport models in conjunction with complex reaction kinetics.
引用
收藏
页码:569 / 583
页数:14
相关论文
共 16 条
  • [11] Modeling UO2 bioprecipitation and reoxidation by Fe(III) (hydr)oxides
    Spycher, N.
    Issarangkun, M.
    Stewart, B.
    Sengor, S.
    Ginn, T.
    Sani, R.
    Peyton, B.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2010, 74 (12) : A984 - A984
  • [12] Mineral characterization of the biogenic Fe(III)(hydr) oxides produced during Fe(II)-driven denitrification with Cu, Ni and Zn
    Kiskira, Kyriaki
    Papirio, Stefano
    Mascolo, Maria Cristina
    Fourdrin, Chloe
    Pechaud, Yoan
    van Hullebusch, Eric D.
    Esposito, Giovanni
    SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 687 : 401 - 412
  • [13] Mobilization of sorbed and co-precipitated arsenic from biogenic Fe(III) (hydr) oxides by the Fe(III)-reducer Shewanella oneidensis MR-1
    Muehe, E. M.
    Posth, N. R.
    Hohmann, C.
    Kappler, A.
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2010, 74 (12) : A732 - A732
  • [14] Effect of silica, phosphate and humic substances on sorption of As to commercially available granulated iron minerals and biogenic Fe(III)(hydr) oxides
    Posth, N. R.
    Muehe, E. M.
    Kappler, A.
    ARSENIC IN GEOSPHERE AND HUMAN DISEASES, 2010, : 412 - 413
  • [15] Dependence of In Situ Bacterial Fe(II)-Oxidation and Fe(III)-Precipitation on Sequential Reactive Transport
    Edwards, Brock A.
    Shirokova, Veronika L.
    Enright, Allison M. L.
    Ferris, F. Grant
    GEOMICROBIOLOGY JOURNAL, 2018, 35 (06) : 503 - 510
  • [16] Reactive transport modeling to understand attenuation of arsenic concentrations in anoxic groundwater during Fe(II) oxidation by nitrate
    Kent, D. B.
    Smith, R. L.
    Jamieson, J.
    Bohlke, J. K.
    Repert, D. A.
    Prommer, H.
    ENVIRONMENTAL ARSENIC IN A CHANGING WORLD (AS2018), 2018, : 512 - 513