Multiscale Framework for Modeling Multicomponent Reactive Transport in Stream Corriders

被引:15
|
作者
Painter, S. L. [1 ,2 ]
机构
[1] Oak Ridge Natl Lab, Climate Change Sci Inst, Oak Ridge, TN 37830 USA
[2] Oak Ridge Natl Lab, Div Environm Sci, Oak Ridge, TN 37830 USA
关键词
RESIDENCE TIME DISTRIBUTION; HYPORHEIC EXCHANGE FLOWS; TRANSIENT STORAGE MODEL; NONSORBING SOLUTES; MOUNTAIN STREAM; RIVER; ZONE; DENITRIFICATION; BEDFORMS; NITROGEN;
D O I
10.1029/2018WR022831
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Travel time-based representations of transport, a highly successful strategy for modeling conservative tracer transport in stream corridors, are extended to accommodate multicomponent reactive transport. Specifically, convolution representations used to model exchange of solute with the hyporheic zone are shown to be equivalent to solving one-dimensional subgrid models in Lagrangian form coupled to the advection dispersion equation for the stream channel. Unlike the convolution-based representations of previous travel time-based stream transport models, the subgrid model generalizes to include multicomponent reactive transport with general nonlinear reactions. An example involving biomass growth, the establishment of redox zonation, and the resulting impact on denitrification rates demonstrate reach-scale application of the new approach. Although simplified, those example simulations show some of the key phenomena associated with hyporheic zone denitrification that are not represented with conventional first-order estimates.
引用
收藏
页码:7216 / 7230
页数:15
相关论文
共 50 条
  • [21] A multiscale framework for modeling geomaterials
    Andrade, J. E.
    Tu, X.
    Finno, R. J.
    DEFORMATION CHARACTERISTICS OF GEOMATERIALS, VOLS 1 AND 2, 2008, : 671 - 677
  • [22] Multiscale modeling for multiphase flow and reactive mass transport in subsurface energy storage: A review
    Lyu, Xiaocong
    Wang, Wendong
    Voskov, Denis
    Liu, Piyang
    Chen, Li
    ADVANCES IN GEO-ENERGY RESEARCH, 2025, 15 (03): : 245 - 260
  • [23] Coupling between geochemical reactions and multicomponent gas and solute transport in unsaturated media: A reactive transport modeling study
    Molins, S.
    Mayer, K. U.
    WATER RESOURCES RESEARCH, 2007, 43 (05)
  • [24] Effects of incomplete mixing on multicomponent reactive transport
    Tartakovsky, A. M.
    Tartakovsky, G. D.
    Scheibe, T. D.
    ADVANCES IN WATER RESOURCES, 2009, 32 (11) : 1674 - 1679
  • [25] Multicomponent Transport in Polyatomic Reactive Gas Mixtures
    Giovangigli, Vincent
    27TH INTERNATIONAL SYMPOSIUM ON RAREFIED GAS DYNAMICS, 2010, PTS ONE AND TWO, 2011, 1333 : 635 - 642
  • [26] Reactive Transport Modeling
    Seaman, J. C.
    Chang, H.
    Goldberg, S.
    Simunek, J.
    VADOSE ZONE JOURNAL, 2012, 11 (02):
  • [27] An Improved Tandem Neural Network Architecture for Inverse Modeling of Multicomponent Reactive Transport in Porous Media
    Chen, Junjun
    Dai, Zhenxue
    Yang, Zhijie
    Pan, Yu
    Zhang, Xiaoying
    Wu, Jichun
    Soltanian, Mohamad Reza
    WATER RESOURCES RESEARCH, 2021, 57 (12)
  • [28] Variably saturated flow and multicomponent biogeochemical reactive transport modeling of a uranium bioremediation field experiment
    Yabusaki, Steven B.
    Fang, Yilin
    Williams, Kenneth H.
    Murray, Christopher J.
    Ward, Andy L.
    Dayvault, Richard D.
    Waichler, Scott R.
    Newcomer, Darrell R.
    Spane, Frank A.
    Long, Philip E.
    JOURNAL OF CONTAMINANT HYDROLOGY, 2011, 126 (3-4) : 271 - 290
  • [29] Subsurface multiphase flow and multicomponent reactive transport modeling using high-performance computing
    Hammond, Glenn
    Lichtner, Peter
    Lu, Chuan
    SCIDAC 2007: SCIENTIFIC DISCOVERY THROUGH ADVANCED COMPUTING, 2007, 78
  • [30] Multicomponent and multiphase modeling and simulation of reactive wetting
    Villanueva, Walter
    Gronhagen, Klara
    Amberg, Gustav
    Agren, John
    PHYSICAL REVIEW E, 2008, 77 (05):