Literature DB >> 16490280

Upscaling heterogeneity in aquifer reactivity via exposure-time concept: forward model.

Uma Seeboonruang1, Timothy R Ginn.   

Abstract

Reactive properties of aquifer solid phase materials play an important role in solute fate and transport in the natural subsurface on time scales ranging from years in contaminant remediation to millennia in dynamics of aqueous geochemistry. Quantitative tools for dealing with the impact of natural heterogeneity in solid phase reactivity on solute fate and transport are limited. Here we describe the use of a structural variable to keep track of solute flux exposure to reactive surfaces. With this approach, we develop a non-reactive tracer model that is useful for determining the signature of multi-scale reactive solid heterogeneity in terms of solute flux distributions at the field scale, given realizations of three-dimensional reactive site density fields. First, a governing Eulerian equation for the non-reactive tracer model is determined by an upscaling technique in which it is found that the exposure time of solution to reactive surface areas evolves via both a macroscopic velocity and a macroscopic dispersion in the artificial dimension of exposure time. Second, we focus on the Lagrangian approach in the context of a streamtube ensemble and demonstrate the use of the distribution of solute flux over the exposure time dimension in modeling two-dimensional transport of a solute undergoing simplified linear reversible reactions, in hypothetical conditions following prior laboratory experiments. The distribution of solute flux over exposure time in a given case is a signature of the impact of heterogeneous aquifer reactivity coupled with a particular physical heterogeneity, boundary conditions, and hydraulic gradient. Rigorous application of this approach in a simulation sense is limited here to linear kinetically controlled reactions.

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Year:  2006        PMID: 16490280     DOI: 10.1016/j.jconhyd.2005.12.011

Source DB:  PubMed          Journal:  J Contam Hydrol        ISSN: 0169-7722            Impact factor:   3.188


  3 in total

Review 1.  Soil engineering in vivo: harnessing natural biogeochemical systems for sustainable, multi-functional engineering solutions.

Authors:  Jason T DeJong; Kenichi Soga; Steven A Banwart; W Richard Whalley; Timothy R Ginn; Douglas C Nelson; Brina M Mortensen; Brian C Martinez; Tammer Barkouki
Journal:  J R Soc Interface       Date:  2010-09-09       Impact factor: 4.118

2.  Using groundwater age distributions to estimate the effective parameters of Fickian and non-Fickian models of solute transport.

Authors:  Nicholas B Engdahl; Timothy R Ginn; Graham E Fogg
Journal:  Adv Water Resour       Date:  2013-04       Impact factor: 4.510

3.  Non-Fickian dispersion of groundwater age.

Authors:  Nicholas B Engdahl; Timothy R Ginn; Graham E Fogg
Journal:  Water Resour Res       Date:  2012-07       Impact factor: 5.240

  3 in total

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