Understanding Contaminant Migration Within a Dynamic River Corridor Through Field Experiments and Reactive Transport Modeling
The behavior of a persistent uranium plume within an extended river corridor at the DOE Hanford site is dominantly controlled by river stage fluctuations in the adjacent Columbia River. The plume behavior is further complicated by substantial heterogeneity in physical and geochemical properties of t...
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2020-11-01
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doaj-78b60c32107c40a794ea5d1279b4df442021-04-02T16:04:05ZengFrontiers Media S.A.Frontiers in Water2624-93752020-11-01210.3389/frwa.2020.533796533796Understanding Contaminant Migration Within a Dynamic River Corridor Through Field Experiments and Reactive Transport ModelingXingyuan ChenJohn M. ZacharaVince R. VermuelGlenn HammondMark FreshleyYilin FangThe behavior of a persistent uranium plume within an extended river corridor at the DOE Hanford site is dominantly controlled by river stage fluctuations in the adjacent Columbia River. The plume behavior is further complicated by substantial heterogeneity in physical and geochemical properties of the host aquifer sediments. Multi-scale field and laboratory experiments and reactive transport modeling were integrated to understand the complex plume behavior influenced by highly variable hydrologic and geochemical conditions in time and space. In this paper, we (1) describe multiple data sets from field-scale uranium adsorption and desorption experiments performed at our experimental well-field, (2) develop a reactive transport model that incorporates hydrologic and geochemical heterogeneities characterized from multi-scale and multi-type datasets and a surface complexation reaction network based on laboratory studies, and (3) compare the modeling and observation results to provide insights on how to refine the conceptual model and reduce prediction uncertainties. The experimental results revealed significant spatial variability in uranium adsorption/desorption behavior, while modeling demonstrated that ambient hydrologic and geochemical conditions and heterogeneities in sediment physical and chemical properties both contributed to complex plume behavior and its persistence. This research underscores the great challenges in adequately characterizing this type of site to model the reactive transport processes over scales of 10 m or more. Our analysis provides important insights into the characterization, understanding, modeling, and remediation of groundwater contaminant plumes influenced by dynamic surface water and groundwater interactions.https://www.frontiersin.org/articles/10.3389/frwa.2020.533796/fulltracer injection experimentsreactive transport modelingdata assimilationsurface water and groundwater interactionriver corridor |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Xingyuan Chen John M. Zachara Vince R. Vermuel Glenn Hammond Mark Freshley Yilin Fang |
spellingShingle |
Xingyuan Chen John M. Zachara Vince R. Vermuel Glenn Hammond Mark Freshley Yilin Fang Understanding Contaminant Migration Within a Dynamic River Corridor Through Field Experiments and Reactive Transport Modeling Frontiers in Water tracer injection experiments reactive transport modeling data assimilation surface water and groundwater interaction river corridor |
author_facet |
Xingyuan Chen John M. Zachara Vince R. Vermuel Glenn Hammond Mark Freshley Yilin Fang |
author_sort |
Xingyuan Chen |
title |
Understanding Contaminant Migration Within a Dynamic River Corridor Through Field Experiments and Reactive Transport Modeling |
title_short |
Understanding Contaminant Migration Within a Dynamic River Corridor Through Field Experiments and Reactive Transport Modeling |
title_full |
Understanding Contaminant Migration Within a Dynamic River Corridor Through Field Experiments and Reactive Transport Modeling |
title_fullStr |
Understanding Contaminant Migration Within a Dynamic River Corridor Through Field Experiments and Reactive Transport Modeling |
title_full_unstemmed |
Understanding Contaminant Migration Within a Dynamic River Corridor Through Field Experiments and Reactive Transport Modeling |
title_sort |
understanding contaminant migration within a dynamic river corridor through field experiments and reactive transport modeling |
publisher |
Frontiers Media S.A. |
series |
Frontiers in Water |
issn |
2624-9375 |
publishDate |
2020-11-01 |
description |
The behavior of a persistent uranium plume within an extended river corridor at the DOE Hanford site is dominantly controlled by river stage fluctuations in the adjacent Columbia River. The plume behavior is further complicated by substantial heterogeneity in physical and geochemical properties of the host aquifer sediments. Multi-scale field and laboratory experiments and reactive transport modeling were integrated to understand the complex plume behavior influenced by highly variable hydrologic and geochemical conditions in time and space. In this paper, we (1) describe multiple data sets from field-scale uranium adsorption and desorption experiments performed at our experimental well-field, (2) develop a reactive transport model that incorporates hydrologic and geochemical heterogeneities characterized from multi-scale and multi-type datasets and a surface complexation reaction network based on laboratory studies, and (3) compare the modeling and observation results to provide insights on how to refine the conceptual model and reduce prediction uncertainties. The experimental results revealed significant spatial variability in uranium adsorption/desorption behavior, while modeling demonstrated that ambient hydrologic and geochemical conditions and heterogeneities in sediment physical and chemical properties both contributed to complex plume behavior and its persistence. This research underscores the great challenges in adequately characterizing this type of site to model the reactive transport processes over scales of 10 m or more. Our analysis provides important insights into the characterization, understanding, modeling, and remediation of groundwater contaminant plumes influenced by dynamic surface water and groundwater interactions. |
topic |
tracer injection experiments reactive transport modeling data assimilation surface water and groundwater interaction river corridor |
url |
https://www.frontiersin.org/articles/10.3389/frwa.2020.533796/full |
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