Perched-water analysis related to deep vadose zone contaminant transport and impact to groundwater

被引:17
|
作者
Oostrom, M. [1 ]
Truex, M. J. [1 ]
Carroll, K. C. [1 ]
Chronister, G. B. [2 ]
机构
[1] Pacific NW Natl Lab, Div Energy & Environm, Richland, WA 99354 USA
[2] CH2M HILL Plateau Remediat Co, Richland, WA USA
关键词
Perched water; Deep vadose zone; Contaminant transport; Groundwater contaminant flux; UNSATURATED ZONE; PAJARITO PLATEAU; YUCCA MOUNTAIN; LOS-ALAMOS; NEW-MEXICO; FLOW; SUBSURFACE; BENEATH; TRACER;
D O I
10.1016/j.jhydrol.2013.10.001
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
A series of calculations and model predictions were used to evaluate the controls on perched-water conditions and constraints on perching occurrence, persistence, and potential impact on groundwater contamination. These simulations considered perched-water conditions that have been observed in the vadose zone above a fine-grained layer located just a few meters above the water table beneath the B-Complex Tank Farms area at the Hanford Site. The perched water, containing elevated concentrations of uranium and technetium-99, is important to consider in evaluating the future flux of contaminated water into the groundwater. A study was conducted to examine the perched-water conditions and quantitatively evaluate (I) factors that control perching behavior, (2) contaminant flux toward groundwater, and, (3) associated groundwater impact. Based on the current vertical transport pathways and large areal extent of the perched system, the evaluation was conducted using a one-dimensional analysis. Steady-state analytical calculations showed that the perching-layer hydraulic conductivity is likely to be up to two orders of magnitude lower than the value obtained from Hanford site material property estimates. Numerical flow and transport simulations provided both steady-state and transient system estimates of water and contaminant behavior and were used to further refine the range of conditions consistent with current observations of perched water height and to provide estimates of future water and contaminant flux to groundwater. Near-term removal of perched water by pumping can decrease the total contaminant mass that will discharge to the groundwater, but will have only a moderate effect on the near-term discharge rate and corresponding contaminant concentration in groundwater. Combining pumping with a decrease in the recharge rate will be most effective in minimizing the impact to groundwater. These results provide a framework for constraining the behavior of perched aquifer systems especially related to impacts on contaminant transport. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:228 / 239
页数:12
相关论文
共 50 条
  • [1] Groundwater composition of perched-water bodies at Azores volcanic islands
    Cruz, JV
    França, ZM
    WATER-ROCK INTERACTION, VOLS 1 AND 2, 2001, : 481 - 484
  • [2] Water dynamics and groundwater recharge in a deep vadose zone
    Ju, Zhaoqiang
    Li, Xiaoxin
    Hu, Chunsheng
    WATER SCIENCE AND TECHNOLOGY-WATER SUPPLY, 2016, 16 (03): : 579 - 586
  • [3] Evaluation of deep vadose zone contaminant flux into groundwater: Approach and case study
    Oostrom, M.
    Truex, M. J.
    Last, G. V.
    Strickland, C. E.
    Tartakovsky, G. D.
    JOURNAL OF CONTAMINANT HYDROLOGY, 2016, 189 : 27 - 43
  • [4] Water reactive polyurethane grouting for deep vadose zone contaminant immobilization
    Song, Jinhu
    Johnson, Drew W.
    Huang, Jie
    Saslow, Sarah
    ENGINEERING GEOLOGY, 2025, 347
  • [5] Tensiometer for shallow and deep measurements of water pressure in vadose zone and groundwater
    Faybishenko, B
    SOIL SCIENCE, 2000, 165 (06) : 473 - 482
  • [6] Probabilistic sensitivity analysis for one-dimensional contaminant transport in the vadose zone
    Piggott, JH
    Cawlfield, JD
    JOURNAL OF CONTAMINANT HYDROLOGY, 1996, 24 (02) : 97 - 115
  • [7] Major ion chemistry of groundwater from perched-water bodies of the Azores (Portugal) volcanic archipelago
    Cruz, JV
    Amaral, CS
    APPLIED GEOCHEMISTRY, 2004, 19 (03) : 445 - 459
  • [8] Modeling colloid-facilitated contaminant transport in the vadose zone
    Flury, Markus
    Qiu, Hanxue
    VADOSE ZONE JOURNAL, 2008, 7 (02) : 682 - 697
  • [9] Water percolation through the deep vadose zone and groundwater recharge: Preliminary results based on a new vadose zone monitoring system
    Rimon, Yaara
    Dahan, Ofer
    Nativ, Ronit
    Geyer, Stefan
    WATER RESOURCES RESEARCH, 2007, 43 (05)
  • [10] Deep vadose zone contaminant immobilization with polyurethanes and epoxy chemical grouts
    Jinhu Song
    Drew W. Johnson
    Jie Huang
    Sarah Saslow
    Environmental Science and Pollution Research, 2025, 32 (15) : 9462 - 9478