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    A Mountain‐Front Recharge Component Characterization Approach Combining Groundwater Age Distributions, Noble Gas Thermometry, and Fluid and Energy Transport Modeling

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    2020WR027743.pdf
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    Author
    Markovich, Katherine H.
    Condon, Laura E.
    Carroll, Kenneth C.
    Purtschert, Roland
    McIntosh, Jennifer C.
    Affiliation
    Department of Hydrology and Atmospheric Sciences, University of Arizona
    Issue Date
    2020-12-11
    Keywords
    argon-39
    fluid and energy transport modeling
    groundwater age distributions
    groundwater recharge
    mountain-front recharge
    noble gas thermometry
    
    Metadata
    Show full item record
    Publisher
    Blackwell Publishing Ltd
    Citation
    Markovich, K. H., Condon, L. E., Carroll, K. C., Purtschert, R., & McIntosh, J. C. (2021). A mountain‐front recharge component characterization approach combining groundwater age distributions, noble gas thermometry, and fluid and energy transport modeling. Water Resources Research, 57(1), e2020WR027743.
    Journal
    Water Resources Research
    Rights
    © 2020. American Geophysical Union. All Rights Reserved.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    Mountain-front recharge (MFR), or all inflow to a basin-fill aquifer with its source in the mountain block, is an important component of recharge to basin-fill aquifer systems. Distinguishing and quantifying the surface from subsurface components of MFR is necessary for water resource planning and management, particularly as climate change may impact these components in distinct ways. This study tests the hypothesis that MFR components can be distinguished in long-screened, basin-fill production wells by (1) groundwater age and (2) the median elevation of recharge. We developed an MFR characterization approach by combining age distributions in six wells using tritium, krypton-85, argon-39, and radiocarbon, and median recharge elevations from noble gas thermometry combined with numerical experiments to determine recharge temperature lapse rates using flow and energy transport modeling. We found that groundwater age distributions provided valuable information for characterizing the dominant flow system behavior captured by the basin-fill production wells. Tracers indicated the presence of old (i.e., no detectable tritium) water in a well completed in weathered bedrock located close to the mountain front. Two production wells exhibited age distributions of binary mixing between modern and a small fraction of old water, whereas the remaining wells captured predominantly modern flow paths. Noble gas thermometry provided important complementary information to the age distributions; however, assuming constant recharge temperature lapse rates produced improbable recharge elevations. Numerical experiments suggest that surface MFR, if derived from snowmelt, can locally suppress water table temperatures in the basin-fill aquifer, with implications for recharge elevations estimated from noble gas thermometry. © 2020. American Geophysical Union. All Rights Reserved.
    Note
    6 month embargo; first published online 11 December 2020
    ISSN
    0043-1397
    EISSN
    1944-7973
    DOI
    10.1029/2020wr027743
    Version
    Final published version
    Sponsors
    National Science Foundation
    ae974a485f413a2113503eed53cd6c53
    10.1029/2020wr027743
    Scopus Count
    Collections
    UA Faculty Publications

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