4.7 Article

Characterization of a carbonate karstic aquifer flow system using multiple radioactive noble gases ((3) H-He-3, Kr-85, Ar-39) and C-14 as environmental tracers

期刊

GEOCHIMICA ET COSMOCHIMICA ACTA
卷 242, 期 -, 页码 213-232

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.gca.2018.09.009

关键词

Groundwater dating; Krypton; Argon; Noble gases; Radioactive isotopes; Tritium-helium Eastern Mountain Aquifer; Water rock interaction

资金

  1. Ministry of Science, Technology and Space of Israel [3-11514]

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Groundwater age in a carbonate karstic aquifer was assessed using a multiple tracer method that enables identification of modern groundwater (recharged after 1955; using H-3-He-3, Kr-85 CFCs, SF6,), older components (Ar-39, C-14) and quantification of the mixing between them. Twelve wells were sampled in the Eastern Mountain Aquifer (EMA) of Israel along two trajectories, from the recharge area in the mountains, to the natural outlets in the Dead Sea area. The concentration of the dissolved Ar-39 in the groundwater decreased from 96 to 12% along the trajectories, indicating recent recharge upstream, and groundwater aged more than 800y downstream. Other tracers present a similar general trend of decreasing concentrations with distance from the recharge area at two distinct rates, suggesting two different groundwater flow velocities in the two different groundwater flow paths. In most of the wells, pronounced mixing was observed according to the presence of young (after 1955) and older water components. The fraction of the young water was quantified by tritium (H-3) and by the combination of H-3 and Kr-85 measurements and found to be between 1 and 67%. The wide age distribution is likely caused by the karstic nature of the aquifer with pronounced dispersion and exchange between highly permeable flow channels and stagnant water stored in the rock matrix. Another mixing mechanism is vertical leakage from the upper to the lower sub-aquifer and vice versa according to the groundwater head differences between the two sub-aquifers. Mixing, diffusive exchange and water rock interaction lead to a reduction of C-14 in DIC, resulting in an apparent half-life of similar to 900 y instead of 5730y for radioactive decay only. This is concluded from the comparison of C-14 and Ar-39 ages. (C) 2018 Elsevier Ltd. All rights reserved.

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