Published September 2018 | Version v1
Journal article

Dating groundwater with dissolved silica and CFC concentrations in crystalline aquifers

  • 1. Univ Rennes, CNRS, Géosciences Rennes, UMR 6118, 35000 Rennes (France)
  • 2. Agroparistech, 75005 Paris (France)
  • 3. Brigham Young University, Provo, UT (United States)
  • 4. RiverLy-Irstea, Lyon, 5 rue de la Doua, 69616 Villeurbanne cedex (France)
  • 5. Laboratoire d'Hydrologie et de Géochimie de Strasbourg (LHyGeS), CNRS, Université de Strasbourg, 67084 Strasbourg Cedex (France)

Description

Highlights: • Silicate concentration is a robust proxy of residence time in crystalline aquifer • Extensive groundwater dating revealed near constant silica weathering rates. • Silicate weathering rates are sensitive to climate and anthropogenic activities. Estimating intermediate water residence times (a few years to a century) in shallow aquifers is critical to quantifying groundwater vulnerability to nutrient loading and estimating realistic recovery timelines. While intermediate groundwater residence times are currently determined with atmospheric tracers such as chlorofluorocarbons (CFCs), these analyses are costly and would benefit from other tracer approaches to compensate for the decreasing resolution of CFC methods in the 5–20 years range. In this context, we developed a framework to assess the capacity of dissolved silica (DSi) to inform residence times in shallow aquifers. We calibrated silicate weathering rates with CFCs from multiple wells in five crystalline aquifers in Brittany and in the Vosges Mountains (France). DSi and CFCs were complementary in determining apparent weathering reactions and residence time distributions (RTDs) in shallow aquifers. Silicate weathering rates were surprisingly similar among Brittany aquifers, varying from 0.20 to 0.23 mg L−1 yr−1 with a coefficient of variation of 7%, except for the aquifer where significant groundwater abstraction occurred, where we observed a weathering rate of 0.31 mg L−1 yr−1. The silicate weathering rate was lower for the aquifer in the Vosges Mountains (0.12 mg L−1 yr−1), potentially due to differences in climate and anthropogenic solute loading. Overall, these optimized silicate weathering rates are consistent with previously published studies with similar apparent ages range. The consistency in silicate weathering rates suggests that DSi could be a robust and cheap proxy of mean residence times for recent groundwater (5–100 years) at the regional scale. This methodology could allow quantification of seasonal groundwater contributions to streams, estimation of residence times in the unsaturated zone and improve assessment of aquifer vulnerability to anthropogenic pollution.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.scitotenv.2018.04.196

Additional details

Identifiers

DOI
10.1016/j.scitotenv.2018.04.196;
PII
S0048969718313731;

Publishing Information

Journal Title
Science of the Total Environment
Journal Volume
636
Journal Page Range
p. 260-272
ISSN
0048-9697
CODEN
STENDL

Optional Information

Copyright
Copyright (c) 2018 Elsevier B.V. All rights reserved.