Investigating Multilayer Aquifer Dynamics by Combining Geochemistry, Isotopes and Hydrogeological Context Analysis

Author:

Proteau-Bedard Francis12,Baudron Paul23,Benoit Nicolas4,Nastev Miroslav4,Post Ryan5,Masse-Dufresne Janie678ORCID

Affiliation:

1. Englobe, 855 Rue Pépin, Sherbrooke, QC J1L 2P8, Canada

2. Polytechnique Montreal, Department of Civil, Geological and Mining Engineering, C.P. 6079, succ. Centre-Ville, Montreal, QC H3C 3A7, Canada

3. UMR G-EAU, Institut de Recherche pour le Développement, 361 Rue Jean François Breton, 34090 Montpellier, France

4. Geological Survey of Canada, Natural Resources Canada, 490 Rue de la Couronne, Québec, QC G1K 9A9, Canada

5. Nottawasaga Valley Conservation Authority, 8195 8th Line, Utopia, ON L0M 1T0, Canada

6. École de Technologie Supérieure, Département de Génie de la Construction, 1100 R. Notre Dame O, Montréal, QC H3C 1K3, Canada

7. Geotop-UQAM, Chair in Urban Hydrogeology, Department of Earth and Atmospheric Sciences, C.P. 8888, succ. Centre-Ville, Montreal, QC H3C 3P8, Canada

8. Quebec Water Research Centre (CentrEau), Pavillon Adrien-Pouliot, Université Laval, 1065, Avenue de la Médecine, Québec, QC G1V 0A6, Canada

Abstract

Geochemical tracers have the potential to provide valuable insights for constructing conceptual models of groundwater flow, especially in complex geological contexts. Nevertheless, the reliability of tracer interpretation hinges on its integration into a robust geological framework. In our research, we concentrated on delineating the groundwater flow dynamics in the Innisfil Creek watershed, located in Ontario, Canada. We amalgamated extensive hydrogeological data derived from a comprehensive 3D geological model with the analysis of 61 groundwater samples, encompassing major ions, stable water isotopes, tritium, and radiocarbon. By seamlessly incorporating regional physiographic characteristics, flow pathways, and confinement attributes, we bolstered the efficiency of these tracers, resulting in several notable findings. Firstly, we identified prominent recharge and discharge zones within the watershed. Secondly, we observed the coexistence of relatively shallow and fast-flowing paths with deeper, slower-flowing channels, responsible for transporting groundwater from ancient glacial events. Thirdly, we determined that cation exchange stands as the predominant mechanism governing the geochemical evolution of contemporary water as it migrates toward confined aquifers situated at the base of the Quaternary sequence. Fourthly, we provided evidence of the mixing of modern, low-mineralized water originating from unconfined aquifer units with deep, highly mineralized water within soil–bedrock interface aquifers. These findings not only contribute significantly to the development a conceptual flow model for the sustainable management of groundwater in the Innisfil watershed, but also offer practical insights that hold relevance for analogous geological complexities encountered in other regions.

Publisher

MDPI AG

Subject

Earth-Surface Processes,Waste Management and Disposal,Water Science and Technology,Oceanography

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