6533b872fe1ef96bd12d39d1
RESEARCH PRODUCT
Multiple recharge processes to heterogeneous Mediterranean coastal aquifers and implications on recharge rates evolution in time
Emilie GarelEmilie GarelSébastien SantoniSébastien SantoniHélène Celle-jeantonHélène Celle-jeantonFrédéric HuneauFrédéric Huneausubject
Mediterranean climateHydrologyIrrigationgeographygeography.geographical_feature_category010504 meteorology & atmospheric sciences0208 environmental biotechnologyClimate changeContext (language use)Aquifer02 engineering and technologyGroundwater recharge01 natural sciences6. Clean water020801 environmental engineering13. Climate actionEnvironmental science[SDU.STU.HY]Sciences of the Universe [physics]/Earth Sciences/HydrologySurface runoffGroundwaterComputingMilieux_MISCELLANEOUS0105 earth and related environmental sciencesWater Science and Technologydescription
Abstract Climate change is nowadays widely considered to have major effects on groundwater resources. Climatic projections suggest a global increase in evaporation and higher frequency of strong rainfall events especially in Mediterranean context. Since evaporation is synonym of low recharge conditions whereas strong rainfall events are more favourable to recharge in heterogeneous subsurface contexts, a lack of knowledge remains then on the real ongoing and future drinking groundwater supply availability at aquifers scale. Due to low recharge potential and high inter-annual climate variability, this issue is strategic for the Mediterranean hydrosystems. This is especially the case for coastal aquifers because they are exposed to seawater intrusion, sea-level rise and overpumping risks. In this context, recharge processes and rates were investigated in a Mediterranean coastal aquifer with subsurface heterogeneity located in Southern Corsica (France). Aquifer recharge rates from combining ten physical and chemical methods were computed. In addition, hydrochemical and isotopic investigations were carried out through a monthly two years monitoring combining major ions and stable isotopes of water in rain, runoff and groundwater. Diffuse, focused, lateral mountain system and irrigation recharge processes were identified and characterized. A predominant focused recharge conditioned by subsurface heterogeneity is evidenced in agreement with variable but highly favourable recharge rates. The fast water transfer from the surface to the aquifer implied by this recharge process suggests less evaporation, which means higher groundwater renewal and availability in such Mediterranean coastal aquifers.
year | journal | country | edition | language |
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2018-04-01 |