article · Journal of Hydrology Regional Studies
Study region: Verlorenvlei Catchment (∼1 890 km 2 ) is an agriculture-dominated area (∼43 % per km 2 ) on South Africa’s west coast. This semi-arid region has variable rainfall and high evaporation rates, affecting the three major aquifers and Verlorenvlei – a RAMSAR-listed estuarine lake. Study focus: Natural processes (i.e., extended dry periods and evaporation) and anthropogenic activities (i.e., agricultural expansion and groundwater abstraction) have threatened Verlorenvlei’s ecological functions. Seasonal and spatial changes between the water sources (i.e., direct rainfall, surface water, and groundwater) supporting Verlorenvlei were determined using δ 18 O and δ 2 H isotopes and hydrochemical analyses. Inter-basin aquifer contribution was investigated to assist in explaining Verlorenvlei's slow recovery since the recent 2015 – 2018 Western Cape drought. New insights: A proportion of groundwater from outside the topographic and surface-water delineated catchment supports Verlorenvlei during the dry month of April (i.e., G30F Langvlei sub-catchment). Furthermore, Verlorenvlei experiences high evaporation (evaporation best fit line: δ 2 H = 12.49 x δ 18 O - 47.68, average δ 2 H value of 47.1 ‰ and average δ 18 O value of 7.64 ‰) compared to its feeding rivers. Two sandstone and shale-dominated sub-catchments exhibit overlapping groundwater δ 18 O and δ 2 H values and water types to the sub-catchment in the nearest vicinity of Verlorenvlei, suggesting a disproportionately high groundwater contribution from these sub-catchments to Verlorenvlei. Evaluation of Verlorenvlei’s water balance should consider both surface water and groundwater sources, particularly from inter-basin aquifer sources during prolonged droughts. • Evaporation exceeds groundwater contribution to the Verlorenvlei. • δ 18 O and δ 2 H values indicate inter-basin groundwater recharge areas. • Disproportionately high groundwater contribution from two shale-dominated sub-catchments. • Watershed delineation should include inter-basin flow using groundwater O and H stable isotopes.
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DOI: 10.1016/j.ejrh.2024.102081
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