Using isotopic tracers to enhance routine watershed monitoring – Insights from an intensively managed agricultural catchment

环境科学 地下水补给 分水岭 水文学(农业) 地下水 水质 瓷砖排水 采样(信号处理) 水循环 地表水 水土评价工具 流域 水流 水资源管理 含水层 环境工程 地理 土壤水分 生态学 土壤科学 地质学 滤波器(信号处理) 机器学习 生物 地图学 计算机科学 岩土工程 计算机视觉
作者
Elisha Persaud,Jana Levison,Geneviève Ali,C. E. Robinson
出处
期刊:Journal of Environmental Management [Elsevier]
卷期号:344: 118364-118364 被引量:1
标识
DOI:10.1016/j.jenvman.2023.118364
摘要

Experimental (research-based) and non-research-based watershed monitoring programs often differ with respect to sampling frequency, monitored variables, and monitoring objectives. Isotopic variables, which are more commonly incorporated in research-based programs, can provide an indication of water sources and the transit time of water in a catchment. These variables may be a valuable complement to traditional water quality monitoring variables and have the potential to support improved hydrologic process-related insights from long term monitoring programs that typically have low resolution sampling. The purpose of this investigation is to explore the utility of incorporating isotopic variables (specifically δ18O, δ2H, and 222Rn) into routine monthly sampling regimes by comparing insights gained from these variables to monitoring only specific conductivity and chloride. A complete annual cycle of monthly groundwater and surface water monitoring data collected from the Upper Parkhill watershed in southwestern Ontario, Canada was used to characterize baseline watershed conditions, evaluate watershed resilience to climate change, and examine contamination vulnerability. Study results provide an improved understanding of appropriate tracer use in agricultural regions with isotopic variables able to provide important insights into the seasonality of hydrologic phenomena, such as the timing of groundwater recharge. A comparison of monitoring variables to present-day hydro-meteorological conditions suggests the importance of a winter dominated hydrologic regime and the potential influence of changes in precipitation on groundwater-surface water interactions. Estimated transit time dynamics indicate the likelihood for rapid contaminant transport through surface and shallow subsurface flow and highlight the possible effects of agricultural tile drainage. The sampling approach and data analysis methods adopted in this study provide the basis for improving routine watershed monitoring programs in agricultural regions.
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