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Empirical quantification of lacustrine groundwater discharge -different methods and their limitations

机译:湖水地下水排放的经验量化-不同方法及其局限性

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Groundwater discharge into lakes (lacustrine groundwater discharge, LGD) can be an important driver of lake eutrophication. Its quantification is difficult for several reasons, and thus often neglected in water and nutrient budgets of lakes. In the present case several methods were applied to determine the expansion of the subsurface catchment, to reveal areas of main LGD and to identify the variability of LGD intensity. Size and shape of the subsurface catchment served as a prerequisite in order to calculate long-term groundwater recharge and thus the overall amount of LGD. Isotopic composition of near-shore groundwater was investigated to validate the quality of catchment delineation in near-shore areas. Heat as a natural tracer for groundwater-surface water interactions was used to find spatial variations of LGD intensity. Via an analytical solution of the heat transport equation, LGD rates were calculated from temperature profiles of the lake bed. The method has some uncertainties, as can be found from the results of two measurement campaigns in different years. The present study reveals that a combination of several different methods is required for a reliable identification and quantification of LGD and groundwater-borne nutrient loads.
机译:进入湖泊的地下水排放(湖泊地下水排放,LGD)可能是湖泊富营养化的重要驱动力。由于以下几个原因,很难对其进行量化,因此在湖泊的水和养分预算中经常被忽略。在目前的情况下,采用了几种方法来确定地下集水区的扩张,揭示主要LGD的面积并确定LGD强度的变化。为了计算长期地下水补给,从而计算LGD的总量,地下集水区的大小和形状是前提。研究了近岸地下水的同位素组成,以验证近岸地区集水区划定的质量。利用热量作为地下水与地表水相互作用的天然示踪剂,发现了LGD强度的空间变化。通过热传输方程的解析解,可以从湖床的温度曲线计算LGD率。从不同年份两次测量活动的结果可以发现,该方法存在一些不确定性。本研究表明,可靠鉴定和定量LGD和地下水携带的营养物负荷需要几种不同方法的组合。

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