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首页> 外文期刊>Hydrogeology journal >Analytical methods that use natural heat as a tracer to quantify surface water–groundwater exchange, evaluated using field temperature records
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Analytical methods that use natural heat as a tracer to quantify surface water–groundwater exchange, evaluated using field temperature records

机译:使用自然热作为示踪剂来量化地表水-地下水交换的分析方法,使用现场温度记录进行评估

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Two methods applying natural heat as a tracer to quantify surface water–groundwater exchange were evaluated using field data. Arrays capable of monitoring and recording the streambed response to diurnal temperature variations in the surface water were deployed for a 2-month period in three locations in perennial pools at Maules Creek, New South Wales, Australia. Multi-level array design, field deployment and parameter estimation are discussed. The applicability of analytical solutions derived from the heat transport equation to the streambed environments was analysed using the recorded temperature time series. The stream was found to lose water to the aquifer, which was supported by simultaneously recorded hydraulic gradients. However, the one-dimensional (1D) analytical solutions did not adequately describe the observed streambed thermal response at two locations. The resulting artefacts in the estimated flow velocities are discussed. It was hypothesised that the artefacts originate from model limitation due to streambed heterogeneity and application of 1D solutions to multi-dimensional and dynamic streambed flow. This consequently imposes limitations on the field applicability of the methods. Nevertheless, in combination with time series of surface water and streambed water levels, the use of heat as a tracer provided a powerful tool for better understanding the shallow hydrogeological system.
机译:使用现场数据评估了两种以自然热为示踪剂定量地表水-地下水交换的方法。在澳大利亚新南威尔士州莫尔斯克里克的多年生游泳池的三个位置,将能够监测和记录流化床对地表温度日变化的响应的阵列部署了两个月。讨论了多级阵列设计,现场部署和参数估计。使用记录的温度时间序列分析了从热传输方程式导出的分析溶液对流床环境的适用性。发现该流失了含水层的水,同时记录了水力梯度,从而支持了含水层。但是,一维(1D)分析解决方案无法充分描述在两个位置观察到的流化床热响应。讨论了在估计流速中产生的伪像。假设假象源于模型限制,这是由于流床异质性和将一维解决方案应用于多维和动态流床流所致。因此,这对方法的现场适用性施加了限制。然而,结合地表水和河床水位的时间序列,使用热量作为示踪剂提供了一个强大的工具,可以更好地了解浅层水文地质系统。

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