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Determining groundwater-surface water exchange from temperature-time series: Combining a local polynomial method with a maximum likelihood estimator

机译:根据温度-时间序列确定地下水-地表水交换:结合局部多项式方法和最大似然估计器

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摘要

The use of temperature-time series measured in streambed sediments as input to coupled water flow and heat transport models has become standard when quantifying vertical groundwater-surface water exchange fluxes. We develop a novel methodology, called LPML, to estimate the parameters for 1-D water flow and heat transport by combining a local polynomial (LP) signal processing technique with a maximum likelihood (ML) estimator. The LP method is used to estimate the frequency response functions (FRFs) and their uncertainties between the streambed top and several locations within the streambed from measured temperature-time series data. Additionally, we obtain the analytical expression of the FRFs assuming a pure sinusoidal input. The estimated and analytical FRFs are used in an ML estimator to deduce vertical groundwater-surface water exchange flux and its uncertainty as well as information regarding model quality. The LPML method is tested and verified with the heat transport models STRIVE and VFLUX. We demonstrate that the LPML method can correctly reproduce a priori known fluxes and thermal conductivities and also show that the LPML method can estimate averaged and time-variable fluxes from periodic and nonperiodic temperature records. The LPML method allows for a fast computation of exchange fluxes as well as model and parameter uncertainties from many temperature sensors. Moreover, it can utilize a broad frequency spectrum beyond the diel signal commonly used for flux calculations.
机译:在量化垂直地下水-地表水交换通量时,使用在河床沉积物中测得的温度-时间序列作为耦合的水流和热传输模型的输入已成为标准。我们开发了一种新颖的方法,称为LPML,通过结合局部多项式(LP)信号处理技术与最大似然(ML)估计器来估算一维水流和热传递的参数。 LP方法用于根据测量的温度-时间序列数据来估算频率响应函数(FRF)及其在河床顶部与河床中几个位置之间的不确定性。此外,我们假设纯正弦输入获得FRF的解析表达式。 ML估计器中使用估计的FRF和分析的FRF来推断垂直的地下水-地表水交换通量及其不确定性,以及有关模型质量的信息。 LPML方法已通过传热模型STRIVE和VFLUX进行了测试和验证。我们证明了LPML方法可以正确地再现先验已知的通量和热导率,并且还表明LPML方法可以从周期性和非周期性的温度记录中估计平均和随时间变化的通量。 LPML方法允许快速计算交换通量以及来自许多温度传感器的模型和参数不确定性。而且,它可以利用通常用于通量计算的狄尔信号之外的宽频谱。

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