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Estimating hydrologic parameters from water table dynamics using coupled hydrologic and ground-penetrating radar inversion

机译:利用水文和探地雷达耦合反演从地下水位动力学估算水文参数

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During water table drawdown the differential relationship between hydraulic conductivity and the distance above the water saturated zone (SZ) leads to delay in drainage and stretching of the transition zone. The ground-penetrating radar (GPR) reflection from the SZ depends both on the width and shape of the transition zone, and dynamic changes of the saturation curve alter the GPR reflection amplitude, frequency, and phase. We have implemented a method to invert directly for van Genuchten-Mualem parameters from time-lapse GPR data acquired during a pumping test. The forward model consists of simulating the dynamic water saturation response to drawdown, integrated with a model of GPR response based on the full analytic reflectivity solution. We use a gradient based, multi-parameter method to optimize for an effective GPR source function and three van Genuchten-Mualem parameters Ks, n, and α, where Ks is the saturated hydraulic conductivity and n and α are fit parameters that control the shape of the soil-moisture retention curve. For field data acquired at the Boise Hydrogeophysical Research Site, this approach provided a hydrologic parameter set that substantially improved the fit to in-situ soil moisture curves over an initial “best-guess” model.
机译:在地下水位下降过程中,水力传导率与水饱和区(SZ)上方距离之间的差异关系导致排水和过渡区伸展的延迟。来自SZ的探地雷达(GPR)反射取决于过渡区的宽度和形状,饱和度曲线的动态变化会改变GPR反射幅度,频率和相位。我们已经实施了一种方法,可以从抽水测试期间获取的延时GPR数据中直接对van Genuchten-Mualem参数进行反演。前向模型包括模拟动态水饱和度对垂降的响应,并与基于完整解析反射率解决方案的GPR响应模型集成。我们使用基于梯度的多参数方法来优化有效的GPR源函数和三个van Genuchten-Mualem参数Ks,n和α,其中Ks是饱和水力传导率,而n和α是控制形状的合适参数水分保持曲线的变化。对于在博伊西水文地球物理研究站点获得的现场数据,这种方法提供了一个水文参数集,与初始的“最佳猜测”模型相比,该参数集大大改善了对原位土壤水分曲线的拟合度。

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