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Oscillatory flows and capillary effects in partially saturated and unsaturated porous media: applications to beach hydrodynamics

机译:部分饱和和不饱和多孔介质中的振荡流动和毛细管效应:在海滩流体动力学中的应用

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摘要

In this thesis, we study hydrodynamic oscillations in porous bodies (unsaturated or partially saturated), due to tidal oscillations of water levels in adjacent open water bodies. The focus is on beach hydrodynamics, but potential applications concern, more generally, time varying and oscillating water levels in coupled systems involving subsurface / open water interactions (natural and artificial beaches, harbor dykes, earth dams, river banks, estuaries). The tidal forcing of groundwater is represented and modeled (both experimentally and numerically) by quasi-static oscillations of water levels in an open water reservoir connected to the porous medium. Specifically, we focus on vertical water movements forced by an oscillating pressure imposed at the bottom of a soil column. Experimentally, a rotating tide machine is used to achieve this forcing. Overall, we use three types of methods (experimental, numerical, analytical) to study the vertical motion of the groundwater table and the unsaturated flow above it, taking into account the vertical head drop in the saturated zone as well as capillary pressure gradients in the unsaturated zone. Laboratory experiments are conducted on vertical sand columns, with a tide machine to force water table oscillations, and with porous cup tensiometers to measure both positive pressures and suctions along the column (among other measurement methods). Numerical simulations of oscillatory water flow are implemented with the BIGFLOW 3D code (implicit finite volumes, with conjugate gradients for the matrix solver and modified Picard iterations for the nonlinear problem). In addition, an automatic calibration based on a genetic optimization algorithm is implemented for a given tidal frequency, to obtain the hydrodynamic parameters of the experimental soil. Calibrated simulations are then compared to experimental results for other non calibrated frequencies. Finally, a family of quasi-analytical multi-front solutions is developed for the tidal oscillation problem, as an extension of the Green-Ampt piston flow approximation, leading to nonlinear, non-autonomous systems of Ordinary Differential Equations with initial conditions (dynamical systems). The multi-front solutions are tested by comparing them with a refined finite volume solution of the Richards equation. Multi-front solutions are at least 100 times faster, and the match is quite good even for a loamy soil with strong capillary effects (the number of fronts required is small, no more than N10 to 20 at most). A large set of multi-front simulations is then produced in order to analyze water table and flux fluctuations for a broad range of forcing frequencies. The results, analyzed in terms of means and amplitudes of hydrodynamic variables, indicate the existence, for each soil, of a characteristic frequency separating low frequency / high frequency flow regimes in the porous system.
机译:在本文中,我们研究了由于邻近开放水体中水位的潮汐振荡而引起的多孔体(不饱和或部分饱和)中的水动力振荡。重点是海滩水动力,但潜在的应用更普遍地涉及时变和振荡水位,这些系统涉及地下/开放水域相互作用(天然和人工海滩,港口堤坝,土坝,河岸,河口)。地下水的潮汐强迫是通过与多孔介质相连的开放水库中水位的准静态振荡来表示和建模的(无论是实验上还是数字上)。具体来说,我们专注于由土壤柱底部施加的振荡压力推动的垂直水运动。实验上,使用旋转式潮汐机来实现这种强迫。总体而言,考虑到饱和区的垂直压降和地下水位的毛细压力梯度,我们使用三种方法(实验,数值,分析)研究地下水位的垂直运动及其上方的非饱和流。不饱和带。实验室实验是在垂直砂柱上进行的,使用一台潮汐仪使地下水位振荡,并使用多孔杯张力计测量沿柱的正压和负压(以及其他测量方法)。使用BIGFLOW 3D代码(隐式有限体积,对于矩阵求解器使用共轭梯度,对于非线性问题使用修改的Picard迭代)来实现振荡水流的数值模拟。此外,针对给定的潮汐频率,基于遗传优化算法进行自动校准,以获得实验土壤的水动力参数。然后将校准后的仿真与其他未校准频率的实验结果进行比较。最后,针对潮汐振荡问题,开发了一系列准解析多前沿解决方案,作为Green-Ampt活塞流逼近的扩展,从而导致了具有初始条件的非线性非自治微分方程组(动力系统)。 )。通过将其与Richards方程的精炼有限体积解决方案进行比较来测试多前沿解决方案。多前沿解决方案至少快100倍,并且即使对于具有强毛细作用的肥沃土壤(所需的前沿数量很小,最多不超过N10到20),匹配也非常好。然后产生大量的多前部模拟,以便分析各种强迫频率下的地下水位和通量波动。根据流体力学变量的平均值和幅度进行分析的结果表明,对于每种土壤,在多孔系统中均存在将低频/高频流态分开的特征频率。

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    Alastal Khalil;

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  • 年度 2012
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