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首页> 外文期刊>Journal of Hydrology >On equivalent hydraulic conductivity for oscillation-free solutions of Richard's equation
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On equivalent hydraulic conductivity for oscillation-free solutions of Richard's equation

机译:关于Richard方程的无振动解的等效水力传导率

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The estimation of numerical equivalent conductivity remains a crucial issue for the accuracy and stability of the solution of the non-linear Richards' equation (RE) when modeling variably saturated flow. In the literature, it appears that this topic has been typically considered for one-dimensional discretization despite the growing interest in multidimensional problems. After reviewing different possibilities of equivalent hydraulic conductivity estimation, we evaluate their ability to yield monotonic results. Hence, the monotonicity analysis provided by Forsyth and Kropinski (1997) has been generalized for the different equivalent conductivity formulations. On one hand, the upstream mean is unconditionally stable but is also known to overestimate the conductivity. On the other hand, other formulations, including Darcian mean approximations, can be accurate and straightforward to adapt in multidimensional codes but do not always provide monotonic solutions of the RE. An adaptive algorithm is presented, which adapts the conductivity in function of the monotonicity condition, i.e., a variable criterion based on the conductivity at nodal points, the conductivity averaging technique and the piezometric head variation. The proposed numerical method can be implemented in existing multidimensional codes. Numerical investigations in steady state and time-varying conditions, 1D and 2D cases, and homogeneous and heterogeneous media confirm the interest in the proposed algorithm.
机译:当对可变饱和流进行建模时,数值等效电导率的估计仍然是非线性理查兹方程(RE)解的准确性和稳定性的关键问题。在文献中,尽管对多维问题的兴趣日益浓厚,但似乎通常将这一主题用于一维离散化。在回顾了等效水力传导率估算的不同可能性之后,我们评估了它们产生单调结果的能力。因此,由Forsyth和Kropinski(1997)提供的单调性分析已被推广用于不同的等效电导率公式。一方面,上游平均值是无条件稳定的,但也已知会高估电导率。另一方面,其他公式(包括Darcian均值逼近)可以准确,直接地适应多维代码,但并不总是提供RE的单调解。提出了一种自适应算法,该算法根据单调性条件适应电导率,即基于节点的电导率,电导率平均技术和测压头变化的可变准则。所提出的数值方法可以在现有的多维代码中实现。在稳态和时变条件,一维和二维情况下以及均质和非均质介质中的数值研究证实了该算法的重要性。

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