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Improved estimation of hydraulic conductivity by combining stochastically simulated hydrofacies with geophysical data

机译:通过将随机模拟的水相与地球物理数据相结合,改进了对水力传导率的估算

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Hydraulic conductivity is a major parameter affecting the output accuracy of groundwater flow and transport models. The most commonly used semi-empirical formula for estimating conductivity is Kozeny-Carman equation. However, this method alone does not work well with heterogeneous strata. Two important parameters, grain size and porosity, often show spatial variations at different scales. This study proposes a method for estimating conductivity distributions by combining a stochastic hydrofacies model with geophysical methods. The Markov chain model with transition probability matrix was adopted to re-construct structures of hydrofacies for deriving spatial deposit information. The geophysical and hydro-chemical data were used to estimate the porosity distribution through the Archie's law. Results show that the stochastic simulated hydrofacies model reflects the sedimentary features with an average model accuracy of 78% in comparison with borehole log data in the Chaobai alluvial fan. The estimated conductivity is reasonable and of the same order of magnitude of the outcomes of the pumping tests. The conductivity distribution is consistent with the sedimentary distributions. This study provides more reliable spatial distributions of the hydraulic parameters for further numerical modeling.
机译:水力传导率是影响地下水流量和运输模型输出精度的主要参数。估算电导率最常用的半经验公式是Kozeny-Carman方程。但是,仅此方法不适用于非均质层。晶粒大小和孔隙率这两个重要的参数通常显示出不同比例的空间变化。本研究提出了一种通过将随机水相模型与地球物理方法相结合来估算电导率分布的方法。采用具有转移概率矩阵的马尔可夫链模型重建水相结构,得到空间沉积信息。通过阿奇定律,利用地球物理和水化学数据估算了孔隙度分布。结果表明,与潮白冲积扇的测井资料相比,随机模拟水相模型能反映沉积特征,平均模型精度为78%。估计的电导率是合理的,并且与抽水测试的结果处于相同的数量级。电导率分布与沉积物分布一致。这项研究为进一步的数值模拟提供了更可靠的水力参数空间分布。

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