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Impact of velocity correlation and distribution on transport in fractured media: Field evidence and theoretical model

机译:速度相关性和分布对裂隙介质运移的影响:现场证据和理论模型

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Flow and transport through fractured geologic media often leads to anomalous (non-Fickian) transport behavior, the origin of which remains a matter of debate: whether it arises from variability in fracture permeability (velocity distribution), connectedness in the flow paths through fractures (velocity correlation), or interaction between fractures and matrix. Here we show that this uncertainty of distribution- versus correlation-controlled transport can be resolved by combining convergent and push-pull tracer tests because flow reversibility is strongly dependent on velocity correlation, whereas late-time scaling of breakthrough curves is mainly controlled by velocity distribution. We build on this insight, and propose a Lagrangian statistical model that takes the form of a continuous time random walk (CTRW) with correlated particle velocities. In this framework, velocity distribution and velocity correlation are quantified by a Markov process of particle transition times that is characterized by a distribution function and a transition probability. Our transport model accurately captures the anomalous behavior in the breakthrough curves for both push-pull and convergent flow geometries, with the same set of parameters. Thus, the proposed correlated CTRW modeling approach provides a simple yet powerful framework for characterizing the impact of velocity distribution and correlation on transport in fractured media.
机译:通过裂缝性地质介质的流动和运输通常会导致异常(非菲克式)运输行为,其起源仍然是一个有争议的问题:它是否是由于裂缝渗透率(速度分布)的变化,通过裂缝的流动路径的连通性引起的(速度相关性)或裂缝与基质之间的相互作用。在这里我们表明,可以通过结合收敛和推挽示踪剂测试来解决分布与相关控制的运输的不确定性,因为流动可逆性强烈取决于速度相关性,而突破曲线的后期缩放主要由速度分布控制。我们基于此洞察力,提出了一种拉格朗日统计模型,该模型采用具有相关粒子速度的连续时间随机游走(CTRW)的形式。在此框架中,速度分布和速度相关性是通过粒子转移时间的马尔可夫过程来量化的,该过程的特征在于分布函数和转移概率。我们的运输模型使用相同的参数集,准确地捕获了推拉式和会聚式流动几何形状的突破曲线中的异常行为。因此,所提出的相关CTRW建模方法提供了一个简单而强大的框架,用于表征速度分布和相关性对裂缝性介质传输的影响。

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