Puyguiraud Alexandre, Gouze Philippe, Dentz Marco
Spanish National Research Council (IDAEA-CSIC), 08034, Barcelona, Spain and Geoscience Montpellier, CNRS, Université de Montpellier, 34090, Montpellier, France.
Phys Rev Lett. 2021 Apr 23;126(16):164501. doi: 10.1103/PhysRevLett.126.164501.
We study the interplay of pore-scale mixing and network-scale advection through heterogeneous porous media, and its role for the evolution and asymptotic behavior of hydrodynamic dispersion. In a Lagrangian framework, we identify three fundamental mechanisms of pore-scale mixing that determine large scale particle motion, namely, the smoothing of intrapore velocity contrasts, the increase of the tortuosity of particle paths, and the setting of a maximum time for particle transitions. Based on these mechanisms, we derive a theory that predicts anomalous and normal hydrodynamic dispersion in terms of the characteristic pore length, Eulerian velocity distribution, and Péclet number.
我们研究了通过非均质多孔介质的孔隙尺度混合与网络尺度平流之间的相互作用,以及其在水动力弥散演化和渐近行为中的作用。在拉格朗日框架下,我们确定了决定大规模粒子运动的三种孔隙尺度混合基本机制,即孔隙内速度差异的平滑、粒子路径曲折度的增加以及粒子跃迁的最大时间设定。基于这些机制,我们推导出一种理论,该理论根据特征孔隙长度、欧拉速度分布和佩克莱数预测反常和正常的水动力弥散。