Models of groundwater flow in statistically homogeneous porous formations
- 1 February 1979
- journal article
- Published by American Geophysical Union (AGU) in Water Resources Research
- Vol. 15 (1) , 47-63
- https://doi.org/10.1029/wr015i001p00047
Abstract
Most natural porous formations display significant variations in space of permeability K and storativity S. Such formations are regarded as random structures characterized by the permeability frequency distribution and its autocorrelation. With the aid of three basic length scales (l, microscale; £, integral scale of K autocorrelation; and L, length scale of space change of average K) a classification of aquifers is suggested. A similar classification is proposed for the flow regimes. The study is limited to statistically homogeneous or slowly varying formations (£ ≪ L) and to uniform or slowly varying (in space and time) flows. In the section dealing with steady flows, effective permeability, as well as variances of head gradient, specific discharge, and head, is computed for one‐, two‐, and three‐dimensional flows. Bounds and an estimate of the effective permeability in terms of a log normal permeability distribution are given. The computations are based on physical, simplified models of formation structure. It is shown that the head variance is grossly overestimated for one‐dimensional flow through blocks ‘in series,’ and the same is true for specific discharge for layers ‘in parallel.’ The two‐ and three‐dimensional variances are much lower and are close to each other. The unsteady flow is analyzed with the aid of the relaxation time needed for blocks of different K, S to adapt to the environment. For flows which change slowly and uniformly the effective permeability is that derived for steady uniform flows, and the effective storativity is equal to the S arithmetic mean. The head gradient variance computed with the aid of some physical models is compared with that of steady uniform flow, and it is shown that for sufficiently slow time changes the flow field can be considered momentarily uniform. The various results are employed to estimate effective properties, as well as fluctuations of the head and specific discharge, in aquifers, with possible applications to prediction, the inverse problem, and hydrodynamic dispersion.This publication has 8 references indexed in Scilit:
- On the elastic moduli of some heterogeneous materialsPublished by Elsevier ,2002
- Stochastic analysis of spatial variability in subsurface flows: 2. Evaluation and applicationWater Resources Research, 1978
- Stochastic analysis of spatial variability in subsurface flows: 1. Comparison of one‐ and three‐dimensional flowsWater Resources Research, 1978
- Simulation of groundwater flow and mass transport under uncertaintyAdvances in Water Resources, 1977
- A stochastic‐conceptual analysis of one‐dimensional groundwater flow in nonuniform homogeneous mediaWater Resources Research, 1975
- Statistical Continuum TheoriesAmerican Journal of Physics, 1968
- A Variational Approach to the Theory of the Effective Magnetic Permeability of Multiphase MaterialsJournal of Applied Physics, 1962
- Flow in Heterogeneous Porous MediaSociety of Petroleum Engineers Journal, 1961