We propose a general framework for upscaling dispersion in porous media. A key challenge of the upscaling procedure is to relate the temporal evolution of spreading to the small scale velocity field properties. The representation of the Lagrangian velocity transition process as a Markovian process in space provides a simple way to quantify complex correlation properties, i.e. non-Gaussian velocity distributions. The resulting effective transport model is a correlated CTRW. We use this framework to upscale pore scale dispersion for a periodic pore geometry. The correlated CTRW model is defined by the transit time distribution across one pore and the transition probability density quantifying the correlation between successive transit times. The latter is of central importance since it accounts for incomplete mixing at the pore throats. The predictions of the correlated CTRW model are in good agreement with the pore scale simulations over the pre-asymptotic and asymptotic regimes. We investigate the representation of this effective dispersion model in phase space (position, velocity) in a form similar to a Boltzmann transport equation.
Revised: February 25, 2016 |
Published: December 29, 2011
Citation
Le Borgne T., D. Bolster, M. Dentz, P. de Anna, and A.M. Tartakovsky. 2011.Effective Pore-Scale Dispersion Upscaling with the Correlated Continuous Time Random Walk Approach.Water Resources Research 47, no. 12:Article No. W12538.PNNL-SA-78847.doi:10.1029/2011WR010457