Abstract
We explore the motion of an axisymmetric gravity current in an anisotropic porous medium in which the horizontal permeability is larger than the vertical permeability. It is well known that the classical axisymmetric gravity current supplied by a constant point source of fluid has an unphysical singularity near the origin. We address this by considering a pressure-dominated region near the origin which allows for vertical flow from the source, such that the current remains of finite depth, whilst beyond this region the flow is gravity dominated. At early times the inner pressure-driven region controls the spreading of the current, but at late times the inner region occupies a progressively smaller fraction of the current such that the radius increases as
${\sim }t^{3/7}$
, while the depth near the origin increases approximately as
${\sim }t^{1/7}$
. The presence of anisotropy highlights this phenomenon, since the vertical permeability maintains an effect on the flow at late times through the pressure-driven flow near the origin. Using these results we provide some quantitative insights into the dominant dynamics which controls CO
$_2$
migration through permeable aquifers, as occurs in the context of carbon capture and storage.
Funder
Natural Environment Research Council
Publisher
Cambridge University Press (CUP)
Subject
Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,Applied Mathematics
Cited by
2 articles.
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1. Anisotropy distorts the spreading of a fixed volume porous gravity current;Proceedings of the Royal Society A: Mathematical, Physical and Engineering Sciences;2023-11
2. Gravity-driven flow in a cross-bedded porous rock;Journal of Fluid Mechanics;2023-10-23