Gas Compression Systematically Delays the Onset of Viscous Fingering
Liam C Morrow1, Callum Cuttle1, Christopher W MacMinn1
1Department of Engineering Science, University of Oxford, Oxford OX1 3PJ, United Kingdom.
Abstract:
Using gas to drive liquid from a Hele-Shaw cell leads to classical viscous fingering. Strategies for suppressing fingering have received substantial attention. For steady injection of an incompressible gas, the intensity of fingering is controlled by the capillary number Ca. Here, we show that gas compression leads to an unsteady injection rate controlled primarily by a dimensionless compressibility number C. Increasing C systematically delays the onset of fingering at high Ca, highlighting compressibility as an overlooked but fundamental aspect of gas-driven fingering.
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