Characterization of the crossover from capillary invasion to viscous fingering to fracturing during drainage in a vertical 2D porous medium

Amina Islam, Sylvie Chevalier, Imen Ben Salem, Yves Bernabe, Ruben Juanes, Mohamed Sassi

Research output: Contribution to journalArticlepeer-review

52 Scopus citations

Abstract

We experimentally studied the displacement of a viscous wetting fluid (water) by an inviscid non-wetting fluid (air) injected at the bottom of a vertical Hele-Shaw cell filled with glass microbeads. In order to cover a wide parameter space, the permeability of the porous medium was varied by using different bead size ranges and diverse air flow rates were generated by means of a syringe pump. A LED light table was used to back illuminate the experimental cell, allowing a high speed camera to capture images of the drainage process at equal time intervals. The invasion occurred in intermittent bursts. Image processing of the bursts and fractal analysis showed successive transitions from capillary invasion to viscous fingering to fracturing during the same experiment, dependent on the medium permeability, the air injection flow rate, and the vertical position in the cell. The interplay between the capillary, viscous and gravity forces determines the nature of the invasion pattern and the transitions, from capillary invasion to viscous fingering with decreasing fluid pressure on one hand and from viscous fingering to fracturing with decreasing effective overburden pressure on the other hand.

Original languageBritish English
Pages (from-to)279-291
Number of pages13
JournalInternational Journal of Multiphase Flow
Volume58
DOIs
StatePublished - Jan 2014

Keywords

  • Capillary number
  • CO geological storage
  • Drainage visualization
  • Fractal analysis
  • Gravity effects
  • Transitions in drainage patterns

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