4.7 Article

Experimental characterization of shear-enhanced dispersion in porous media

Journal

ADVANCES IN WATER RESOURCES
Volume 170, Issue -, Pages -

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.advwatres.2022.104325

Keywords

Solute transport; Porous media; X-ray images; Shear flow; Hydrodynamic dispersion

Funding

  1. JSPS KAKENHI [17H00790]
  2. Cross the border! Tokyo -Tech pioneering doctoral research program.
  3. National Natural Science Foundation of China [52206085]
  4. InfoSyEnergy program

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This study investigates the dispersion behavior of contaminants under shear flow using an innovative experimental apparatus and X-ray technique. The results reveal that shear flow enhances the dispersion effect, and the dependence on shear rates and Pe is larger compared to uniform flow.
The shear flow generated by natural convection in porous media considerably influences the dispersion of contaminants in various geological formations. Previous studies have revealed that the dispersion coefficient depends on the Pe acute accent clet number (Pe), shear rate, and complex pore structures. In this study, the dispersion behavior of a NaI tracer cloud was investigated under different shear rates ranging from 0.001 to 0.04 s-1 and Pe ranging from 10 to 200 using an innovative experimental apparatus via an X-ray technique. In contrast to uniform flow, a considerably enhanced dispersion was observed in shear flow along the longitudinal direction, and spreading in the longitudinal and transverse directions grew with time as -t3 and -t, respectively. In the power-law regime, the dispersion behaviors in the transverse and longitudinal directions were strengthened by shear action, with a larger dependence of the power law on the shear rates and Pe compared with that in the uniform flow. The strengthened dispersion promoted the formation of a hyper-mixing state, which was evaluated using the temporal evolution of the maximum concentration of the tracer plume, dilution index, and scalar dissipation rate. The results indicate that the dispersion behavior in a two-dimensional shear flow is quantita-tively equivalent to that in a four-dimensional uniform-flow field. The findings of this study can provide a deeper understanding of the influence of shear flow on the hydrodynamic dispersion in porous media.

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