Emergence of Unstable Focused Flow Induced by Variable‐Density Flows in Vertical Fractures

Author:

Cao Hongfan12,Yoon Seonkyoo1ORCID,Xu Zhenyu3,Pyrak‐Nolte Laura J.3ORCID,Bresciani Etienne4ORCID,Kang Peter K.12ORCID

Affiliation:

1. Department of Earth and Environmental Sciences University of Minnesota Twin Cities MN USA

2. Saint Anthony Falls Laboratory, University of Minnesota Minneapolis MN USA

3. Department of Physics and Astronomy Purdue University West Lafayette IN USA

4. University of O’Higgins Rancagua Chile

Abstract

AbstractFluids with different densities often coexist in subsurface fractures and lead to variable‐density flows that control subsurface processes such as seawater intrusion, contaminant transport, and geologic carbon sequestration. In nature, fractures have dip angles relative to gravity, and density effects are maximized in vertical fractures. However, most studies on flow and transport through fractures are often limited to horizontal fractures. Here, we study the mixing and transport of variable‐density fluids in vertical fractures by combining three‐dimensional (3D) pore‐scale numerical simulations and visual laboratory experiments. Two miscible fluids with different densities are injected through two inlets at the bottom of a fracture and exit from an outlet at the top of the fracture. Laboratory experiments show the emergence of an unstable focused flow path, which we term a “runlet.” We successfully reproduce the unstable runlet using 3D numerical simulations and elucidate the underlying mechanisms triggering the runlet. Dimensionless number analysis shows that the runlet instability arises due to the Rayleigh‐Taylor instability (RTI), and flow topology analysis is applied to identify 3D vortices that are caused by the RTI. Even under laminar flow regimes, fluid inertia is shown to control the runlet instability by affecting the size and movement of vortices. Finally, we confirm the emergence of a runlet in rough‐walled fractures. Since a runlet dramatically affects fluid distribution, residence time, and mixing, the findings in this study have direct implications for the management of groundwater resources and subsurface applications.

Funder

National Science Foundation

U.S. Department of Energy

Publisher

American Geophysical Union (AGU)

Subject

Water Science and Technology

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