Influence of asperities on fluid and thermal flow in a fracture: a coupled Lattice Boltzmann study
Am\'elie Neuville (UIO, AMKS), Eirik Grude Flekk{\o}y (UIO, AMKS),, Renaud Toussaint (IPGS)

TL;DR
This study uses a coupled lattice Boltzmann method to analyze how a sharp asperity in a fracture affects fluid flow and heat transfer, highlighting the importance of 3D effects and rock cooling in thermal exchange efficiency.
Contribution
It introduces a 3D coupled lattice Boltzmann simulation to evaluate the impact of asperities on hydro-thermal flow, surpassing traditional lubrication approximations.
Findings
3D effects significantly alter flow and heat transfer predictions.
Neglecting asperities leads to overestimating heat exchange efficiency.
Temperature evolution shows complex, non-monotonic behavior.
Abstract
The characteristics of the hydro-thermal flow which occurs when a cold fluid is injected into a hot fractured bedrock depend on the morphology of the fracture. We consider a sharp triangular asperity, invariant in one direction, perturbing an otherwise flat fracture. We investigate its influence on the macroscopic hydraulic transmissivity and heat transfer efficiency, at fixed low Reynolds number. In this study, numerical simulations are done with a coupled lattice Boltzmann method that solves both the complete Navier-Stokes and advection-diffusion equations in three dimensions. The results are compared with those obtained under lubrication approximations which rely on many hypotheses and neglect the three-dimensional (3D) effects. The lubrication results are obtained by analytically solving the Stokes equation and a two-dimensional (integrated over the thickness) advection-diffusion…
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