Analysis of Boundary Slip in a Flow with an Oscillating Wall
Joseph John Thalakkottor, Kamran Mohseni

TL;DR
This paper uses molecular dynamics and mathematical modeling to analyze how unsteady flow and wall oscillation influence slip at the fluid-solid boundary, revealing new dependencies on acceleration and shear rate gradients.
Contribution
It introduces a novel unsteady slip model incorporating acceleration effects and identifies a universal curve for slip boundary conditions based on shear rate and its gradient.
Findings
Slip increases in unsteady flow below critical shear rate.
Slip depends on shear rate and acceleration, not just shear rate.
Hysteresis observed due to unsteady inertial forces.
Abstract
Molecular dynamic (MD) simulation is used to study slip at the fluid-solid boundary in an unsteady flow based on the Stokes second problem. An increase in slip is observed in comparison to the steady flow for shear rates below the critical shear rate of the corresponding steady flow. This increased slip is attributed to fluid inertial forces not represented in a steady flow. An unsteady mathematical model for slip is established, which estimates the increment in slip at the boundary. The model shows that slip is also dependent on acceleration in addition to the shear rate of fluid at the wall. By writing acceleration in terms of shear rate, it is shown that slip at the wall in unsteady flows is governed by the gradient of shear rate and shear rate of the fluid. Non-dimensionalizing the model gives a universal curve which can be used to find the slip boundary condition at the fluid-solid…
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