Analytical solution for an acoustic boundary layer around an oscillating rigid sphere
Evert Klaseboer, Qiang Sun, Derek Y. C. Chan

TL;DR
This paper derives an analytical solution for the acoustic boundary layer around an oscillating sphere in a compressible fluid, linking classical flow solutions and providing insights into acoustic streaming phenomena.
Contribution
It presents a novel analytical framework for the acoustic boundary layer around a harmonic oscillating sphere, incorporating compressibility and connecting to classical flow solutions.
Findings
Analytical solution for acoustic boundary layer around oscillating sphere.
Steady second order acoustic streaming flow derived.
Numerical exploration of wave number regimes.
Abstract
Analytical solutions in fluid dynamics can be used to elucidate the physics of complex flows and to serve as test cases for numerical models. In this work, we present the analytical solution for the acoustic boundary layer that develops around a rigid sphere executing small amplitude harmonic rectilinear motion in a compressible fluid. The mathematical framework that describes the primary flow is identical to that of wave propagation in linearly elastic solids, the difference being the appearance of complex instead of real valued wave numbers. The solution reverts to well-known classical solutions in special limits: the potential flow solution in the thin boundary layer limit, the oscillatory flat plate solution in the limit of large sphere radius and the Stokes flow solutions in the incompressible limit of infinite sound speed. As a companion analytical result, the steady second order…
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