Regularized Stokeslets lines suitable for slender bodies in viscous flow
Boan Zhao, Lyndon Koens

TL;DR
This paper investigates the effectiveness of regularized Stokeslets in modeling flow around slender bodies, identifying optimal regularization parameters and proposing a new compactly supported blob for improved near-field flow simulation.
Contribution
It demonstrates how to choose the regularization parameter proportional to the body's radius and introduces a new compactly supported blob for better near-field accuracy.
Findings
Flow far from the body is well captured with regularization proportional to radius.
Common regularizations fail to replicate near-field flow and boundary conditions.
A new compactly supported blob improves near-field flow simulation.
Abstract
Slender-body approximations have been successfully used to explain many phenomena in low-Reynolds number fluid mechanics. These approximations typically use a line of singularity solutions to represent the flow. These singularities can be difficult to implement numerically because they diverge at their origin. Hence people have regularized these singularities to overcome this issue. This regularization blurs the force over a small blob therefore removing the divergent behaviour. However it is unclear how best to regularize the singularities to minimize errors. In this paper we investigate if a line of regularized Stokeslets can describe the flow around a slender body. This is achieved by comparing the asymptotic behaviour of the flow from the line of regularized Stokeslets with the results from slender-body theory. We find that the flow far from the body can be captured if the…
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Taxonomy
TopicsMicro and Nano Robotics · Lattice Boltzmann Simulation Studies · Fluid Dynamics and Vibration Analysis
