Bundling of elastic filaments induced by hydrodynamic interactions
Yi Man, William Page, Robert J. Poole, Eric Lauga

TL;DR
This paper models the hydrodynamic-induced bundling of elastic filaments, revealing instabilities and transitions that mimic bacterial flagellar bundling, validated through experiments and analytical solutions.
Contribution
It introduces a minimal mathematical model capturing filament bundling dynamics driven by hydrodynamics and elasticity, with analytical and experimental validation.
Findings
Identification of two configuration instabilities: crossing and bundling.
Derivation of a local PDE governed by a single dimensionless Bundling number.
Experimental validation showing excellent agreement with theoretical predictions.
Abstract
Peritrichous bacteria swim in viscous fluids by rotating multiple helical flagellar filaments. As the bacterium swims forward, all its flagella rotate in synchrony behind the cell in a helical bundle. When the bacterium changes its direction, the flagellar filaments unbundle and reorient the cell for a short period of time before returning to their bundled state and resuming swimming. This rapid bundling and unbundling is, at its heart, a mechanical process whereby hydrodynamic interactions balance with elasticity to determine the time-varying deformation of the filaments. Inspired by this biophysical problem, we present in this paper what is perhaps the simplest model of bundling whereby two, or more, straight elastic filaments immersed in a viscous fluid rotate about their centreline, inducing rotational flows which tend to bend the filaments around each other. We derive an…
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