The hydrodynamics of a twisting, bending, inextensible fiber in Stokes flow
Ondrej Maxian, Brennan Sprinkle, Charles S. Peskin, Aleksandar Donev

TL;DR
This paper introduces a new numerical method for simulating inextensible fibers with twist elasticity in Stokes flow, comparing models, and analyzing fiber dynamics relevant to microorganisms and cell structures.
Contribution
The paper develops a novel spectral numerical method for the Euler model of twisted fibers, including a new slender-body quadrature and mobility operator evaluation.
Findings
The mobility operator avoids unphysical negative eigenvalues.
The method ensures strong convergence of fiber velocity.
Twist elasticity has negligible effect on fiber relaxation dynamics.
Abstract
In swimming microorganisms and the cell cytoskeleton, inextensible fibers resist bending and twisting, and interact with the surrounding fluid to cause or resist large-scale fluid motion. In this paper, we develop a novel numerical method for the simulation of cylindrical fibers by extending our previous work on inextensible bending fibers [Maxian et al., Phys. Rev. Fluids 6 (1), 014102] to fibers with twist elasticity. In our "Euler" model, twist is a scalar function that measures the deviation of the fiber cross section relative to a twist-free frame, the fiber exerts only torque parallel to the centerline on the fluid, and the perpendicular components of the rotational fluid velocity are discarded in favor of the translational velocity. In the first part of this paper, we justify this model by comparing it to another commonly-used "Kirchhoff" formulation where the fiber exerts both…
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Taxonomy
TopicsMicro and Nano Robotics · Lattice Boltzmann Simulation Studies · Biomimetic flight and propulsion mechanisms
