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A swimming bacterium in a two-fluid model of a polymer solution

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arxiv 2404.03540 v1 pith:W4ILPREF submitted 2024-04-04 physics.flu-dyn cond-mat.soft

classification physics.flu-dyncond-mat.soft
keywords polymertwo-fluidbundlefluidsbodydifferentflagellarmedium
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abstract

We analyse the motion of a flagellated bacterium in a two-fluid medium using slender body theory. The two-fluid model is useful for describing a body moving through a complex fluid with a microstructure whose length scale is comparable to the characteristic scale of the body. This is true for bacterial motion in biological fluids (entangled polymer solutions), where the entanglement results in a porous microstructure with typical pore diameters comparable to or larger than the flagellar bundle diameter but smaller than the diameter of the bacterial head. Thus the polymer and solvent satisfy different boundary conditions on the flagellar bundle and move with different velocities close to it. This gives rise to a screening length $L_B$ within which the fluids exchange momentum and the relative velocity between the two fluids decays. In this work, both the solvent and polymer of the two-fluid medium are modeled as Newtonian fluids with different viscosities $\mu_s$ and $\mu_p$ (viscosity ratio $\lambda = \mu_p/\mu_s$), thereby capturing the effects solely introduced by the microstructure of the complex fluid. From our calculations, we observe an increased drag anisotropy for a rigid, slender flagellar bundle moving through this two-fluid medium, resulting in an enhanced swimming velocity of the organism. The results are sensitive to the interaction between the bundle and the polymer and we discuss two physical scenarios corresponding to two types of interaction. Our model provides an explanation for the experimentally observed enhancement of swimming velocity of bacteria in entangled polymer solutions and motivates further experimental investigations.

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  1. Helical locomotion in dilute suspensions

    physics.flu-dyn 2024-11 conditional novelty 7.0 of 10

    Rotating helices in dilute suspensions of neutrally buoyant spheres show increased drag anisotropy and up to 60% faster swimming at fixed rotation speed, explained by a stresslet-based theory of force-free particles.

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