Flow-induced buckling of elastic microfilaments with non-uniform bending stiffness

T.-h. Nguyen, Harishankar Manikantan
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Abstract

Buckling plays a critical role in the transport and dynamics of elastic microfilaments in Stokesian fluids. However, previous work has only considered filaments with homogeneous structural properties. Filament backbone stiffness can be non-uniform in many biological systems like microtubules, where the association and disassociation of proteins can lead to spatial and temporal changes into structure. The consequences of such non-uniformities in the configurational stability and transport of these fibers are yet unknown. Here, we use slender-body theory and Euler-Bernoulli elasticity coupled with various non-uniform bending rigidity profiles to quantify this buckling instability using linear stability analysis and Brownian simulations. In shear flows, we observe more pronounced buckling in areas of reduced rigidity in our simulations. These areas of marked deformations give rise to differences in the particle extra stress, indicating a non-trivial rheological response due to the presence of these filaments. The fundamental mode shapes arising from each rigidity profile are consistent with the predictions from our linear stability analysis. Collectively, these results suggest that non-uniform bending rigidity can drastically alter fluid-structure interactions in physiologically relevant settings, providing a foundation to elucidate the complex interplay between hydrodynamics and the structural properties of biopolymers.
非均匀弯曲刚度弹性微丝的流致屈曲
屈曲在斯托克流体中弹性微丝的传输和动力学中起着至关重要的作用。然而,以前的工作只考虑具有均匀结构特性的细丝。在微管等许多生物系统中,纤维骨架的刚度可能是不均匀的,其中蛋白质的结合和解耦可以导致结构的空间和时间变化。这种不均匀性在这些纤维的构型稳定性和传输方面的后果尚不清楚。在这里,我们使用细长体理论和欧拉-伯努利弹性耦合各种非均匀弯曲刚度剖面,通过线性稳定性分析和布朗模拟来量化这种屈曲不稳定性。在剪切流动中,我们在模拟中观察到刚度降低的区域更明显的屈曲。这些明显变形的区域引起颗粒额外应力的差异,表明由于这些细丝的存在而产生的非微不足道的流变响应。从每个刚度剖面产生的基本模态振型与我们的线性稳定性分析的预测一致。总的来说,这些结果表明,在生理相关环境下,非均匀弯曲刚度可以极大地改变流体-结构相互作用,为阐明流体动力学与生物聚合物结构特性之间的复杂相互作用提供了基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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