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首页> 外文期刊>Journal of Biomechanics >Wave propagation in protein microtubules modeled as orthotropic elastic shells including transverse shear deformations.
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Wave propagation in protein microtubules modeled as orthotropic elastic shells including transverse shear deformations.

机译:在蛋白质微管中的波传播被建模为正交各向异性弹性壳,包括横向剪切变形。

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摘要

Wave propagation along the microtubules is one of the issues of major concern in various microtubule cellular functions. In this study, the general wave propagation behavior in protein microtubules is investigated based on a first-order shear deformation shell theory for orthotropic materials, with particular emphasis on the role of strongly anisotropic elastic properties of microtubules. According to experimental observation, the first-order shear deformation theory is used for the modeling of microtubule walls. A general displacement representation is introduced and a type of coupled polynomial eigenvalue problem is developed. Numerical examples describe the effects of shear deformation and rotary inertia on wave velocities in orthotropic microtubules. Finally, the influences of the microtubule shear modulus, axial external force, effective thickness and material temperature dependency on wave velocities along the microtubule protofilaments, helical pathway and radial directions are elucidated. Most results presented in the present investigation have been absent from the literature for the wave propagation in microtubules.
机译:沿微管的波传播是各种微管细胞功能中主要关注的问题之一。在这项研究中,基于正交异性材料的一阶剪切变形壳理论,研究了蛋白质微管中的一般波传播行为,特别强调了微管的强各向异性弹性特性的作用。根据实验观察,一阶剪切变形理论被用于微管壁的建模。介绍了一般位移表示,并发展了一种耦合多项式特征值问题。数值示例描述了剪切变形和旋转惯性对正交各向异性微管中波速的影响。最后,阐明了微管剪切模量,轴向外力,有效厚度和材料温度对沿微管原丝,螺旋路径和径向方向的波速的影响。在本研究中提出的大多数结果在微管中的波传播的文献中都没有。

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