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纤维取向和卷曲程度可能会控制生物组织的负泊松比效应。

Fiber orientation and crimp level might control the auxetic effect of biological tissues.

作者信息

Piao C, Le Floc'h S, Cañadas P, Wagner-Kocher C, Royer P

机构信息

LMGC, Univ. Montpellier, CNRS, Montpellier, France.

LMGC, Univ. Montpellier, CNRS, Montpellier, France.

出版信息

J Mech Behav Biomed Mater. 2023 Nov;147:106098. doi: 10.1016/j.jmbbm.2023.106098. Epub 2023 Sep 1.

Abstract

We propose an analytical micromechanical model for studying the lamellar-composite-like structure of fibrous soft tissue. The tissue under consideration is made up of several lamellae, and is designed to resemble the annulus fibrosus (AF) tissue or media layer of arterial tissue, for example. The collagen fibers are arranged in parallel in each lamella and the fiber orientation differs from one lamella to its neighbors. The parallel fibers in each lamella of AF tissue, for example, have been observed to have a crimped microstructure. The proposed model incorporates this quality, considering fiber waviness as a sinusoidal shape and taking into account the fiber dispersion in different layers, where both fiber and matrix are considered as solid phases. We find that collagen-fiber waviness and layer orientation have a significant influence on Poisson's ratio. The effective Poisson's ratio predicted by the proposed model demonstrates that the crimped collagen fiber microstructure might weaken the auxetic effect of fibrous soft tissue, which might explain why, as the literature suggests, the auxetic behavior is more difficult to observe than large Poisson's ratios. As opposed to the many studies that use the well-known hyperelastic fiber-based constitutive model, in which out-of-plane expansion is often observed, the present work explains the auxetic response found in modeling and in experimental data from the perspective of collagen fiber microstructure.

摘要

我们提出了一种分析性微机械模型,用于研究纤维软组织的层状复合结构。所考虑的组织由几个薄片组成,例如设计成类似于动脉组织的纤维环(AF)组织或中膜层。胶原纤维在每个薄片中平行排列,并且纤维取向与其相邻薄片不同。例如,已观察到AF组织每个薄片中的平行纤维具有卷曲的微观结构。所提出的模型纳入了这种特性,将纤维波纹视为正弦形状,并考虑了不同层中的纤维分散,其中纤维和基质均被视为固相。我们发现胶原纤维波纹和层取向对泊松比有显著影响。所提出的模型预测的有效泊松比表明,卷曲的胶原纤维微观结构可能会削弱纤维软组织的负泊松比效应,这可能解释了为什么如文献所表明的那样,负泊松比行为比大泊松比更难观察到。与许多使用著名的基于超弹性纤维的本构模型的研究不同,在这些研究中经常观察到平面外膨胀,本工作从胶原纤维微观结构的角度解释了在建模和实验数据中发现的负泊松比响应。

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