Rate-Dependent Mechanical Behaviour of Semilunar Valves Under Biaxial Deformation: From Quasi-Static to Physiological Loading Rates

A. Anssari-Benam, Y. Tseng, Gerhard A. Holzapfel, A. Bucchi
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引用次数: 3

Abstract

In this study we investigate the rate-dependency of the mechanical behaviour of semilunar heart valves under biaxial deformation, from quasi-static to physiological loading rates. This work extends and complements our previous undertaking, where the rate-dependency in the mechanical behaviour of semilunar valve specimens was documented in sub-physiological rate domains (Acta Biomater. 2019; https://doi.org/10.1016/j.actbio.2019.02.008). For the first time we demonstrate herein that the stress-stretch curves obtained from specimens under physiological rates too are markedly different to those at sufficiently lower rates and at quasi-static conditions. The results importantly underline that the mechanical behaviour of semilunar heart valves is rate dependent, and the physiological mechanical behaviour of the valves may not be correctly obtained via material characterisation tests at arbitrary low deformation rates. Presented results in this work provide an inclusive dataset for material characterisation and modelling of semilunar heart valves across a 10,000 fold deformation rate, both under equi-biaxial and 1:3 ratio deformation rates. The important application of these results is to inform the development of appropriate mechanical testing protocols, as well as devising new models, for suitable determination of the rate-dependent constitutive mechanical behaviour of the semilunar valves.
双轴变形下半月瓣的速率相关力学行为:从准静态到生理加载速率
在这项研究中,我们研究了双轴变形下半月心瓣膜的机械行为的速率依赖性,从准静态到生理加载速率。这项工作扩展并补充了我们之前的工作,其中在亚生理速率域中记录了半月瓣标本机械行为的速率依赖性(Acta Biomater. 2019;https://doi.org/10.1016/j.actbio.2019.02.008)。本文首次证明了在生理速率下得到的应力-拉伸曲线与在足够低的速率和准静态条件下得到的应力-拉伸曲线也有显著不同。结果重要地强调,半月心瓣膜的力学行为是速率依赖的,在任意低变形率下,瓣膜的生理力学行为可能无法通过材料表征试验正确获得。在这项工作中提出的结果提供了一个包容性的数据集,用于在10,000倍变形率下的半月形心脏瓣膜的材料表征和建模,包括在等双轴和1:3比变形率下。这些结果的重要应用是告知适当的机械测试方案的发展,以及设计新的模型,以适当地确定半月形阀的速率相关的本构力学行为。
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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