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一种基于成分的韧带非线性粘弹性行为模型。

A constituent-based model for the nonlinear viscoelastic behavior of ligaments.

作者信息

Vena P, Gastaldi D, Contro R

机构信息

Department of Structural Engineering, Laboratory of Biological Structure Mechanics (LaBS), Politecnico di Milano, Milan, Italy.

出版信息

J Biomech Eng. 2006 Jun;128(3):449-57. doi: 10.1115/1.2187046.

Abstract

This paper presents a constitutive model for predicting the nonlinear viscoelastic behavior of soft biological tissues and in particular of ligaments. The constitutive law is a generalization of the well-known quasi-linear viscoelastic theory (QLV) in which the elastic response of the tissue and the time-dependent properties are independently modeled and combined into a convolution time integral. The elastic behavior, based on the definition of anisotropic strain energy function, is extended to the time-dependent regime by means of a suitably developed time discretization scheme. The time-dependent constitutive law is based on the postulate that a constituent-based relaxation behavior may be defined through two different stress relaxation functions: one for the isotropic matrix and one for the reinforcing (collagen) fibers. The constitutive parameters of the viscoelastic model have been estimated by curve fitting the stress relaxation experiments conducted on medial collateral ligaments (MCLs) taken from the literature, whereas the predictive capability of the model was assessed by simulating experimental tests different from those used for the parameter estimation. In particular, creep tests at different maximum stresses have been successfully simulated. The proposed nonlinear viscoelastic model is able to predict the time-dependent response of ligaments described in experimental works (Bonifasi-Lista et al., 2005, J. Orthopaed. Res., 23, pp. 67-76; Hingorani et al., 2004, Ann. Biomed. Eng., 32, pp. 306-312; Provenzano et al., 2001, Ann. Biomed. Eng., 29, pp. 908-214; Weiss et al., 2002, J. Biomech., 35, pp. 943-950). In particular, the nonlinear viscoelastic response which implies different relaxation rates for different applied strains, as well as different creep rates for different applied stresses and direction-dependent relaxation behavior, can be described.

摘要

本文提出了一种本构模型,用于预测软生物组织,特别是韧带的非线性粘弹性行为。本构定律是对著名的准线性粘弹性理论(QLV)的推广,在该理论中,组织的弹性响应和随时间变化的特性被独立建模,并组合成一个卷积时间积分。基于各向异性应变能函数的定义,弹性行为通过适当开发的时间离散化方案扩展到随时间变化的状态。随时间变化的本构定律基于这样一个假设,即可以通过两种不同的应力松弛函数来定义基于成分的松弛行为:一种用于各向同性基质,另一种用于增强(胶原)纤维。粘弹性模型的本构参数通过对从文献中获取的内侧副韧带(MCL)进行应力松弛实验的曲线拟合来估计,而模型的预测能力则通过模拟不同于用于参数估计的实验测试来评估。特别是,成功模拟了不同最大应力下的蠕变试验。所提出的非线性粘弹性模型能够预测实验研究(博尼法西 - 利斯塔等人,2005年,《矫形外科学研究杂志》,第23卷,第67 - 76页;欣戈拉尼等人,2004年,《生物医学工程年鉴》,第32卷, 第306 - 312页;普罗文扎诺等人,2001年,《生物医学工程年鉴》,第29卷,第908 - 214页;韦斯等人,2002年,《生物力学杂志》,第35卷,第943 - 950页)中描述的韧带的随时间变化的响应。特别是,可以描述非线性粘弹性响应,这意味着不同的施加应变具有不同的松弛率,不同的施加应力具有不同的蠕变率以及与方向相关的松弛行为。

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