Variable stiffness rheological model for interrelating creep and stress relaxation in ligaments

M. Taha, S. Neidigk, A. Noureldin
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引用次数: 2

Abstract

Creep and stress relaxation are two fundamental operational principles of joints that are significant for joint laxity. Modelling and relating creep and stress relaxation of ligaments is important if synthetic grafts (e.g., artificial ligaments) are to be developed and used for reconstructive surgery. This article discusses the use of rheological models to simulate creep and stress relaxation of ligaments. Modelling is performed using theory of linear viscoelasticity. Using principles of system identification, the parameters of constant and variable stiffness rheological models are determined considering experimentally measured stress relaxation of the medial collateral ligaments (MCL). The models are then tested to predict experimentally measured creep of the MCL. The proposed method proves the need to consider collagen fibre recruitment to interrelate creep and stress relaxation of ligaments. The results show that a rheological model with variable stiffness is capable of predicting creep from experimentally measured stress relaxation with a reasonable accuracy.
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韧带蠕变与应力松弛相关的变刚度流变模型
蠕变和应力松弛是关节的两个基本工作原理,对关节松弛有重要意义。如果要开发合成移植物(例如人工韧带)并用于重建手术,那么模拟和相关的韧带蠕变和应力松弛是重要的。本文讨论了使用流变模型来模拟韧带的蠕变和应力松弛。采用线性粘弹性理论进行建模。利用系统辨识原理,考虑实验测量的内侧副韧带(MCL)应力松弛,确定恒刚度和变刚度流变模型的参数。然后对模型进行了测试,以预测MCL的实验测量蠕变。提出的方法证明需要考虑胶原纤维的补充,以联系韧带的蠕变和应力松弛。结果表明,变刚度流变模型能够以实验测量的应力松弛来预测蠕变,并具有合理的精度。
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