首页> 外文期刊>Journal of Biomechanics >A micromechanical model to predict damage and failure in biological tissues. Application to the ligament-to-bone attachment in the human knee joint.
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A micromechanical model to predict damage and failure in biological tissues. Application to the ligament-to-bone attachment in the human knee joint.

机译:预测生物组织损伤和衰竭的微力学模型。适用于人膝关节的韧带至骨的附着。

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Computational models are developed in injury biomechanics to assess lesions in biological tissues based on mechanical measurements. The linear mechanics of fracture theory (LMFT) is a common approach to establish injuries based on thresholds (such as force or strain thresholds) which are straightforward to implement and computationally efficient. However, LMFT does not apply to non-linear heterogeneous materials and does not have the ability to predict failure onset. This paper proposes the cohesive zone model theory (CZMT) as an alternative. CZMT focuses on the development of behaviour laws for crack initiation and propagation at an interface that apply within a fibrous material or at the interface between materials. With the view of evaluating CZMT for biological tissues, the model developed by Raous et al. [1999. A consistent model coupling adhesion, friction and unilateral contact. Comput. Methods Appl. Mech. Eng., 177, 383-399] was applied to the ligament-to-bone interface in the human knee joint.This model accounts for adhesion, friction and damage at the interface and provides a smooth transition from total adhesion to complete failure through the intensity of adhesion variable. A 2D finite element model was developed to mimic previous experiments, and the model parameters were determined using a dichotomy method. The model showed good results by its ability to predict damage. The extension to a 3D geometry, with an inverse problem approach, is, however, required to better estimate the model parameters values. Although it is computationally costly, CZMT supplements the improvements achieved in microimaging techniques to support the development of micro/macro approaches in biomechanical modelling.
机译:在损伤生物力学中开发了计算模型,以基于机械测量来评估生物组织中的损伤。断裂理论的线性力学(LMFT)是一种基于阈值(例如力或应变阈值)建立伤害的常用方法,该阈值易于实现且计算效率高。但是,LMFT不适用于非线性异质材料,并且不具有预测失效开始的能力。本文提出了粘性区模型理论(CZMT)作为替代方案。 CZMT专注于开发行为规律,以在纤维材料内或材料之间的界面处进行裂纹萌生和扩展。为了评估生物组织的CZMT,由Raous等人开发的模型。 [1999。一致的模型将附着力,摩擦力和单侧接触耦合在一起。计算方法应用。机甲Eng。,177,383-399]应用于人膝关节的韧带-骨界面。该模型考虑了界面处的粘着,摩擦和损伤,并提供了从总粘连到整个失败的平滑过渡。粘附强度的变量。开发了一个二维有限元模型来模拟以前的实验,并使用二分法确定模型参数。该模型通过预测损坏的能力显示出良好的结果。但是,需要使用逆问题方法扩展到3D几何,以更好地估计模型参数值。尽管计算成本很高,但是CZMT补充了微成像技术的改进,以支持生物力学建模中微/宏方法的发展。

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