A micromechanical model to predict damage and failure in biological tissues. Application to the ligament-to-bone attachment in the human knee joint

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. Adhesion Cohesive zone model Failure Micromechanics Ligament-to-bone attachment Damage

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Source ISSN: 0021-9290
Author Subit, Damien, Chabrand, P, Masson, Catherine
Maintainer CCSD
Last Updated May 10, 2026, 04:43 (UTC)
Created May 10, 2026, 04:43 (UTC)
Identifier hal-00849227
Language en
contributor Laboratoire de Biomécanique Appliquée (LBA UMR T24) ; Aix Marseille Université (AMU)-Université Gustave Eiffel
creator Subit, Damien
date 2009-01-01T00:00:00
harvest_object_id 9755611e-ffee-497d-b9bc-40acb4f6b4e8
harvest_source_id 3374d638-d20b-4672-ba96-a23232d55657
harvest_source_title test moissonnage SELUNE
metadata_modified 2025-06-02T00:00:00
relation info:eu-repo/semantics/altIdentifier/doi/10.1016/j.jbiomech.2008.10.028
set_spec type:ART