Literature DB >> 20524730

A study on construction three-dimensional nonlinear finite element model and stress distribution analysis of anterior cruciate ligament.

Feng Xie1, Liu Yang, Lin Guo, Zhi-jun Wang, Gang Dai.   

Abstract

To establish a finite element model that reflects the geometric characteristics of the normal anterior cruciate ligament (ACL), explore the approaches to model knee joint ligaments and analyze the mechanics of the model. A healthy knee joint specimen was subjected to three-dimensional laser scanning, and then a three-dimensional finite element model for the normal ACL was established using three-dimensional finite element software. Based on the model, the loads of the ACL were simulated to analyze the stress-strain relationship and stress distribution of the ACL. Using the ABAQUS software, a three-dimensional finite element model was established. The whole model contained 22,125 nodes and 46,411 units. In terms of geometric similarity and mesh precision, this model was superior to previous finite element models for the ACL. Through the introduction of material properties, boundary conditions, and loads, finite elements were analyzed and computed successfully. The relationship between overall nodal forces and the displacement of the ACL under anterior loads of the tibia was determined. In addition, the nephogram of the ACL stress spatial distribution was obtained. A vivid, three-dimensional model of the knee joint was established rapidly by using reverse engineering technology and laser scanning. The three-dimensional finite element method can be used for the ACL biomechanics research. The method accurately simulated the ACL stress distribution with the tibia under anterior loads, and the computational results were of clinical significance.

Mesh:

Year:  2009        PMID: 20524730     DOI: 10.1115/1.4000167

Source DB:  PubMed          Journal:  J Biomech Eng        ISSN: 0148-0731            Impact factor:   2.097


  5 in total

1.  Finite element model of the knee for investigation of injury mechanisms: development and validation.

Authors:  Ali Kiapour; Ata M Kiapour; Vikas Kaul; Carmen E Quatman; Samuel C Wordeman; Timothy E Hewett; Constantine K Demetropoulos; Vijay K Goel
Journal:  J Biomech Eng       Date:  2014-01       Impact factor: 2.097

2.  Peak stresses shift from femoral tunnel aperture to tibial tunnel aperture in lateral tibial tunnel ACL reconstructions: a 3D graft-bending angle measurement and finite-element analysis.

Authors:  Hans Van Der Bracht; Thomas Tampere; Pieter Beekman; Alexander Schepens; Wouter Devriendt; Michiel Cromheecke; Peter Verdonk; Jan Victor
Journal:  Knee Surg Sports Traumatol Arthrosc       Date:  2017-11-09       Impact factor: 4.342

3.  Mechano Growth Factor Accelerates ACL Repair and Improves Cell Mobility of Mechanically Injured Human ACL Fibroblasts by Targeting Rac1-PAK1/2 and RhoA-ROCK1 Pathways.

Authors:  Yongqiang Sha; Beibei Zhang; Liping Chen; Huhai Hong; Qingjia Chi
Journal:  Int J Mol Sci       Date:  2022-04-14       Impact factor: 6.208

4.  Construction of finite element model and stress analysis of anterior cruciate ligament tibial insertion.

Authors:  Can Dai; Liu Yang; Lin Guo; Fuyou Wang; Jingyue Gou; Zhilong Deng
Journal:  Pak J Med Sci       Date:  2015       Impact factor: 1.088

5.  The Effect of Ligament Modeling Technique on Knee Joint Kinematics: A Finite Element Study.

Authors:  Ata M Kiapour; Vikas Kaul; Ali Kiapour; Carmen E Quatman; Samuel C Wordeman; Timothy E Hewett; Constantine K Demetropoulos; Vijay K Goel
Journal:  Appl Math (Irvine)       Date:  2014-05
  5 in total

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