Literature DB >> 23181617

An augmented Lagrangian finite element formulation for 3D contact of biphasic tissues.

Hongqiang Guo1, Robert L Spilker.   

Abstract

Biphasic contact analysis is essential to obtain a complete understanding of soft tissue biomechanics, and the importance of physiological structure on the joint biomechanics has long been recognised; however, up to date, there are no successful developments of biphasic finite element contact analysis for three-dimensional (3D) geometries of physiological joints. The aim of this study was to develop a finite element formulation for biphasic contact of 3D physiological joints. The augmented Lagrangian method was used to enforce the continuity of contact traction and fluid pressure across the contact interface. The biphasic contact method was implemented in the commercial software COMSOL Multiphysics 4.2(®) (COMSOL, Inc., Burlington, MA). The accuracy of the implementation was verified using 3D biphasic contact problems, including indentation with a flat-ended indenter and contact of glenohumeral cartilage layers. The ability of the method to model multibody biphasic contact of physiological joints was proved by a 3D knee model. The 3D biphasic finite element contact method developed in this study can be used to study the biphasic behaviours of the physiological joints.

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Year:  2012        PMID: 23181617      PMCID: PMC3587284          DOI: 10.1080/10255842.2012.739166

Source DB:  PubMed          Journal:  Comput Methods Biomech Biomed Engin        ISSN: 1025-5842            Impact factor:   1.763


  26 in total

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  10 in total

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Review 3.  Toward patient-specific articular contact mechanics.

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4.  A biphasic finite element study on the role of the articular cartilage superficial zone in confined compression.

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5.  Biphasic finite element contact analysis of the knee joint using an augmented Lagrangian method.

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6.  A finite element implementation for biphasic contact of hydrated porous media under finite deformation and sliding.

Authors:  Hongqiang Guo; Mitul Shah; Robert L Spilker
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7.  Determining Tension-Compression Nonlinear Mechanical Properties of Articular Cartilage from Indentation Testing.

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8.  A biphasic multiscale study of the mechanical microenvironment of chondrocytes within articular cartilage under unconfined compression.

Authors:  Hongqiang Guo; Suzanne A Maher; Peter A Torzilli
Journal:  J Biomech       Date:  2014-05-10       Impact factor: 2.712

9.  Computational investigation of the time-dependent contact behaviour of the human tibiofemoral joint under body weight.

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Journal:  Proc Inst Mech Eng H       Date:  2014-11       Impact factor: 1.617

10.  Open Knee: Open Source Modeling and Simulation in Knee Biomechanics.

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