Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion

The primary objective of this study is to distinguish between mobile bearing and fixed bearing posterior stabilized knee prostheses in the mechanics performance using the finite element simulation. Quantifying the relative mechanics attributes and survivorship between the mobile bearing and the fixe...

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Published in:Scientific World Journal
Main Author: Mohd Anuar M.A.; Todo M.; Nagamine R.; Hirokawa S.
Format: Article
Language:English
Published: Hindawi Limited 2014
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-84919397782&doi=10.1155%2f2014%2f586921&partnerID=40&md5=79dc34abe00f0bb240ed6e6abbd3a650
id 2-s2.0-84919397782
spelling 2-s2.0-84919397782
Mohd Anuar M.A.; Todo M.; Nagamine R.; Hirokawa S.
Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion
2014
Scientific World Journal
2014

10.1155/2014/586921
https://www.scopus.com/inward/record.uri?eid=2-s2.0-84919397782&doi=10.1155%2f2014%2f586921&partnerID=40&md5=79dc34abe00f0bb240ed6e6abbd3a650
The primary objective of this study is to distinguish between mobile bearing and fixed bearing posterior stabilized knee prostheses in the mechanics performance using the finite element simulation. Quantifying the relative mechanics attributes and survivorship between the mobile bearing and the fixed bearing prosthesis remains in investigation among researchers. In the present study, 3-dimensional computational model of a clinically used mobile bearing PS type knee prosthesis was utilized to develop a finite element and dynamic simulation model. Combination of displacement and force driven knee motion was adapted to simulate a flexion motion from 0° to 135° with neutral, 10°, and 20° internal tibial rotation to represent deep knee bending. Introduction of the secondary moving articulation in the mobile bearing knee prosthesis has been found to maintain relatively low shear stress during deep knee motion with tibial rotation. © 2014 Mohd Afzan Mohd Anuar et al.
Hindawi Limited
23566140
English
Article
All Open Access; Gold Open Access; Green Open Access
author Mohd Anuar M.A.; Todo M.; Nagamine R.; Hirokawa S.
spellingShingle Mohd Anuar M.A.; Todo M.; Nagamine R.; Hirokawa S.
Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion
author_facet Mohd Anuar M.A.; Todo M.; Nagamine R.; Hirokawa S.
author_sort Mohd Anuar M.A.; Todo M.; Nagamine R.; Hirokawa S.
title Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion
title_short Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion
title_full Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion
title_fullStr Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion
title_full_unstemmed Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion
title_sort Dynamic finite element analysis of mobile bearing type knee prosthesis under deep flexional motion
publishDate 2014
container_title Scientific World Journal
container_volume 2014
container_issue
doi_str_mv 10.1155/2014/586921
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-84919397782&doi=10.1155%2f2014%2f586921&partnerID=40&md5=79dc34abe00f0bb240ed6e6abbd3a650
description The primary objective of this study is to distinguish between mobile bearing and fixed bearing posterior stabilized knee prostheses in the mechanics performance using the finite element simulation. Quantifying the relative mechanics attributes and survivorship between the mobile bearing and the fixed bearing prosthesis remains in investigation among researchers. In the present study, 3-dimensional computational model of a clinically used mobile bearing PS type knee prosthesis was utilized to develop a finite element and dynamic simulation model. Combination of displacement and force driven knee motion was adapted to simulate a flexion motion from 0° to 135° with neutral, 10°, and 20° internal tibial rotation to represent deep knee bending. Introduction of the secondary moving articulation in the mobile bearing knee prosthesis has been found to maintain relatively low shear stress during deep knee motion with tibial rotation. © 2014 Mohd Afzan Mohd Anuar et al.
publisher Hindawi Limited
issn 23566140
language English
format Article
accesstype All Open Access; Gold Open Access; Green Open Access
record_format scopus
collection Scopus
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