Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study
Total ankle replacement (TAR) procedure is carried out to reduce the pain due to arthritis and trauma in patients. The failure of TAR implants occurs through various wear mechanisms in the polyethylene due to high ankle load, leads to instability as well as loosening problem. The objective of this p...
Published in: | International Journal of Engineering and Technology(UAE) |
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2018
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2-s2.0-85056725036 Taqayuddin M.A.M.; Anuar M.A.M.; Shuib S.; Mohamed Z.; Majeed A.P.P.A. Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study 2018 International Journal of Engineering and Technology(UAE) 7 4 10.14419/ijet.v7i4.11.20690 https://www.scopus.com/inward/record.uri?eid=2-s2.0-85056725036&doi=10.14419%2fijet.v7i4.11.20690&partnerID=40&md5=ba85bf976d0d23447f614111ad3231fb Total ankle replacement (TAR) procedure is carried out to reduce the pain due to arthritis and trauma in patients. The failure of TAR implants occurs through various wear mechanisms in the polyethylene due to high ankle load, leads to instability as well as loosening problem. The objective of this project is to assess the performance of Salto Talaris (TAR) implants before and after design modification. In the present study, the computational model of Salto Talaris and the modified design was developed using CATIA V5R20 while the finite element analysis (FEA) was performed in ANSYS V18. The results have shown that the maximum von Mises stress induced in the polyethylene insert for Salto Talaris and the new design were 13.9 MPa and 8.7 MPa, respectively, with applied 880 N of axial ankle load. The modified version exhibited better performance due to elimination of edge loading with good contact area. Design modification is essential to lower the stress induced at PE insert, hence reduce the failure of TAR prosthesis. © 2018 Authors. Science Publishing Corporation Inc 2227524X English Article All Open Access; Bronze Open Access |
author |
Taqayuddin M.A.M.; Anuar M.A.M.; Shuib S.; Mohamed Z.; Majeed A.P.P.A. |
spellingShingle |
Taqayuddin M.A.M.; Anuar M.A.M.; Shuib S.; Mohamed Z.; Majeed A.P.P.A. Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study |
author_facet |
Taqayuddin M.A.M.; Anuar M.A.M.; Shuib S.; Mohamed Z.; Majeed A.P.P.A. |
author_sort |
Taqayuddin M.A.M.; Anuar M.A.M.; Shuib S.; Mohamed Z.; Majeed A.P.P.A. |
title |
Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study |
title_short |
Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study |
title_full |
Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study |
title_fullStr |
Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study |
title_full_unstemmed |
Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study |
title_sort |
Mechanics of total ankle replacement during flexion in relation to geometrical design: A finite element study |
publishDate |
2018 |
container_title |
International Journal of Engineering and Technology(UAE) |
container_volume |
7 |
container_issue |
4 |
doi_str_mv |
10.14419/ijet.v7i4.11.20690 |
url |
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85056725036&doi=10.14419%2fijet.v7i4.11.20690&partnerID=40&md5=ba85bf976d0d23447f614111ad3231fb |
description |
Total ankle replacement (TAR) procedure is carried out to reduce the pain due to arthritis and trauma in patients. The failure of TAR implants occurs through various wear mechanisms in the polyethylene due to high ankle load, leads to instability as well as loosening problem. The objective of this project is to assess the performance of Salto Talaris (TAR) implants before and after design modification. In the present study, the computational model of Salto Talaris and the modified design was developed using CATIA V5R20 while the finite element analysis (FEA) was performed in ANSYS V18. The results have shown that the maximum von Mises stress induced in the polyethylene insert for Salto Talaris and the new design were 13.9 MPa and 8.7 MPa, respectively, with applied 880 N of axial ankle load. The modified version exhibited better performance due to elimination of edge loading with good contact area. Design modification is essential to lower the stress induced at PE insert, hence reduce the failure of TAR prosthesis. © 2018 Authors. |
publisher |
Science Publishing Corporation Inc |
issn |
2227524X |
language |
English |
format |
Article |
accesstype |
All Open Access; Bronze Open Access |
record_format |
scopus |
collection |
Scopus |
_version_ |
1809677907426017280 |