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Design and Performance Evaluation of a Novel Spiral Head-Stem Trunnion for Hip Implants Using Finite Element Analysis

With an expectation of an increased number of revision surgeries and patients receiving orthopedic implants in the coming years, the focus of joint replacement research needs to be on improving the mechanical properties of implants. Head-stem trunnion fixation provides superior load support and impl...

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Autores principales: Soliman, Md Mohiuddin, Chowdhury, Muhammad E. H., Islam, Mohammad Tariqul, Musharavati, Farayi, Mahmud, Sakib, Hafizh, Muhammad, Ayari, Mohamed Arselene, Khandakar, Amith, Alam, Mohammad Kaosar, Nezhad, Erfan Zal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9962303/
https://www.ncbi.nlm.nih.gov/pubmed/36837096
http://dx.doi.org/10.3390/ma16041466
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author Soliman, Md Mohiuddin
Chowdhury, Muhammad E. H.
Islam, Mohammad Tariqul
Musharavati, Farayi
Mahmud, Sakib
Hafizh, Muhammad
Ayari, Mohamed Arselene
Khandakar, Amith
Alam, Mohammad Kaosar
Nezhad, Erfan Zal
author_facet Soliman, Md Mohiuddin
Chowdhury, Muhammad E. H.
Islam, Mohammad Tariqul
Musharavati, Farayi
Mahmud, Sakib
Hafizh, Muhammad
Ayari, Mohamed Arselene
Khandakar, Amith
Alam, Mohammad Kaosar
Nezhad, Erfan Zal
author_sort Soliman, Md Mohiuddin
collection PubMed
description With an expectation of an increased number of revision surgeries and patients receiving orthopedic implants in the coming years, the focus of joint replacement research needs to be on improving the mechanical properties of implants. Head-stem trunnion fixation provides superior load support and implant stability. Fretting wear is formed at the trunnion because of the dynamic load activities of patients, and this eventually causes the total hip implant system to fail. To optimize the design, multiple experiments with various trunnion geometries have been performed by researchers to examine the wear rate and associated mechanical performance characteristics of the existing head-stem trunnion. The objective of this work is to quantify and evaluate the performance parameters of smooth and novel spiral head-stem trunnion types under dynamic loading situations. This study proposes a finite element method for estimating head-stem trunnion performance characteristics, namely contact pressure and sliding distance, for both trunnion types under walking and jogging dynamic loading conditions. The wear rate for both trunnion types was computed using the Archard wear model for a standard number of gait cycles. The experimental results indicated that the spiral trunnion with a uniform contact pressure distribution achieved more fixation than the smooth trunnion. However, the average contact pressure distribution was nearly the same for both trunnion types. The maximum and average sliding distances were both shorter for the spiral trunnion; hence, the summed sliding distance was approximately 10% shorter for spiral trunnions than that of the smooth trunnion over a complete gait cycle. Owing to a lower sliding ability, hip implants with spiral trunnions achieved more stability than those with smooth trunnions. The anticipated wear rate for spiral trunnions was 0.039 mm(3), which was approximately 10% lower than the smooth trunnion wear rate of 0.048 mm(3) per million loading cycles. The spiral trunnion achieved superior fixation stability with a shorter sliding distance and a lower wear rate than the smooth trunnion; therefore, the spiral trunnion can be recommended for future hip implant systems.
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spelling pubmed-99623032023-02-26 Design and Performance Evaluation of a Novel Spiral Head-Stem Trunnion for Hip Implants Using Finite Element Analysis Soliman, Md Mohiuddin Chowdhury, Muhammad E. H. Islam, Mohammad Tariqul Musharavati, Farayi Mahmud, Sakib Hafizh, Muhammad Ayari, Mohamed Arselene Khandakar, Amith Alam, Mohammad Kaosar Nezhad, Erfan Zal Materials (Basel) Article With an expectation of an increased number of revision surgeries and patients receiving orthopedic implants in the coming years, the focus of joint replacement research needs to be on improving the mechanical properties of implants. Head-stem trunnion fixation provides superior load support and implant stability. Fretting wear is formed at the trunnion because of the dynamic load activities of patients, and this eventually causes the total hip implant system to fail. To optimize the design, multiple experiments with various trunnion geometries have been performed by researchers to examine the wear rate and associated mechanical performance characteristics of the existing head-stem trunnion. The objective of this work is to quantify and evaluate the performance parameters of smooth and novel spiral head-stem trunnion types under dynamic loading situations. This study proposes a finite element method for estimating head-stem trunnion performance characteristics, namely contact pressure and sliding distance, for both trunnion types under walking and jogging dynamic loading conditions. The wear rate for both trunnion types was computed using the Archard wear model for a standard number of gait cycles. The experimental results indicated that the spiral trunnion with a uniform contact pressure distribution achieved more fixation than the smooth trunnion. However, the average contact pressure distribution was nearly the same for both trunnion types. The maximum and average sliding distances were both shorter for the spiral trunnion; hence, the summed sliding distance was approximately 10% shorter for spiral trunnions than that of the smooth trunnion over a complete gait cycle. Owing to a lower sliding ability, hip implants with spiral trunnions achieved more stability than those with smooth trunnions. The anticipated wear rate for spiral trunnions was 0.039 mm(3), which was approximately 10% lower than the smooth trunnion wear rate of 0.048 mm(3) per million loading cycles. The spiral trunnion achieved superior fixation stability with a shorter sliding distance and a lower wear rate than the smooth trunnion; therefore, the spiral trunnion can be recommended for future hip implant systems. MDPI 2023-02-09 /pmc/articles/PMC9962303/ /pubmed/36837096 http://dx.doi.org/10.3390/ma16041466 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Soliman, Md Mohiuddin
Chowdhury, Muhammad E. H.
Islam, Mohammad Tariqul
Musharavati, Farayi
Mahmud, Sakib
Hafizh, Muhammad
Ayari, Mohamed Arselene
Khandakar, Amith
Alam, Mohammad Kaosar
Nezhad, Erfan Zal
Design and Performance Evaluation of a Novel Spiral Head-Stem Trunnion for Hip Implants Using Finite Element Analysis
title Design and Performance Evaluation of a Novel Spiral Head-Stem Trunnion for Hip Implants Using Finite Element Analysis
title_full Design and Performance Evaluation of a Novel Spiral Head-Stem Trunnion for Hip Implants Using Finite Element Analysis
title_fullStr Design and Performance Evaluation of a Novel Spiral Head-Stem Trunnion for Hip Implants Using Finite Element Analysis
title_full_unstemmed Design and Performance Evaluation of a Novel Spiral Head-Stem Trunnion for Hip Implants Using Finite Element Analysis
title_short Design and Performance Evaluation of a Novel Spiral Head-Stem Trunnion for Hip Implants Using Finite Element Analysis
title_sort design and performance evaluation of a novel spiral head-stem trunnion for hip implants using finite element analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9962303/
https://www.ncbi.nlm.nih.gov/pubmed/36837096
http://dx.doi.org/10.3390/ma16041466
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