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Bio-Numerical Analysis of the Human Ankle-Foot Model Corresponding to Neutral Standing Condition

BACKGROUND: The foot is the most complex body’s structure; it is highly susceptible to disorders because of its loading pattern. The complexity of the foot structure geometry implies the use of reverse engineering tools to obtain a model that can accurately mimic the biomechanical behavior of the fo...

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Autores principales: A., Darwich, H., Nazha, A., Nazha, M., Daoud, A., Alhussein
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Shiraz University of Medical Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7557457/
https://www.ncbi.nlm.nih.gov/pubmed/33134224
http://dx.doi.org/10.31661/jbpe.v0i0.2004-1094
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author A., Darwich
H., Nazha
A., Nazha
M., Daoud
A., Alhussein
author_facet A., Darwich
H., Nazha
A., Nazha
M., Daoud
A., Alhussein
author_sort A., Darwich
collection PubMed
description BACKGROUND: The foot is the most complex body’s structure; it is highly susceptible to disorders because of its loading pattern. The complexity of the foot structure geometry implies the use of reverse engineering tools to obtain a model that can accurately mimic the biomechanical behavior of the foot. OBJECTIVE: The objective of this study is to establish a state-of-the-art ankle-foot finite element (FE) model with anatomically realistic geometry and structure in order to get the model that will suit all cases for future studies on stress injuries and foot insole designs under different loading conditions. MATERIAL AND METHODS: In this analytical study, tomography images were imported in DICOM format, after that, the object was exported in the form of three-dimensional structures in STL file format to define and assemble the structures. After that, the computer simulation on numerical model was done. One-way Analysis of variance (ANOVA) test was performed, and a threshold (p<0.05) was used to indicate the significance of results. RESULTS: The results showed no significant differences (P>0.05) between the values of the plantar pressure corresponding to neutral standing condition with other foot models in literature. The stresses transferred to the bone structure show that the relatively higher stress was located in the fifth, fourth and third tarsometatarsal, where the maximum von Mises stress in the bone structure was 2155.4 kPa. CONCLUSION: The state-of-the-art ankle-foot FE model with anatomically realistic geometry and structure will be very helpful for future studies on stress injuries and foot insole designs under different loading conditions.
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spelling pubmed-75574572020-10-30 Bio-Numerical Analysis of the Human Ankle-Foot Model Corresponding to Neutral Standing Condition A., Darwich H., Nazha A., Nazha M., Daoud A., Alhussein J Biomed Phys Eng Original Article BACKGROUND: The foot is the most complex body’s structure; it is highly susceptible to disorders because of its loading pattern. The complexity of the foot structure geometry implies the use of reverse engineering tools to obtain a model that can accurately mimic the biomechanical behavior of the foot. OBJECTIVE: The objective of this study is to establish a state-of-the-art ankle-foot finite element (FE) model with anatomically realistic geometry and structure in order to get the model that will suit all cases for future studies on stress injuries and foot insole designs under different loading conditions. MATERIAL AND METHODS: In this analytical study, tomography images were imported in DICOM format, after that, the object was exported in the form of three-dimensional structures in STL file format to define and assemble the structures. After that, the computer simulation on numerical model was done. One-way Analysis of variance (ANOVA) test was performed, and a threshold (p<0.05) was used to indicate the significance of results. RESULTS: The results showed no significant differences (P>0.05) between the values of the plantar pressure corresponding to neutral standing condition with other foot models in literature. The stresses transferred to the bone structure show that the relatively higher stress was located in the fifth, fourth and third tarsometatarsal, where the maximum von Mises stress in the bone structure was 2155.4 kPa. CONCLUSION: The state-of-the-art ankle-foot FE model with anatomically realistic geometry and structure will be very helpful for future studies on stress injuries and foot insole designs under different loading conditions. Shiraz University of Medical Sciences 2020-10-01 /pmc/articles/PMC7557457/ /pubmed/33134224 http://dx.doi.org/10.31661/jbpe.v0i0.2004-1094 Text en Copyright: © Journal of Biomedical Physics and Engineering http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 Unported License, ( http://creativecommons.org/licenses/by-nc/4.0/ ) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Article
A., Darwich
H., Nazha
A., Nazha
M., Daoud
A., Alhussein
Bio-Numerical Analysis of the Human Ankle-Foot Model Corresponding to Neutral Standing Condition
title Bio-Numerical Analysis of the Human Ankle-Foot Model Corresponding to Neutral Standing Condition
title_full Bio-Numerical Analysis of the Human Ankle-Foot Model Corresponding to Neutral Standing Condition
title_fullStr Bio-Numerical Analysis of the Human Ankle-Foot Model Corresponding to Neutral Standing Condition
title_full_unstemmed Bio-Numerical Analysis of the Human Ankle-Foot Model Corresponding to Neutral Standing Condition
title_short Bio-Numerical Analysis of the Human Ankle-Foot Model Corresponding to Neutral Standing Condition
title_sort bio-numerical analysis of the human ankle-foot model corresponding to neutral standing condition
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7557457/
https://www.ncbi.nlm.nih.gov/pubmed/33134224
http://dx.doi.org/10.31661/jbpe.v0i0.2004-1094
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