A dynamic finite element analysis of human foot complex in the sagittal plane during level walking.

The objective of this study is to develop a computational framework for investigating the dynamic behavior and the internal loading conditions of the human foot complex during locomotion. A subject-specific dynamic finite element model in the sagittal plane was constructed based on anatomical struct...

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Main Authors: Zhihui Qian, Lei Ren, Yun Ding, John R Hutchinson, Luquan Ren
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3823660?pdf=render
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spelling doaj-82bc18ee20564d6f9eb54d6f56151cc42020-11-25T01:45:20ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-01811e7942410.1371/journal.pone.0079424A dynamic finite element analysis of human foot complex in the sagittal plane during level walking.Zhihui QianLei RenYun DingJohn R HutchinsonLuquan RenThe objective of this study is to develop a computational framework for investigating the dynamic behavior and the internal loading conditions of the human foot complex during locomotion. A subject-specific dynamic finite element model in the sagittal plane was constructed based on anatomical structures segmented from medical CT scan images. Three-dimensional gait measurements were conducted to support and validate the model. Ankle joint forces and moment derived from gait measurements were used to drive the model. Explicit finite element simulations were conducted, covering the entire stance phase from heel-strike impact to toe-off. The predicted ground reaction forces, center of pressure, foot bone motions and plantar surface pressure showed reasonably good agreement with the gait measurement data over most of the stance phase. The prediction discrepancies can be explained by the assumptions and limitations of the model. Our analysis showed that a dynamic FE simulation can improve the prediction accuracy in the peak plantar pressures at some parts of the foot complex by 10%-33% compared to a quasi-static FE simulation. However, to simplify the costly explicit FE simulation, the proposed model is confined only to the sagittal plane and has a simplified representation of foot structure. The dynamic finite element foot model proposed in this study would provide a useful tool for future extension to a fully muscle-driven dynamic three-dimensional model with detailed representation of all major anatomical structures, in order to investigate the structural dynamics of the human foot musculoskeletal system during normal or even pathological functioning.http://europepmc.org/articles/PMC3823660?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Zhihui Qian
Lei Ren
Yun Ding
John R Hutchinson
Luquan Ren
spellingShingle Zhihui Qian
Lei Ren
Yun Ding
John R Hutchinson
Luquan Ren
A dynamic finite element analysis of human foot complex in the sagittal plane during level walking.
PLoS ONE
author_facet Zhihui Qian
Lei Ren
Yun Ding
John R Hutchinson
Luquan Ren
author_sort Zhihui Qian
title A dynamic finite element analysis of human foot complex in the sagittal plane during level walking.
title_short A dynamic finite element analysis of human foot complex in the sagittal plane during level walking.
title_full A dynamic finite element analysis of human foot complex in the sagittal plane during level walking.
title_fullStr A dynamic finite element analysis of human foot complex in the sagittal plane during level walking.
title_full_unstemmed A dynamic finite element analysis of human foot complex in the sagittal plane during level walking.
title_sort dynamic finite element analysis of human foot complex in the sagittal plane during level walking.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description The objective of this study is to develop a computational framework for investigating the dynamic behavior and the internal loading conditions of the human foot complex during locomotion. A subject-specific dynamic finite element model in the sagittal plane was constructed based on anatomical structures segmented from medical CT scan images. Three-dimensional gait measurements were conducted to support and validate the model. Ankle joint forces and moment derived from gait measurements were used to drive the model. Explicit finite element simulations were conducted, covering the entire stance phase from heel-strike impact to toe-off. The predicted ground reaction forces, center of pressure, foot bone motions and plantar surface pressure showed reasonably good agreement with the gait measurement data over most of the stance phase. The prediction discrepancies can be explained by the assumptions and limitations of the model. Our analysis showed that a dynamic FE simulation can improve the prediction accuracy in the peak plantar pressures at some parts of the foot complex by 10%-33% compared to a quasi-static FE simulation. However, to simplify the costly explicit FE simulation, the proposed model is confined only to the sagittal plane and has a simplified representation of foot structure. The dynamic finite element foot model proposed in this study would provide a useful tool for future extension to a fully muscle-driven dynamic three-dimensional model with detailed representation of all major anatomical structures, in order to investigate the structural dynamics of the human foot musculoskeletal system during normal or even pathological functioning.
url http://europepmc.org/articles/PMC3823660?pdf=render
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