Design of 3D printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysis

Abstract Toe joint is known as one of the critical factors in designing a prosthetic foot due to its nonlinear stiffness characteristic. This stiffness characteristic provides a general feeling of springiness in the toe-off and it also affects the ankle kinetics. In this study, the toe part of the p...

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Main Authors: Hui-Jin Um, Heon-Su Kim, Woolim Hong, Hak-Sung Kim, Pilwon Hur
Format: Article
Language:English
Published: Nature Publishing Group 2021-10-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-021-98839-3
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spelling doaj-3db268981e7d4253aa3b2deea0f922012021-10-10T11:30:54ZengNature Publishing GroupScientific Reports2045-23222021-10-0111111110.1038/s41598-021-98839-3Design of 3D printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysisHui-Jin Um0Heon-Su Kim1Woolim Hong2Hak-Sung Kim3Pilwon Hur4Department of Mechanical Engineering, Hanyang UniversityDepartment of Mechanical Engineering, Hanyang UniversityJ. Mike Walker ’66 Department of Mechanical Engineering, Texas A&M UniversityDepartment of Mechanical Engineering, Hanyang UniversityJ. Mike Walker ’66 Department of Mechanical Engineering, Texas A&M UniversityAbstract Toe joint is known as one of the critical factors in designing a prosthetic foot due to its nonlinear stiffness characteristic. This stiffness characteristic provides a general feeling of springiness in the toe-off and it also affects the ankle kinetics. In this study, the toe part of the prosthetic foot was designed to improve walking performance. The toe joint was implemented as a single part suitable for 3D printing. The various shape factors such as curved shape, bending space, auxetic structure, and bending zone were applied to mimic human foot characteristics. The finite element analysis (FEA) was conducted to simulate terminal stance (from heel-off to toe-off) using the designed prosthetic foot. To find the structure with characteristics similar to the human foot, the optimization was performed based on the toe joint geometries. As a result, the optimized foot showed good agreement with human foot behavior in the toe torque-angle curve. Finally, the simulation conditions were validated by comparing with human walking data and it was confirmed that the designed prosthetic foot structure can implement the human foot function.https://doi.org/10.1038/s41598-021-98839-3
collection DOAJ
language English
format Article
sources DOAJ
author Hui-Jin Um
Heon-Su Kim
Woolim Hong
Hak-Sung Kim
Pilwon Hur
spellingShingle Hui-Jin Um
Heon-Su Kim
Woolim Hong
Hak-Sung Kim
Pilwon Hur
Design of 3D printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysis
Scientific Reports
author_facet Hui-Jin Um
Heon-Su Kim
Woolim Hong
Hak-Sung Kim
Pilwon Hur
author_sort Hui-Jin Um
title Design of 3D printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysis
title_short Design of 3D printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysis
title_full Design of 3D printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysis
title_fullStr Design of 3D printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysis
title_full_unstemmed Design of 3D printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysis
title_sort design of 3d printable prosthetic foot to implement nonlinear stiffness behavior of human toe joint based on finite element analysis
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2021-10-01
description Abstract Toe joint is known as one of the critical factors in designing a prosthetic foot due to its nonlinear stiffness characteristic. This stiffness characteristic provides a general feeling of springiness in the toe-off and it also affects the ankle kinetics. In this study, the toe part of the prosthetic foot was designed to improve walking performance. The toe joint was implemented as a single part suitable for 3D printing. The various shape factors such as curved shape, bending space, auxetic structure, and bending zone were applied to mimic human foot characteristics. The finite element analysis (FEA) was conducted to simulate terminal stance (from heel-off to toe-off) using the designed prosthetic foot. To find the structure with characteristics similar to the human foot, the optimization was performed based on the toe joint geometries. As a result, the optimized foot showed good agreement with human foot behavior in the toe torque-angle curve. Finally, the simulation conditions were validated by comparing with human walking data and it was confirmed that the designed prosthetic foot structure can implement the human foot function.
url https://doi.org/10.1038/s41598-021-98839-3
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AT woolimhong designof3dprintableprostheticfoottoimplementnonlinearstiffnessbehaviorofhumantoejointbasedonfiniteelementanalysis
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