Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg

The transtibial Prosthetic Socket serves as the primary connection between the residual limb of an amputee and the prosthesis. The socket must provide a secure and stable base for the amputee to bear their body weight and move around comfortably. Topological optimization is a process that aims to im...

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Published in:INTERNATIONAL JOURNAL OF TECHNOLOGY
Main Authors: Norli, Mohd Hazwan Mohamed; Sukimi, Ahmad Kamil Adib; Ramlee, Muhammad Hanif; Mahmud, Jamaluddin; Abdullah, Abdul Halim
Format: Article
Language:English
Published: UNIV INDONESIA, FAC ENGINEERING 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001158487800015
author Norli
Mohd Hazwan Mohamed; Sukimi
Ahmad Kamil Adib; Ramlee
Muhammad Hanif; Mahmud
Jamaluddin; Abdullah
Abdul Halim
spellingShingle Norli
Mohd Hazwan Mohamed; Sukimi
Ahmad Kamil Adib; Ramlee
Muhammad Hanif; Mahmud
Jamaluddin; Abdullah
Abdul Halim
Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg
Engineering
author_facet Norli
Mohd Hazwan Mohamed; Sukimi
Ahmad Kamil Adib; Ramlee
Muhammad Hanif; Mahmud
Jamaluddin; Abdullah
Abdul Halim
author_sort Norli
spelling Norli, Mohd Hazwan Mohamed; Sukimi, Ahmad Kamil Adib; Ramlee, Muhammad Hanif; Mahmud, Jamaluddin; Abdullah, Abdul Halim
Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg
INTERNATIONAL JOURNAL OF TECHNOLOGY
English
Article
The transtibial Prosthetic Socket serves as the primary connection between the residual limb of an amputee and the prosthesis. The socket must provide a secure and stable base for the amputee to bear their body weight and move around comfortably. Topological optimization is a process that aims to improve the mechanical properties of the prosthetic socket. It involves designing a structure that minimizes stress concentrations and maximizes strength while using the least amount of material. The objective of this study is to improve the parametric design of the transtibial socket prosthesis through topology optimization and determine the stress performance of 3D-printed transtibial sockets using static structural analysis. The method used is Finite Element Analysis (FEA) simulations of forces onto the socket during phases of walking on different topology-optimized socket designs and using the same material, which is ABS. Furthermore, the results were analyzed through static structural analysis using ANSYS software. The analysis revealed that a reduction in the weight of the model correlates with an increase in stress thus may contribute to material fatigue and reducing long term performance
UNIV INDONESIA, FAC ENGINEERING
2086-9614
2087-2100
2024
15
2
10.14716/ijtech.v15i2.6711
Engineering
gold
WOS:001158487800015
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001158487800015
title Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg
title_short Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg
title_full Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg
title_fullStr Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg
title_full_unstemmed Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg
title_sort Static Structural Analysis on Different Topology Optimization Transtibial Prosthetic Socket Leg
container_title INTERNATIONAL JOURNAL OF TECHNOLOGY
language English
format Article
description The transtibial Prosthetic Socket serves as the primary connection between the residual limb of an amputee and the prosthesis. The socket must provide a secure and stable base for the amputee to bear their body weight and move around comfortably. Topological optimization is a process that aims to improve the mechanical properties of the prosthetic socket. It involves designing a structure that minimizes stress concentrations and maximizes strength while using the least amount of material. The objective of this study is to improve the parametric design of the transtibial socket prosthesis through topology optimization and determine the stress performance of 3D-printed transtibial sockets using static structural analysis. The method used is Finite Element Analysis (FEA) simulations of forces onto the socket during phases of walking on different topology-optimized socket designs and using the same material, which is ABS. Furthermore, the results were analyzed through static structural analysis using ANSYS software. The analysis revealed that a reduction in the weight of the model correlates with an increase in stress thus may contribute to material fatigue and reducing long term performance
publisher UNIV INDONESIA, FAC ENGINEERING
issn 2086-9614
2087-2100
publishDate 2024
container_volume 15
container_issue 2
doi_str_mv 10.14716/ijtech.v15i2.6711
topic Engineering
topic_facet Engineering
accesstype gold
id WOS:001158487800015
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001158487800015
record_format wos
collection Web of Science (WoS)
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