Three dimensional finite element modelling and analysis of human knee joint-model verification

Modelling a three dimensional (3D) model of a human knee joint by extracting the region of interest accurately is one of the main constraints. Oversimplified bone models from previous studies that could affect the accuracy of analyses have become current concerns. An approach to minimize the issue c...

Full description

Saved in:
Bibliographic Details
Main Authors: Abidin, N. A. Z., Abdul Kadir, M. R., Ramlee, M. H.
Format: Conference or Workshop Item
Language:English
Published: 2019
Subjects:
Online Access:http://eprints.utm.my/id/eprint/91436/1/MohammedRafiqKadir2019_DimensionalFiniteElement.pdf
http://eprints.utm.my/id/eprint/91436/
http://www.dx.doi.org/10.1088/1742-6596/1372/1/012068
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.utm.91436
record_format eprints
spelling my.utm.914362021-06-30T12:16:22Z http://eprints.utm.my/id/eprint/91436/ Three dimensional finite element modelling and analysis of human knee joint-model verification Abidin, N. A. Z. Abdul Kadir, M. R. Ramlee, M. H. QC Physics Modelling a three dimensional (3D) model of a human knee joint by extracting the region of interest accurately is one of the main constraints. Oversimplified bone models from previous studies that could affect the accuracy of analyses have become current concerns. An approach to minimize the issue consisting of several steps were done. This study aim to analyse a more precise human knee joint model using finite element technique. Reconstruction of 3D knee models were done by segmenting Computed Tomography (CT) data of a healthy male. Cancellous and cortical bones were segmented based on the Hounsfield unit (HU). The model of knee consists of femur and tibia bones, cartilages and ligaments. Construction of cartilages were done by extracting and offsetting bone layers. Linear spring elements were used to model four ligaments at the knee joint. In order to verify the models, finite element analyses were carried out. Forces ranging between 100 until 1000 N were axially applied on the proximal femur. The results in this study were in an agreement with previous literature reports with maximum peak VMS of 2.928 MPa and 3.25 MPa respectively at articular cartilages. It can be concluded that the knee models were verified. 2019 Conference or Workshop Item PeerReviewed application/pdf en http://eprints.utm.my/id/eprint/91436/1/MohammedRafiqKadir2019_DimensionalFiniteElement.pdf Abidin, N. A. Z. and Abdul Kadir, M. R. and Ramlee, M. H. (2019) Three dimensional finite element modelling and analysis of human knee joint-model verification. In: International Conference on Biomedical Engineering, ICoBE 2019, 26-27 Aug 2019, Penang Island, Malaysia. http://www.dx.doi.org/10.1088/1742-6596/1372/1/012068
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
language English
topic QC Physics
spellingShingle QC Physics
Abidin, N. A. Z.
Abdul Kadir, M. R.
Ramlee, M. H.
Three dimensional finite element modelling and analysis of human knee joint-model verification
description Modelling a three dimensional (3D) model of a human knee joint by extracting the region of interest accurately is one of the main constraints. Oversimplified bone models from previous studies that could affect the accuracy of analyses have become current concerns. An approach to minimize the issue consisting of several steps were done. This study aim to analyse a more precise human knee joint model using finite element technique. Reconstruction of 3D knee models were done by segmenting Computed Tomography (CT) data of a healthy male. Cancellous and cortical bones were segmented based on the Hounsfield unit (HU). The model of knee consists of femur and tibia bones, cartilages and ligaments. Construction of cartilages were done by extracting and offsetting bone layers. Linear spring elements were used to model four ligaments at the knee joint. In order to verify the models, finite element analyses were carried out. Forces ranging between 100 until 1000 N were axially applied on the proximal femur. The results in this study were in an agreement with previous literature reports with maximum peak VMS of 2.928 MPa and 3.25 MPa respectively at articular cartilages. It can be concluded that the knee models were verified.
format Conference or Workshop Item
author Abidin, N. A. Z.
Abdul Kadir, M. R.
Ramlee, M. H.
author_facet Abidin, N. A. Z.
Abdul Kadir, M. R.
Ramlee, M. H.
author_sort Abidin, N. A. Z.
title Three dimensional finite element modelling and analysis of human knee joint-model verification
title_short Three dimensional finite element modelling and analysis of human knee joint-model verification
title_full Three dimensional finite element modelling and analysis of human knee joint-model verification
title_fullStr Three dimensional finite element modelling and analysis of human knee joint-model verification
title_full_unstemmed Three dimensional finite element modelling and analysis of human knee joint-model verification
title_sort three dimensional finite element modelling and analysis of human knee joint-model verification
publishDate 2019
url http://eprints.utm.my/id/eprint/91436/1/MohammedRafiqKadir2019_DimensionalFiniteElement.pdf
http://eprints.utm.my/id/eprint/91436/
http://www.dx.doi.org/10.1088/1742-6596/1372/1/012068
_version_ 1705056713390948352
score 13.211869