Design and analysis of interbody fusion cage materials based on finite element analysis
This study investigates the effect of the Posterior Lumbar Interbody Fusion (PLIF) cage's material on the strength and stability of the cage. The lumbar vertebrae L2-L3 unit finite element model was developed from computed tomography (CT) scan images in 3D Slicer software. The PLIF cage model w...
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Format: | Conference or Workshop Item |
Language: | English English |
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Institute of Electrical and Electronics Engineers Inc.
2021
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Subjects: | |
Online Access: | http://umpir.ump.edu.my/id/eprint/42413/1/Design%20and%20analysis%20of%20interbody%20fusion%20cage%20materials.pdf http://umpir.ump.edu.my/id/eprint/42413/2/Design%20and%20analysis%20of%20interbody%20fusion%20cage%20materials%20based%20on%20finite%20element%20analysis_ABS.pdf |
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author | Nur Ariza Hayani, Mohd Nizam Muhammad Hazli, Mazlan Nur Saliha, Md Salleh Muhammad Anas, Razali Abdul Halim, Abdullah Muhammad Hilmi, Jalil Takano, Hiromitsu Nur Dalilah Diyana, Nordin |
author_facet | Nur Ariza Hayani, Mohd Nizam Muhammad Hazli, Mazlan Nur Saliha, Md Salleh Muhammad Anas, Razali Abdul Halim, Abdullah Muhammad Hilmi, Jalil Takano, Hiromitsu Nur Dalilah Diyana, Nordin |
author_sort | Nur Ariza Hayani, Mohd Nizam |
collection | UMP |
description | This study investigates the effect of the Posterior Lumbar Interbody Fusion (PLIF) cage's material on the strength and stability of the cage. The lumbar vertebrae L2-L3 unit finite element model was developed from computed tomography (CT) scan images in 3D Slicer software. The PLIF cage model was constructed using Solidworks software. The models were assigned with polyetheretherketone (PEEK) and polylactic acid (PLA) materials. The models were implanted and analyzed in Ansys Workbench Software by applying external preload, compression load and other load conditions to mimic the spine physiological motions under static and dynamic analysis. The von Mises stress and maximum principal stress were observed and analyzed to evaluate their strength and stability. In addition, the percentage differences between the von Mises stress and yield strength of the material and between the maximum principal stress and critical strength of the material were calculated. The PEEK cage produced higher von Mises stresses than the PLA cage for the static analysis. However, the PEEK cage exhibited lower percentage differences than the PLA cage. This result indicates that the PEEK cage has the superior structural integrity to the PLA interbody cage. The results from the dynamic analysis showed that both cages exhibited extremely low von Mises stresses and similar curve patterns. These results indicate that both cages are stable and do not pose harmful health implications. Thus, PLA can be considered an alternative material for the cage because it is more cost-effective than the PEEK material, and stresses generated were far lower than the ultimate tensile strength and yield strength of the material. |
first_indexed | 2024-12-09T02:30:09Z |
format | Conference or Workshop Item |
id | UMPir42413 |
institution | Universiti Malaysia Pahang |
language | English English |
last_indexed | 2024-12-09T02:30:09Z |
publishDate | 2021 |
publisher | Institute of Electrical and Electronics Engineers Inc. |
record_format | dspace |
spelling | UMPir424132024-10-30T04:41:48Z http://umpir.ump.edu.my/id/eprint/42413/ Design and analysis of interbody fusion cage materials based on finite element analysis Nur Ariza Hayani, Mohd Nizam Muhammad Hazli, Mazlan Nur Saliha, Md Salleh Muhammad Anas, Razali Abdul Halim, Abdullah Muhammad Hilmi, Jalil Takano, Hiromitsu Nur Dalilah Diyana, Nordin T Technology (General) TA Engineering (General). Civil engineering (General) TJ Mechanical engineering and machinery TL Motor vehicles. Aeronautics. Astronautics This study investigates the effect of the Posterior Lumbar Interbody Fusion (PLIF) cage's material on the strength and stability of the cage. The lumbar vertebrae L2-L3 unit finite element model was developed from computed tomography (CT) scan images in 3D Slicer software. The PLIF cage model was constructed using Solidworks software. The models were assigned with polyetheretherketone (PEEK) and polylactic acid (PLA) materials. The models were implanted and analyzed in Ansys Workbench Software by applying external preload, compression load and other load conditions to mimic the spine physiological motions under static and dynamic analysis. The von Mises stress and maximum principal stress were observed and analyzed to evaluate their strength and stability. In addition, the percentage differences between the von Mises stress and yield strength of the material and between the maximum principal stress and critical strength of the material were calculated. The PEEK cage produced higher von Mises stresses than the PLA cage for the static analysis. However, the PEEK cage exhibited lower percentage differences than the PLA cage. This result indicates that the PEEK cage has the superior structural integrity to the PLA interbody cage. The results from the dynamic analysis showed that both cages exhibited extremely low von Mises stresses and similar curve patterns. These results indicate that both cages are stable and do not pose harmful health implications. Thus, PLA can be considered an alternative material for the cage because it is more cost-effective than the PEEK material, and stresses generated were far lower than the ultimate tensile strength and yield strength of the material. Institute of Electrical and Electronics Engineers Inc. 2021 Conference or Workshop Item PeerReviewed pdf en http://umpir.ump.edu.my/id/eprint/42413/1/Design%20and%20analysis%20of%20interbody%20fusion%20cage%20materials.pdf pdf en http://umpir.ump.edu.my/id/eprint/42413/2/Design%20and%20analysis%20of%20interbody%20fusion%20cage%20materials%20based%20on%20finite%20element%20analysis_ABS.pdf Nur Ariza Hayani, Mohd Nizam and Muhammad Hazli, Mazlan and Nur Saliha, Md Salleh and Muhammad Anas, Razali and Abdul Halim, Abdullah and Muhammad Hilmi, Jalil and Takano, Hiromitsu and Nur Dalilah Diyana, Nordin (2021) Design and analysis of interbody fusion cage materials based on finite element analysis. In: 1st National Biomedical Engineering Conference, NBEC 2021. 1st National Biomedical Engineering Conference, NBEC 2021 , 9 - 10 November 2021 , Virtual, Online. pp. 7-12.. ISBN 978-166543607-6 (Published) https://doi.org/10.1109/NBEC53282.2021.9618720 |
spellingShingle | T Technology (General) TA Engineering (General). Civil engineering (General) TJ Mechanical engineering and machinery TL Motor vehicles. Aeronautics. Astronautics Nur Ariza Hayani, Mohd Nizam Muhammad Hazli, Mazlan Nur Saliha, Md Salleh Muhammad Anas, Razali Abdul Halim, Abdullah Muhammad Hilmi, Jalil Takano, Hiromitsu Nur Dalilah Diyana, Nordin Design and analysis of interbody fusion cage materials based on finite element analysis |
title | Design and analysis of interbody fusion cage materials based on finite element analysis |
title_full | Design and analysis of interbody fusion cage materials based on finite element analysis |
title_fullStr | Design and analysis of interbody fusion cage materials based on finite element analysis |
title_full_unstemmed | Design and analysis of interbody fusion cage materials based on finite element analysis |
title_short | Design and analysis of interbody fusion cage materials based on finite element analysis |
title_sort | design and analysis of interbody fusion cage materials based on finite element analysis |
topic | T Technology (General) TA Engineering (General). Civil engineering (General) TJ Mechanical engineering and machinery TL Motor vehicles. Aeronautics. Astronautics |
url | http://umpir.ump.edu.my/id/eprint/42413/1/Design%20and%20analysis%20of%20interbody%20fusion%20cage%20materials.pdf http://umpir.ump.edu.my/id/eprint/42413/2/Design%20and%20analysis%20of%20interbody%20fusion%20cage%20materials%20based%20on%20finite%20element%20analysis_ABS.pdf |
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