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Anatomical Thin Titanium Mesh Plate Structural Optimization for Zygomatic-Maxillary Complex Fracture under Fatigue Testing

This study performs a structural optimization of anatomical thin titanium mesh (ATTM) plate and optimal designed ATTM plate fabricated using additive manufacturing (AM) to verify its stabilization under fatigue testing. Finite element (FE) analysis was used to simulate the structural bending resista...

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Autores principales: Wang, Yu-Tzu, Huang, Shao-Fu, Fang, Yu-Ting, Huang, Shou-Chieh, Cheng, Hwei-Fang, Chen, Chih-Hao, Wang, Po-Fang, Lin, Chun-Li
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5985082/
https://www.ncbi.nlm.nih.gov/pubmed/29888286
http://dx.doi.org/10.1155/2018/9398647
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author Wang, Yu-Tzu
Huang, Shao-Fu
Fang, Yu-Ting
Huang, Shou-Chieh
Cheng, Hwei-Fang
Chen, Chih-Hao
Wang, Po-Fang
Lin, Chun-Li
author_facet Wang, Yu-Tzu
Huang, Shao-Fu
Fang, Yu-Ting
Huang, Shou-Chieh
Cheng, Hwei-Fang
Chen, Chih-Hao
Wang, Po-Fang
Lin, Chun-Li
author_sort Wang, Yu-Tzu
collection PubMed
description This study performs a structural optimization of anatomical thin titanium mesh (ATTM) plate and optimal designed ATTM plate fabricated using additive manufacturing (AM) to verify its stabilization under fatigue testing. Finite element (FE) analysis was used to simulate the structural bending resistance of a regular ATTM plate. The Taguchi method was employed to identify the significance of each design factor in controlling the deflection and determine an optimal combination of designed factors. The optimal designed ATTM plate with patient-matched facial contour was fabricated using AM and applied to a ZMC comminuted fracture to evaluate the resting maxillary micromotion/strain under fatigue testing. The Taguchi analysis found that the ATTM plate required a designed internal hole distance to be 0.9 mm, internal hole diameter to be 1 mm, plate thickness to be 0.8 mm, and plate height to be 10 mm. The designed plate thickness factor primarily dominated the bending resistance up to 78% importance. The averaged micromotion (displacement) and strain of the maxillary bone showed that ZMC fracture fixation using the miniplate was significantly higher than those using the AM optimal designed ATTM plate. This study concluded that the optimal designed ATTM plate with enough strength to resist the bending effect can be obtained by combining FE and Taguchi analyses. The optimal designed ATTM plate with patient-matched facial contour fabricated using AM provides superior stabilization for ZMC comminuted fractured bone segments.
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spelling pubmed-59850822018-06-10 Anatomical Thin Titanium Mesh Plate Structural Optimization for Zygomatic-Maxillary Complex Fracture under Fatigue Testing Wang, Yu-Tzu Huang, Shao-Fu Fang, Yu-Ting Huang, Shou-Chieh Cheng, Hwei-Fang Chen, Chih-Hao Wang, Po-Fang Lin, Chun-Li Biomed Res Int Research Article This study performs a structural optimization of anatomical thin titanium mesh (ATTM) plate and optimal designed ATTM plate fabricated using additive manufacturing (AM) to verify its stabilization under fatigue testing. Finite element (FE) analysis was used to simulate the structural bending resistance of a regular ATTM plate. The Taguchi method was employed to identify the significance of each design factor in controlling the deflection and determine an optimal combination of designed factors. The optimal designed ATTM plate with patient-matched facial contour was fabricated using AM and applied to a ZMC comminuted fracture to evaluate the resting maxillary micromotion/strain under fatigue testing. The Taguchi analysis found that the ATTM plate required a designed internal hole distance to be 0.9 mm, internal hole diameter to be 1 mm, plate thickness to be 0.8 mm, and plate height to be 10 mm. The designed plate thickness factor primarily dominated the bending resistance up to 78% importance. The averaged micromotion (displacement) and strain of the maxillary bone showed that ZMC fracture fixation using the miniplate was significantly higher than those using the AM optimal designed ATTM plate. This study concluded that the optimal designed ATTM plate with enough strength to resist the bending effect can be obtained by combining FE and Taguchi analyses. The optimal designed ATTM plate with patient-matched facial contour fabricated using AM provides superior stabilization for ZMC comminuted fractured bone segments. Hindawi 2018-05-20 /pmc/articles/PMC5985082/ /pubmed/29888286 http://dx.doi.org/10.1155/2018/9398647 Text en Copyright © 2018 Yu-Tzu Wang et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Wang, Yu-Tzu
Huang, Shao-Fu
Fang, Yu-Ting
Huang, Shou-Chieh
Cheng, Hwei-Fang
Chen, Chih-Hao
Wang, Po-Fang
Lin, Chun-Li
Anatomical Thin Titanium Mesh Plate Structural Optimization for Zygomatic-Maxillary Complex Fracture under Fatigue Testing
title Anatomical Thin Titanium Mesh Plate Structural Optimization for Zygomatic-Maxillary Complex Fracture under Fatigue Testing
title_full Anatomical Thin Titanium Mesh Plate Structural Optimization for Zygomatic-Maxillary Complex Fracture under Fatigue Testing
title_fullStr Anatomical Thin Titanium Mesh Plate Structural Optimization for Zygomatic-Maxillary Complex Fracture under Fatigue Testing
title_full_unstemmed Anatomical Thin Titanium Mesh Plate Structural Optimization for Zygomatic-Maxillary Complex Fracture under Fatigue Testing
title_short Anatomical Thin Titanium Mesh Plate Structural Optimization for Zygomatic-Maxillary Complex Fracture under Fatigue Testing
title_sort anatomical thin titanium mesh plate structural optimization for zygomatic-maxillary complex fracture under fatigue testing
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5985082/
https://www.ncbi.nlm.nih.gov/pubmed/29888286
http://dx.doi.org/10.1155/2018/9398647
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