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A finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures

BACKGROUND: Tibial plateau fractures (TPFs) are a challenging type of fracture in orthopedic traumatology. We previously designed a plate (Patent Number: CN201520195596.5) for posterolateral TPF combined with posterior lateral collapse.. In this study, finite element analysis was used to compare the...

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Autores principales: Gao, Shijie, Yao, Quan Cheng, Geng, Lindan, Lu, Jian, Li, Ming, An, Kai, Ren, Guowei, Canavese, Federico, Kim, Seok Jung, Gwam, Chukwuweike, Wang, Pengcheng, Ren, Dong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: AME Publishing Company 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9577803/
https://www.ncbi.nlm.nih.gov/pubmed/36267738
http://dx.doi.org/10.21037/atm-22-4529
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author Gao, Shijie
Yao, Quan Cheng
Geng, Lindan
Lu, Jian
Li, Ming
An, Kai
Ren, Guowei
Canavese, Federico
Kim, Seok Jung
Gwam, Chukwuweike
Wang, Pengcheng
Ren, Dong
author_facet Gao, Shijie
Yao, Quan Cheng
Geng, Lindan
Lu, Jian
Li, Ming
An, Kai
Ren, Guowei
Canavese, Federico
Kim, Seok Jung
Gwam, Chukwuweike
Wang, Pengcheng
Ren, Dong
author_sort Gao, Shijie
collection PubMed
description BACKGROUND: Tibial plateau fractures (TPFs) are a challenging type of fracture in orthopedic traumatology. We previously designed a plate (Patent Number: CN201520195596.5) for posterolateral TPF combined with posterior lateral collapse.. In this study, finite element analysis was used to compare the biomechanical characteristics of two internal fixation methods for posterolateral TPF. We investigated the support effect of the new steel plate on lateral TPFs combined with posterior TPFs. METHODS: Two models of complex TPF were established. Model A was fixed with the new type of plate, and model B was fixed without the plate. Three axial loads of 500, 1,000, and 1,500 N were applied using FEA on the two fracture models (A and B) to analyze the data. RESULTS: In model A, the maximum displacement at 500, 1,000, and 1,500 N was 0.085797, 0.17043, and 0.25465 mm, respectively; the maximum stress of the bone block was 11.285, 20.648, and 29.227 MPa, respectively; and the maximum strain of the bone block was 0.0012474, 0.007435, and 0.0035769 mm, respectively. The maximum displacement of the internal fixation was 0.096932, 0.18682, and 0.27655 mm, respectively; the maximum stress was 69.54, 112.1, and 155.71 MPa, respectively; and the maximum strain was 0.00066228, 0.0010676, and 0.0014829 mm, respectively. In model B, the maximum displacement of fractures at 500, 1,000, and 1,500 N was 0.15675, 0.29868, and 0.44017 mm, respectively; the maximum stress of the bone block was 6.5519, 12.575, and 18.842 MPa, respectively; and the maximum strain of the bone block was 0.0032554, 0.0074357, and 0.012146 mm, respectively. The maximum displacement of the screw was 0.14177, 0.27109, and 0.39849 mm, respectively; the maximum stress was 48.916, 92.251, and 135.27 MPa, respectively; and the maximum strain was 0.00046608, 0.00087893, and 0.0012887 mm, respectively. CONCLUSIONS: The fixation method using this type of plates and screws can replace other methods using two plates to fix complex TPF.
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spelling pubmed-95778032022-10-19 A finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures Gao, Shijie Yao, Quan Cheng Geng, Lindan Lu, Jian Li, Ming An, Kai Ren, Guowei Canavese, Federico Kim, Seok Jung Gwam, Chukwuweike Wang, Pengcheng Ren, Dong Ann Transl Med Original Article BACKGROUND: Tibial plateau fractures (TPFs) are a challenging type of fracture in orthopedic traumatology. We previously designed a plate (Patent Number: CN201520195596.5) for posterolateral TPF combined with posterior lateral collapse.. In this study, finite element analysis was used to compare the biomechanical characteristics of two internal fixation methods for posterolateral TPF. We investigated the support effect of the new steel plate on lateral TPFs combined with posterior TPFs. METHODS: Two models of complex TPF were established. Model A was fixed with the new type of plate, and model B was fixed without the plate. Three axial loads of 500, 1,000, and 1,500 N were applied using FEA on the two fracture models (A and B) to analyze the data. RESULTS: In model A, the maximum displacement at 500, 1,000, and 1,500 N was 0.085797, 0.17043, and 0.25465 mm, respectively; the maximum stress of the bone block was 11.285, 20.648, and 29.227 MPa, respectively; and the maximum strain of the bone block was 0.0012474, 0.007435, and 0.0035769 mm, respectively. The maximum displacement of the internal fixation was 0.096932, 0.18682, and 0.27655 mm, respectively; the maximum stress was 69.54, 112.1, and 155.71 MPa, respectively; and the maximum strain was 0.00066228, 0.0010676, and 0.0014829 mm, respectively. In model B, the maximum displacement of fractures at 500, 1,000, and 1,500 N was 0.15675, 0.29868, and 0.44017 mm, respectively; the maximum stress of the bone block was 6.5519, 12.575, and 18.842 MPa, respectively; and the maximum strain of the bone block was 0.0032554, 0.0074357, and 0.012146 mm, respectively. The maximum displacement of the screw was 0.14177, 0.27109, and 0.39849 mm, respectively; the maximum stress was 48.916, 92.251, and 135.27 MPa, respectively; and the maximum strain was 0.00046608, 0.00087893, and 0.0012887 mm, respectively. CONCLUSIONS: The fixation method using this type of plates and screws can replace other methods using two plates to fix complex TPF. AME Publishing Company 2022-09 /pmc/articles/PMC9577803/ /pubmed/36267738 http://dx.doi.org/10.21037/atm-22-4529 Text en 2022 Annals of Translational Medicine. All rights reserved. https://creativecommons.org/licenses/by-nc-nd/4.0/Open Access Statement: This is an Open Access article distributed in accordance with the Creative Commons Attribution-NonCommercial-NoDerivs 4.0 International License (CC BY-NC-ND 4.0), which permits the non-commercial replication and distribution of the article with the strict proviso that no changes or edits are made and the original work is properly cited (including links to both the formal publication through the relevant DOI and the license). See: https://creativecommons.org/licenses/by-nc-nd/4.0 (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Original Article
Gao, Shijie
Yao, Quan Cheng
Geng, Lindan
Lu, Jian
Li, Ming
An, Kai
Ren, Guowei
Canavese, Federico
Kim, Seok Jung
Gwam, Chukwuweike
Wang, Pengcheng
Ren, Dong
A finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures
title A finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures
title_full A finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures
title_fullStr A finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures
title_full_unstemmed A finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures
title_short A finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures
title_sort finite element analysis of the supportive effect of a new type of rotary support plate on lateral tibial plateau fractures
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9577803/
https://www.ncbi.nlm.nih.gov/pubmed/36267738
http://dx.doi.org/10.21037/atm-22-4529
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