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Construction of Customized Palatal Orthodontic Devices on Skeletal Anchorage Using Biomechanical Modeling

Orthodontic implants have been developed for the implementation of skeletal anchorage and are effectively used in the design of individual orthodontic devices. However, despite a significant amount of clinical research, the biomechanical aspects of the use of skeletal anchorage have not been adequat...

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Autores principales: Suetenkov, Dmitriy, Ivanov, Dmitriy, Dol, Aleksandr, Diachkova, Ekaterina, Vasil’ev, Yuriy, Kossovich, Leonid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8772779/
https://www.ncbi.nlm.nih.gov/pubmed/35049721
http://dx.doi.org/10.3390/bioengineering9010012
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author Suetenkov, Dmitriy
Ivanov, Dmitriy
Dol, Aleksandr
Diachkova, Ekaterina
Vasil’ev, Yuriy
Kossovich, Leonid
author_facet Suetenkov, Dmitriy
Ivanov, Dmitriy
Dol, Aleksandr
Diachkova, Ekaterina
Vasil’ev, Yuriy
Kossovich, Leonid
author_sort Suetenkov, Dmitriy
collection PubMed
description Orthodontic implants have been developed for the implementation of skeletal anchorage and are effectively used in the design of individual orthodontic devices. However, despite a significant amount of clinical research, the biomechanical aspects of the use of skeletal anchorage have not been adequately studied. The aim of this work was to numerically investigate the stress–strain state of the developed palatal orthodontic device supported by mini-implants. Four possible options for the placement of mini-implants in the bone were analyzed. The effect of a chewing load of 100 N on the bite plane was investigated. The study was carried out using biomechanical modeling based on the finite element method. The installation of the palatal orthodontic device fixed on mini-implants with an individual bite plane positioned on was simulated. The dependence of equivalent stresses and deformation changes on the number and location of the supporting mini-implants of the palatal orthodontic device was investigated. Two materials (titanium alloy and stainless steel) of the palatal orthodontic device were also investigated. The choice of a successful treatment option was based on the developed biomechanical criteria for assessing the surgical treatment success. Application of the criteria made it possible to estimate the stability and strength of fixation of each of the considered mini-implants installation options. As a result, options for the mini-implants optimal placement were identified (the first and the fourth which provide distributed front and side support of the device), as well as the preferred material (titanium alloy) for the manufacture of the palatal orthodontic device.
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spelling pubmed-87727792022-01-21 Construction of Customized Palatal Orthodontic Devices on Skeletal Anchorage Using Biomechanical Modeling Suetenkov, Dmitriy Ivanov, Dmitriy Dol, Aleksandr Diachkova, Ekaterina Vasil’ev, Yuriy Kossovich, Leonid Bioengineering (Basel) Article Orthodontic implants have been developed for the implementation of skeletal anchorage and are effectively used in the design of individual orthodontic devices. However, despite a significant amount of clinical research, the biomechanical aspects of the use of skeletal anchorage have not been adequately studied. The aim of this work was to numerically investigate the stress–strain state of the developed palatal orthodontic device supported by mini-implants. Four possible options for the placement of mini-implants in the bone were analyzed. The effect of a chewing load of 100 N on the bite plane was investigated. The study was carried out using biomechanical modeling based on the finite element method. The installation of the palatal orthodontic device fixed on mini-implants with an individual bite plane positioned on was simulated. The dependence of equivalent stresses and deformation changes on the number and location of the supporting mini-implants of the palatal orthodontic device was investigated. Two materials (titanium alloy and stainless steel) of the palatal orthodontic device were also investigated. The choice of a successful treatment option was based on the developed biomechanical criteria for assessing the surgical treatment success. Application of the criteria made it possible to estimate the stability and strength of fixation of each of the considered mini-implants installation options. As a result, options for the mini-implants optimal placement were identified (the first and the fourth which provide distributed front and side support of the device), as well as the preferred material (titanium alloy) for the manufacture of the palatal orthodontic device. MDPI 2022-01-01 /pmc/articles/PMC8772779/ /pubmed/35049721 http://dx.doi.org/10.3390/bioengineering9010012 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Suetenkov, Dmitriy
Ivanov, Dmitriy
Dol, Aleksandr
Diachkova, Ekaterina
Vasil’ev, Yuriy
Kossovich, Leonid
Construction of Customized Palatal Orthodontic Devices on Skeletal Anchorage Using Biomechanical Modeling
title Construction of Customized Palatal Orthodontic Devices on Skeletal Anchorage Using Biomechanical Modeling
title_full Construction of Customized Palatal Orthodontic Devices on Skeletal Anchorage Using Biomechanical Modeling
title_fullStr Construction of Customized Palatal Orthodontic Devices on Skeletal Anchorage Using Biomechanical Modeling
title_full_unstemmed Construction of Customized Palatal Orthodontic Devices on Skeletal Anchorage Using Biomechanical Modeling
title_short Construction of Customized Palatal Orthodontic Devices on Skeletal Anchorage Using Biomechanical Modeling
title_sort construction of customized palatal orthodontic devices on skeletal anchorage using biomechanical modeling
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8772779/
https://www.ncbi.nlm.nih.gov/pubmed/35049721
http://dx.doi.org/10.3390/bioengineering9010012
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