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Influence of Resin Cement Thickness and Elastic Modulus on the Stress Distribution of Zirconium Dioxide Inlay-Bridge: 3D Finite Element Analysis

The mechanical properties and the thickness of the resin cement agents used for bonding inlay bridges can modify the clinical performance of the restoration such as debonding or prosthetic materials fracture. Thus, the aim of this study was to evaluate the stress distribution and the maximum strain...

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Autores principales: Assaf, Joseph, Hardan, Louis, Kassis, Cynthia, Bourgi, Rim, Devoto, Walter, Amm, Elie, Moussa, Carol, Sawicki, Jacek, Lukomska-Szymanska, Monika
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8625147/
https://www.ncbi.nlm.nih.gov/pubmed/34833162
http://dx.doi.org/10.3390/polym13223863
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author Assaf, Joseph
Hardan, Louis
Kassis, Cynthia
Bourgi, Rim
Devoto, Walter
Amm, Elie
Moussa, Carol
Sawicki, Jacek
Lukomska-Szymanska, Monika
author_facet Assaf, Joseph
Hardan, Louis
Kassis, Cynthia
Bourgi, Rim
Devoto, Walter
Amm, Elie
Moussa, Carol
Sawicki, Jacek
Lukomska-Szymanska, Monika
author_sort Assaf, Joseph
collection PubMed
description The mechanical properties and the thickness of the resin cement agents used for bonding inlay bridges can modify the clinical performance of the restoration such as debonding or prosthetic materials fracture. Thus, the aim of this study was to evaluate the stress distribution and the maximum strain generated by resin cements with different elastic moduli and thicknesses used to cement resin-bonded fixed partial denture (RBFPD). A three-dimensional (3D) finite element analysis (FEA) was used, and a 3D model was created based on a Cone-Beam Computed Tomography system (CBCT). The model was analyzed by the Ansys software. The model fixation occurred at the root of the abutment teeth and an axial load of 300 N was applied on the occlusal surface of the pontic. The highest stress value was observed for the Variolink 0.4 group (1.76 × 10(6) Pa), while the lowest was noted for the Panavia 0.2 group (1.07 × 10(6) Pa). Furthermore, the highest total deformation value was found for the Variolink 0.2 group (3.36 × 10(−4) m), while the lowest was observed for the Panavia 0.4 group (2.33 × 10(−4) m). By means of this FEA, 0.2 mm layer Panavia F2.0 seemed to exhibit a more favorable stress distribution when used for cementation of posterior zirconium-dioxide-based RBFPD. However, both studied materials possessed clinically acceptable properties.
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spelling pubmed-86251472021-11-27 Influence of Resin Cement Thickness and Elastic Modulus on the Stress Distribution of Zirconium Dioxide Inlay-Bridge: 3D Finite Element Analysis Assaf, Joseph Hardan, Louis Kassis, Cynthia Bourgi, Rim Devoto, Walter Amm, Elie Moussa, Carol Sawicki, Jacek Lukomska-Szymanska, Monika Polymers (Basel) Article The mechanical properties and the thickness of the resin cement agents used for bonding inlay bridges can modify the clinical performance of the restoration such as debonding or prosthetic materials fracture. Thus, the aim of this study was to evaluate the stress distribution and the maximum strain generated by resin cements with different elastic moduli and thicknesses used to cement resin-bonded fixed partial denture (RBFPD). A three-dimensional (3D) finite element analysis (FEA) was used, and a 3D model was created based on a Cone-Beam Computed Tomography system (CBCT). The model was analyzed by the Ansys software. The model fixation occurred at the root of the abutment teeth and an axial load of 300 N was applied on the occlusal surface of the pontic. The highest stress value was observed for the Variolink 0.4 group (1.76 × 10(6) Pa), while the lowest was noted for the Panavia 0.2 group (1.07 × 10(6) Pa). Furthermore, the highest total deformation value was found for the Variolink 0.2 group (3.36 × 10(−4) m), while the lowest was observed for the Panavia 0.4 group (2.33 × 10(−4) m). By means of this FEA, 0.2 mm layer Panavia F2.0 seemed to exhibit a more favorable stress distribution when used for cementation of posterior zirconium-dioxide-based RBFPD. However, both studied materials possessed clinically acceptable properties. MDPI 2021-11-09 /pmc/articles/PMC8625147/ /pubmed/34833162 http://dx.doi.org/10.3390/polym13223863 Text en © 2021 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
Assaf, Joseph
Hardan, Louis
Kassis, Cynthia
Bourgi, Rim
Devoto, Walter
Amm, Elie
Moussa, Carol
Sawicki, Jacek
Lukomska-Szymanska, Monika
Influence of Resin Cement Thickness and Elastic Modulus on the Stress Distribution of Zirconium Dioxide Inlay-Bridge: 3D Finite Element Analysis
title Influence of Resin Cement Thickness and Elastic Modulus on the Stress Distribution of Zirconium Dioxide Inlay-Bridge: 3D Finite Element Analysis
title_full Influence of Resin Cement Thickness and Elastic Modulus on the Stress Distribution of Zirconium Dioxide Inlay-Bridge: 3D Finite Element Analysis
title_fullStr Influence of Resin Cement Thickness and Elastic Modulus on the Stress Distribution of Zirconium Dioxide Inlay-Bridge: 3D Finite Element Analysis
title_full_unstemmed Influence of Resin Cement Thickness and Elastic Modulus on the Stress Distribution of Zirconium Dioxide Inlay-Bridge: 3D Finite Element Analysis
title_short Influence of Resin Cement Thickness and Elastic Modulus on the Stress Distribution of Zirconium Dioxide Inlay-Bridge: 3D Finite Element Analysis
title_sort influence of resin cement thickness and elastic modulus on the stress distribution of zirconium dioxide inlay-bridge: 3d finite element analysis
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8625147/
https://www.ncbi.nlm.nih.gov/pubmed/34833162
http://dx.doi.org/10.3390/polym13223863
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