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A New Method Combining Finite Element Analysis and Digital Image Correlation to Assess Macroscopic Mechanical Properties of Dentin

A literature review points out a large discrepancy in the results of the mechanical tests on dentin that can be explained by stress and strain assessment during the tests. Errors in these assessments during mechanical tests can lead to inaccurate estimation of the mechanical properties of the tested...

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Autores principales: Wang, Wenlong, Roubier, Nicolas, Puel, Guillaume, Allain, Jean-Marc, Infante, Ingrid C., Attal, Jean-Pierre., Vennat, Elsa.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5455261/
https://www.ncbi.nlm.nih.gov/pubmed/28787955
http://dx.doi.org/10.3390/ma8020535
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author Wang, Wenlong
Roubier, Nicolas
Puel, Guillaume
Allain, Jean-Marc
Infante, Ingrid C.
Attal, Jean-Pierre.
Vennat, Elsa.
author_facet Wang, Wenlong
Roubier, Nicolas
Puel, Guillaume
Allain, Jean-Marc
Infante, Ingrid C.
Attal, Jean-Pierre.
Vennat, Elsa.
author_sort Wang, Wenlong
collection PubMed
description A literature review points out a large discrepancy in the results of the mechanical tests on dentin that can be explained by stress and strain assessment during the tests. Errors in these assessments during mechanical tests can lead to inaccurate estimation of the mechanical properties of the tested material. On top of that, using the beam theory to analyze the bending test for thick specimens will increase these experimental errors. After summarizing the results of mechanical tests on dentin in the literature, we focus on bending tests and compare the stress assessment obtained by finite element analysis (FEA) and by beam theory application. We show that the difference between the two methods can be quite large in some cases, leading us to prefer the use of FEA to assess stresses. We then propose a new method based on coupling finite element analysis and digital image correlation (DIC) to more accurately evaluate stress distributions, strain distributions and elastic modulus in the case of a three-point bending test. To illustrate and prove the feasibility of the method, it is applied on a dentinal sample so that mean elastic modulus and maximum tensile stress are obtained (11.9 GPa and 143.9 MPa). Note that the main purpose of this study is to focus on the method itself, and not to provide new mechanical values for dentin. When used in standard mechanical testing of dentin, this kind of method should help to narrow the range of obtained mechanical properties values.
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spelling pubmed-54552612017-07-28 A New Method Combining Finite Element Analysis and Digital Image Correlation to Assess Macroscopic Mechanical Properties of Dentin Wang, Wenlong Roubier, Nicolas Puel, Guillaume Allain, Jean-Marc Infante, Ingrid C. Attal, Jean-Pierre. Vennat, Elsa. Materials (Basel) Article A literature review points out a large discrepancy in the results of the mechanical tests on dentin that can be explained by stress and strain assessment during the tests. Errors in these assessments during mechanical tests can lead to inaccurate estimation of the mechanical properties of the tested material. On top of that, using the beam theory to analyze the bending test for thick specimens will increase these experimental errors. After summarizing the results of mechanical tests on dentin in the literature, we focus on bending tests and compare the stress assessment obtained by finite element analysis (FEA) and by beam theory application. We show that the difference between the two methods can be quite large in some cases, leading us to prefer the use of FEA to assess stresses. We then propose a new method based on coupling finite element analysis and digital image correlation (DIC) to more accurately evaluate stress distributions, strain distributions and elastic modulus in the case of a three-point bending test. To illustrate and prove the feasibility of the method, it is applied on a dentinal sample so that mean elastic modulus and maximum tensile stress are obtained (11.9 GPa and 143.9 MPa). Note that the main purpose of this study is to focus on the method itself, and not to provide new mechanical values for dentin. When used in standard mechanical testing of dentin, this kind of method should help to narrow the range of obtained mechanical properties values. MDPI 2015-02-06 /pmc/articles/PMC5455261/ /pubmed/28787955 http://dx.doi.org/10.3390/ma8020535 Text en © 2015 by the authors; licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wang, Wenlong
Roubier, Nicolas
Puel, Guillaume
Allain, Jean-Marc
Infante, Ingrid C.
Attal, Jean-Pierre.
Vennat, Elsa.
A New Method Combining Finite Element Analysis and Digital Image Correlation to Assess Macroscopic Mechanical Properties of Dentin
title A New Method Combining Finite Element Analysis and Digital Image Correlation to Assess Macroscopic Mechanical Properties of Dentin
title_full A New Method Combining Finite Element Analysis and Digital Image Correlation to Assess Macroscopic Mechanical Properties of Dentin
title_fullStr A New Method Combining Finite Element Analysis and Digital Image Correlation to Assess Macroscopic Mechanical Properties of Dentin
title_full_unstemmed A New Method Combining Finite Element Analysis and Digital Image Correlation to Assess Macroscopic Mechanical Properties of Dentin
title_short A New Method Combining Finite Element Analysis and Digital Image Correlation to Assess Macroscopic Mechanical Properties of Dentin
title_sort new method combining finite element analysis and digital image correlation to assess macroscopic mechanical properties of dentin
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5455261/
https://www.ncbi.nlm.nih.gov/pubmed/28787955
http://dx.doi.org/10.3390/ma8020535
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