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Interpreting finite element results for brittle materials in endodontic restorations

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TLDR
It is concluded that the Christensen criterion is recommended for FEM result interpretation in endodontic restorations and that the flexural test is recommended to estimate tensile strength instead of the diametral tensile test.
Abstract
Finite element simulation has been used in last years for analysing the biomechanical performance of post-core restorations in endodontics, but results of these simulations have been interpreted in most of the works using von Mises stress criterion. However, the validity of this failure criterion for brittle materials, which are present in these restorations, is questionable. The objective of the paper is to analyse how finite element results for brittle materials of endodontic restorations should be interpreted to obtain correct conclusions about the possible failure in the restoration. Different failure criteria (Von Mises, Rankine, Coulomb-Mohr, Modified Mohr and Christensen) and material strength data (diametral tensile strength and flexural strength) were considered in the study. Three finite element models (FEM) were developed to simulate an endodontic restoration and two typical material tests: diametral tensile test and flexural test. Results showed that the Christensen criterion predicts similar results as the Von Mises criterion for ductile components, while it predicts similar results to all other criteria for brittle components. The different criteria predict different failure points for the diametral tensile test, all of them under multi-axial stress states. All criteria except Von Mises predict failure for flexural test at the same point of the specimen, with this point under uniaxial tensile stress. From the results it is concluded that the Christensen criterion is recommended for FEM result interpretation in endodontic restorations and that the flexural test is recommended to estimate tensile strength instead of the diametral tensile test.

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References
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Book

Restorative dental materials

TL;DR: Restorative dental materials, Restorative dental Materials , کتابخانه دیجیتال جندی شاپور اهواز
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Mechanical properties and microstructures of glass-ionomer cements.

TL;DR: The mechanical properties of GICs were closely related to their microstructures, and the more integrated the microstructure, the higher were the FS and DTS.
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Finite element analysis of a glass fibre reinforced composite endodontic post

TL;DR: In this work the mechanical response to external applied loads of a new glass fibre reinforced endodontic post is simulated by finite element (FE) analysis of a bidimensional model to avoid edges that could act as undesired stress concentrators.
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Finite element analysis of stresses in endodontically treated, dowel-restored teeth

TL;DR: Within the limitations of this study, it was found that all investigated dowel-related factors influenced the stress field generated in dowEL-restored teeth.
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Influence of Test Method on Failure Stress of Brittle Dental Materials

TL;DR: The results demonstrate that the strength of zinc phosphate cement depends not only upon the geometric factors, but also upon sample preparation conditions.