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Modeling of damage driven fracture failure of fiber post-restored teeth

机译:抗衰竭牙齿损伤损伤损伤的建模

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摘要

Mechanical failure of biomaterials, which can be initiated by either violent force, or progressive stress fatigue, is a serious issue. Great efforts have been made to improve the mechanical performances of dental restorations. Virtual simulation is a promising approach for biomechanical investigations, which presents significant advantages in improving efficiency than traditional in vivo/in vitro studies. Over the past few decades, a number of virtual studies have been conducted to investigate the biomechanical issues concerning dental biomaterials, but only with limited incorporation of brittle failure phenomena. Motivated by the contradictory findings between several finite element analyses and common clinical observations on the fracture resistance of post-restored teeth, this study aimed to provide an approach using numerical simulations for investigating the fracture failure process through a non-linear fracture mechanics model. The ability of this approach to predict fracture initiation and propagation in a complex biomechanical status based on the intrinsic material properties was investigated. Results of the virtual simulations matched the findings of experimental tests, in terms of the ultimate fracture failure strengths and predictive areas under risk of clinical failure. This study revealed that the failure of dental post-restored restorations is a typical damage-driven continuum-to-discrete process. This approach is anticipated to have ramifications not only for modeling fracture events, but also for the design and optimization of the mechanical properties of biomaterials for specific clinically determined requirements. (C) 2015 Elsevier Ltd. All rights reserved.
机译:生物材料的机械失效,可以通过猛烈的力量,或渐进压力疲劳来发起,是一个严重的问题。已经努力改善牙科修复体的机械性能。虚拟模拟是生物力学研究的有希望的方法,这在提高效率方面具有比传统的体外/体外研究的显着优势。在过去的几十年里,已经进行了许多虚拟研究来调查牙科生物材料的生物力学问题,但只有有限的掺入脆性失效现象。这项研究旨在通过非线性断裂力学模型来提供一种方法,通过非线性断裂力学模型提供一种方法,通过非线性断裂力学模型提供一种方法来提供一种矛毛抗牙齿的抗冲击性抗牙齿的裂缝抗性的临床观察。研究了这种方法预测基于本征材料特性的复杂生物力学状态下骨折启动和繁殖的能力。虚拟仿真的结果与实验试验的结果相匹配,就临床失败风险的最终断裂失效强度和预测区域而言。本研究表明,牙科恢复后修复的失效是典型的损伤驱动的连续性过程。预计这种方法通常不仅具有用于建模骨折事件的后果,而且还具有用于设计和优化生物材料的机械性能,以进行特定的临床确定的要求。 (c)2015 Elsevier Ltd.保留所有权利。

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