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FATIGUE ANALYSIS OF DENTAL PROSTHESES BY FINITE ELEMENT METHOD (FEM)

机译:牙修复体疲劳分析的有限元方法

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Introduction and Objectives: The dental prostheses are typical biomechanical structures because they have the objective to restore the mastication functions and are responsible for replacing the original tooth that was damaged. In the last few years, many studies have been done and big achievements have been noticed in this area. However, clinical studies and experimental procedures for these conditions are sometimes impractical, due to the biological nature of these components and the difficult to reproduce and to analyze such conditions. Moreover, it involves complex geometries, loads and mechanical behaviors, which analytical solution is very difficult to achieve. For these reasons, many researchers have applied the Finite Element Method (FEM). This method allows the evaluation of non-linear situations (e.g. biomechanical interactions) with complex geometries where experimental tests are usually difficult to be conducted. Furthermore, the uses of this method allow failure evaluation and it forecast occurrence. Like any mechanical structure, prostheses are sensible to failures. The cyclic nature of the loading that components are exposed means that fatigue failures are the type of failure which needs more attention in these kinds of structures. Therefore, this project aims to develop a tridimensional finite element model of dental prosthesis in order to evaluate the fatigue problem. Methods: A geometric model from a single dental prosthesis compounded by an implant, an abutment screw, an abutment, a fixation's screw and a crown will be generated from Micro CT and scanning data. Then, the geometry will be exported to finite element software where a finite element model will be created. After these steps, boundaries conditions will be applied and simulations will be done. Finally, the simulation results will be analyzed. Results: The results from fatigue simulations and analysis demonstrated that abutment screw will have a finite life in most of the analyzed cases, and the fixation screw will be an infinite life. Conclusion: The results obtained illustrate the efficiency of Finite Element Method on simulating the biomechanical conditions, mainly in dental prostheses. In this study, the fatigue conditions were explored and analyzed. Finally, the knowledge about this problem could be improved.
机译:简介和目的:假牙是典型的生物力学结构,因为它们的目的是恢复咀嚼功能,并负责替换受损的原始牙齿。在过去的几年中,已经进行了许多研究,并在该领域取得了重大成就。然而,由于这些成分的生物学性质以及难以再现和分析这些状况,因此针对这些状况的临床研究和实验程序有时是不切实际的。而且,它涉及复杂的几何形状,载荷和机械性能,而解析解决方案很难实现。由于这些原因,许多研究人员已经应用了有限元方法(FEM)。这种方法可以评估通常难以进行实验测试的复杂几何形状的非线性情况(例如生物力学相互作用)。此外,使用此方法可以评估失败并预测发生情况。像任何机械结构一样,假体对故障很敏感。部件承受的载荷的循环特性意味着疲劳失效是这种类型的失效,在这类结构中需要更多的关注。因此,该项目旨在开发牙科修复体的三维有限元模型,以评估疲劳问题。方法:将通过Micro CT和扫描数据生成单个牙齿修复体的几何模型,其中包括种植体,基台螺钉,基台,固定装置的螺钉和牙冠。然后,将几何图形导出到将创建有限元模型的有限元软件。这些步骤之后,将应用边界条件并进行仿真。最后,将对仿真结果进行分析。结果:疲劳模拟和分析的结果表明,在大多数分析的情况下,基台螺丝的使用寿命是有限的,而固定螺丝的使用寿命是无限的。结论:获得的结果说明了有限元方法在模拟生物力学条件(主要是在假牙)中的有效性。在这项研究中,疲劳条件进行了探讨和分析。最后,有关此问题的知识可以得到改善。

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