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A 3D numerical simulation of stress distribution and fracture process in a zirconia-based FPD framework

机译:基于氧化锆的FPD框架中应力分布和断裂过程的3D数值模拟

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摘要

In this study, a numerical approach to the fracture behavior in a three-unit zirconia-based fixed partial denture (FPD) framework was made under mechanical loading using a newly developed three-dimensional (3D) numerical modeling code. All the materials studied were treated heterogeneously and Weibull distribution law was applied to describe the heterogeneity. The Mohr-Coulomb failure criterion with tensile strength cut-off was utilized to judge whether the material was in an elastic or failed state. For validation, the fracture pattern obtained from the numerical modeling was compared with a laboratory test; they largely correlated with each other. Similar fracture initiation sites were detected both in the numerical simulation and in an earlier fractographic analysis. The numerical simulation applied in this study clearly described the stress distribution and fracture process of zirconia-based FPD frameworks, information that could not be gained from the laboratory tests alone. Thus, the newly developed 3D numerical modeling code seems to be an efficient tool for prediction of the fracture process in ceramic FPD frameworks.
机译:在这项研究中,使用新开发的三维(3D)数值建模代码,在机械载荷下,采用三单元氧化锆基固定局部义齿(FPD)框架中的断裂行为的数值方法。研究的所有材料均进行了异质处理,并采用威布尔分布定律描述了异质性。使用具有抗拉强度截止值的Mohr-Coulomb破坏准则来判断材料是处于弹性状态还是处于破坏状态。为了进行验证,将数值模型获得的断裂模式与实验室测试进行了比较;它们在很大程度上相互关联。在数值模拟和较早的分形分析中都检测到了类似的断裂起始点。这项研究中使用的数值模拟清楚地描述了基于氧化锆的FPD框架的应力分布和断裂过程,这些信息不能仅从实验室测试中获得。因此,新开发的3D数值建模代码似乎是预测陶瓷FPD框架中断裂过程的有效工具。

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