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The bending stress distribution in bilayered and graded zirconia-based dental ceramics

机译:双层梯度氧化锆基牙科陶瓷的弯曲应力分布

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The purpose of this study was to evaluate the biaxial flexural stresses in classic bilayered and in graded zirconia-feldspathic porcelain composites. A finite element method and an analytical model were used to simulate the piston-on-ring test and to predict the biaxial stress distributions across the thickness of the bilayer and graded zirconia-feldspathic porcelain discs. An axisymmetric model and a flexure formula of Hsueh et al. were used in the FEM and analytical analysis, respectively. Four porcelain thicknesses were tested in the bilayered discs. In graded discs, continuous and stepwise transitions from the bottom zirconia layer to the top porcelain layer were studied. The resulting stresses across the thickness, measured along the central axis of the disc, for the bilayered and graded discs were compared. In bilayered discs, the maximum tensile stress decreased while the stress mismatch (at the interface) increased with the porcelain layer thickness. The optimised balance between both variables is achieved for a porcelain thickness ratio in the range of 0.30-0.35. In graded discs, the highest tensile stresses were registered for porcelain rich interlayers (p = 0.25) whereas the zirconia rich ones (p=8) yield the lowest tensile stresses. In addition, the maximum stresses in a graded structure can be tailored by altering compositional gradients. A decrease in maximum stresses with increasing values of p (a scaling exponent in the power law function) was observed. Our findings showed a good agreement between the analytical and simulated models, particularly in the tensile region of the disc. Graded zirconia-feldspathic porcelain composites exhibited a more favourable stress distribution relative to conventional bilayered systems. This fact can significantly impact the clinical performance of zirconia-feldspathic porcelain prostheses, namely reducing the fracture incidence of zirconia and the chipping and delamination of porcelain. (C) 2016 Elsevier Ltd and Techna Group S.r.l. All rights reserved.
机译:本研究的目的是评估经典双层和分级氧化锆-长石瓷复合材料中的双轴弯曲应力。使用有限元方法和分析模型来模拟活塞环测试,并预测双层和渐变氧化锆-长石质瓷盘厚度上的双轴应力分布。 Hsueh等人的轴对称模型和挠曲公式。分别用于有限元分析和分析分析。在双层圆盘中测试了四种瓷器厚度。在渐变圆盘中,研究了从底部氧化锆层到顶部瓷层的连续和逐步过渡。比较了双层和渐变光盘沿光盘中心轴沿厚度方向产生的应力。在双层圆盘中,最大拉伸应力随瓷层厚度的增加而减小,而应力不匹配(在界面处)则增大。当瓷器的厚度比在0.30-0.35的范围内时,可以实现两个变量之间的最佳平衡。在渐变圆盘中,富瓷中间层的拉伸应力最高(p = 0.25),而富氧化锆的中间层(p = 8)的拉伸应力最低。另外,可以通过改变组成梯度来调整渐变结构中的最大应力。观察到最大应力随着p值(幂律函数中的缩放指数)的增加而减小。我们的发现表明分析模型和模拟模型之间有很好的一致性,特别是在圆盘的拉伸区域。与传统的双层体系相比,渐变的氧化锆-长石瓷复合材料表现出更有利的应力分布。这一事实会严重影响氧化锆长石瓷假体的临床性能,即降低氧化锆的骨折发生率以及瓷器的崩裂和分层。 (C)2016 Elsevier Ltd和Techna Group S.r.l.版权所有。

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