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Fracture Mechanics And Toughening Mechanisms Analysis Of Ce-Tzp/Al2o3 Nanocomposite For Biomedical Applications

机译:用于生物医学的Ce-Tzp / Al2o3纳米复合材料的断裂力学和增韧机理分析

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Zirconia ceramics were introduced in the seventhies for use as structural biomaterials after laboratory tests and simulator studies. However, nowadays concerns remain about their reliability in vivo, despite published clinical studies have already established the safety and the good tribological performance of these materials. It is still unclear what level of reliability can be achieved in ceramic biomaterials and how much their toughness level can be enhanced by microstructural design. The polycrystalline nature of ceramic materials may make both the observed properties and performance very scattered. In particular, the grain size and other microstructural features likely play a fundamental role in the mechanical behavior of the material. In this paper, we propose a set of fracture mechanics assessments, aimed to establish the quantitative amount of toughness achievable in a zirconia/alumina nanocomposite stabilized with cerium oxide (Ce-TZP/Al2O3 nanocomposite), and in situ confocal Raman spectroscopy to visualize toughening mechanisms, including polymorph transformation and residual stress fields stored around the crack path.
机译:经过实验室测试和模拟器研究,七十年代引入了氧化锆陶瓷,用作结构生物材料。然而,尽管已发表的临床研究已经确定了这些材料的安全性和良好的摩擦学性能,但如今仍对其在体内的可靠性表示担忧。尚不清楚在陶瓷生物材料中可以达到什么可靠性水平,以及通过微结构设计可以提高其韧性水平多少。陶瓷材料的多晶性质可能会使观察到的性能和性能都非常分散。特别地,晶粒尺寸和其他微结构特征可能在材料的机械性能中起基本作用。在本文中,我们提出了一组断裂力学评估,旨在建立定量稳定的氧化铈/氧化铝纳米复合材料(氧化铈(Ce-TZP / Al2O3纳米复合材料))和原位共焦拉曼光谱可实现的韧性定量化。机理,包括多晶型转变和裂纹路径周围存储的残余应力场。

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