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Fracture of layered ceramics

机译:分层陶瓷的骨折

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Layered ceramics are foreseen as possible substitutes for monolithic ceramics due to their attractive mechanical properties in terms of strength reliability and toughness. The different loading conditions to which ceramic materials may be subjected in service encourage the design of tailored layered structures as function of their application. The use of residual stresses generated during cooling due to the different thermal strain of adjacent layers has been the keystone for the improvement of the fracture response of many layered ceramic systems, e.g. alumina-zirconia, alumina-mullite, silicon nitride-titanium nitride, etc. In this work, the fracture features of layered ceramics are addressed analysing two multilayered structures, based on the alumina-zirconia system, designed with tailored compressive residual stresses either in the external or internal layers. Contact strength and indentation strength tests have been performed to investigate the response of both designs to crack propagation. The experimental findings show a different response in terms of strength and crack growth resistance of both designs. While layered structures with compressive stresses at the surface provide a better response against contact damage compared to monoliths, a flaw tolerant design in terms of strength and an improved toughness through energy release mechanisms is achieved with internal compressive stresses. The use of layered architectures for automotive or biomedical applications as substitutes for alumina-based ceramics should be regarded in the near future, where reliable ceramic designs are needed.
机译:由于它们在强度可靠性和韧性方面,作为它们具有吸引力的机械性能,因此可以对单片陶瓷的替代物进行分层陶瓷。可以在服务中进行陶瓷材料的不同装载条件促进根据其应用的功能设计定制的层状结构。由于相邻层的不同热应变导致在冷却期间产生的残余应力一直是改善许多层状陶瓷系统的断裂响应的梯形骨。氧化铝 - 氧化锆,氧化铝 - 莫来石,氮化硅 - 氮化钛等在这项工作中,基于氧化铝 - 氧化锆系统的两种多层结构进行了解决的分析陶瓷的骨折特征,这些结构在设计中具有量身定制的压缩残余应力外部或内层。已经进行了接触强度和压痕强度测试以研究两种设计对裂纹传播的响应。实验结果表明,在两种设计的强度和裂纹生长抵抗力方面都显示出不同的反应。虽然与表面上具有压缩应力的层状结构提供更好的抗型接触损伤的响应,但是通过内部压缩应力实现了通过能量释放机构的强度和改进的韧性的缺陷设计。使用分层架构进行汽车或生物医学应用作为基于氧化铝的陶瓷的替代品,应在不久的将来被认为需要可靠的陶瓷设计。

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