Influence of Surface Geometry and Microstructural Features on the Delamination and Crack Propagation of Brittle Convex Thermal Barrier Films during Thermal Cyclic Loading

A. Nastic, L. Pershin, J. Mostaghimi
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引用次数: 0

Abstract

The influence of air plasma sprayed alumina coating geometry, microstructure, interface roughness on its delamination and crack propagation resistance during low temperature thermal cycling, i.e. thermal mismatch stress, is investigated both numerically and experimentally. Previous studies on thermal cycling loading concentrate on flat, numerically designed locally curved specimens and/or mathematically modeled roughness without extension towards real coating morphology, which renders the conclusions less practically driven. Results show that arbitrarily oriented cracks originate predominantly near the coating/substrate interface and propagate along zones of high tensile and shear residual stress. The crack path deflection was attributed to the complex stress concentration structure resultant from the intricate microstructural porosity and coating general convex geometry. Microstructural features such as porosity increase the interfacial and coating tensile stress, which may lead to important delamination processes even during low temperature thermal cycling.
热循环加载过程中表面几何和微观结构特征对脆性凸热障膜分层和裂纹扩展的影响
通过数值和实验研究了低温热循环过程中空气等离子喷涂氧化铝涂层几何形状、微观结构、界面粗糙度对涂层分层和裂纹扩展性能的影响,即热失配应力。以前的热循环加载研究集中在平面上,数值设计的局部弯曲试样和/或数学模拟的粗糙度,而没有扩展到真实的涂层形貌,这使得结论不太具有实际意义。结果表明,任意取向裂纹主要产生于涂层/基体界面附近,并沿残余高拉伸和剪切应力区扩展。裂纹路径偏转是由复杂的微观结构孔隙和涂层一般的凸几何形状所导致的复杂应力集中结构造成的。孔隙率等微观结构特征增加了界面和涂层的拉伸应力,即使在低温热循环中也可能导致重要的分层过程。
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