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Mechanical testing of thermally stressed materials with rough interfaces: Mechanically induced delamination cracking in thermal barrier composites

机译:具有粗糙界面的热应力材料的机械测试:热障复合材料中的机械诱导分层开裂

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Interfacial fracture of thermally stressed layered composites is often characterized by application of a mechanical load. Here a novel mechanical testing method was applied to study the delamination of thermal barrier composites. With a geometry similar to the double cantilever beam compressive loading was transferred into tensile stress normal to the average location of the interfaces. As-sprayed and annealed composites were tested. Fracture relevant microstructural changes and crack growth in the top coat and at the interface between bond coat and top coat were monitored using scanning electron microscopy. The local strain situation was determined via the analysis of the image contrast. Finite element modeling was used to illustrate the effect of the interface roughness on the failure origin. Similar as reported in literature for thermal loading, mechanical loading of a rough interface causes high stresses in interfacial roughness peaks and valleys. However, contrary to thermal loading, the position of the maximum in tensile and compressive stress is independent of the existence of a thermally grown oxide. Implications for the mechanical and then-no-mechanical testing of layered composites are discussed. (c) 2005 Elsevier B.V. All rights reserved.
机译:热应力层状复合材料的界面断裂通常以施加机械载荷为特征。在这里,一种新颖的机械测试方法被用于研究热障复合材料的分层。具有类似于双悬臂梁的几何形状,压缩载荷被转换成垂直于界面平均位置的拉应力。测试了喷涂和退火后的复合材料。使用扫描电子显微镜监测面层和粘结层与面层之间的界面处的断裂相关的微观结构变化和裂纹扩展。通过图像对比度分析确定了局部应变情况。有限元建模被用来说明界面粗糙度对失效起源的影响。与文献中报道的热负荷相似,粗糙界面的机械负荷会在界面粗糙度峰和谷处产生高应力。但是,与热负荷相反,最大拉应力和压应力的位置与热生长氧化物的存在无关。讨论了对层状复合材料进行机械和非机械测试的意义。 (c)2005 Elsevier B.V.保留所有权利。

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