首页> 外文期刊>Journal of Thermal Spray Technology >Finite Element Modeling of the Different Failure Mechanisms of a Plasma Sprayed Thermal Barrier Coatings System
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Finite Element Modeling of the Different Failure Mechanisms of a Plasma Sprayed Thermal Barrier Coatings System

机译:等离子喷涂热障涂层系统不同失效机理的有限元建模

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摘要

A new finite element model is used to investigate catastrophic failures of a thermal barrier coatings system due to crack propagation along the interfaces between the ceramic top-coat, thermally grown oxide, and bond-coat layers, as well as between the lamellas structure of the ceramic layer. The thermomechanical model is designed to take into account a non-homogenous temperature distribution and the effects of the residual stresses generated during the coating process. Crack propagation is simulated using the contact tool "Debond" present in the ABAQUS finite element code. Simulations are performed with a geometry corresponding to similar or dissimilar amplitudes of asperity, and for different thicknesses of the oxide layer. The numerical results have shown that crack evolution depends crucially on the ratio of the loading rate caused by growth and swelling of the oxide layer and also on the interface roughness obtained during the spraying of coatings.
机译:一种新的有限元模型用于研究热裂纹涂层系统的灾难性故障,这些故障是由于裂纹沿着陶瓷外涂层,热生长氧化物和粘结涂层之间的界面以及薄板的层状结构之间的界面扩展而产生的。陶瓷层。设计热力学模型时要考虑到非均匀的温度分布以及涂层过程中产生的残余应力的影响。裂纹扩展是使用ABAQUS有限元代码中存在的接触工具“ Debond”模拟的。用对应于相似或不相似的粗糙程度以及不同厚度的氧化层的几何形状进行模拟。数值结果表明,裂纹的发展主要取决于由氧化物层的生长和溶胀引起的加载速率的比率,还取决于在喷涂涂料过程中获得的界面粗糙度。

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