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Simulation of the effect of material properties and interface roughness on the stress distribution in thermal barrier coatings using finite element method

机译:用有限元方法模拟材料特性和界面粗糙度对热障涂层应力分布的影响

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A Finite Element Model (FEM) was developed to evaluate the stresses induced by the thermal cycling in a typical plasma-sprayed thermal barrier coating system (TBCs). The thermo-mechanical model of this multi-layer system takes into account the effects of thermal and mechanical properties, morphology of the top-coat/bond-coat interface and oxidation on the local stresses that are responsible for the micro-crack nucleation during cooling, especially near the metal/ceramic interface.rnTwo top-coat/bond-coat geometries corresponding to different interfacial asperity morphologies (semicircle or sinusoidal) are modeled considering a two dimensional and periodic geometry. The effect of the geometry and the amplitude of asperities on stress distribution are examined to study the cause of the subsequent delamination of the TBCs system. Moreover, the effect of the creep in all layers and plastic deformation in the bond-coat as well as the oxidation in the perpendicular direction of the top-coat/ bond-coat interface are examined toward the stress development and critical sites with respect to possible crack paths. In addition, crack initiation and propagation at the system was predicted.
机译:开发了有限元模型(FEM)以评估在典型的等离子喷涂热障涂层系统(TBC)中由热循环引起的应力。该多层系统的热机械模型考虑了热和机械性能,面涂层/粘结涂层界面的形貌以及氧化对局部应力的影响,这些局部应力导致冷却过程中的微裂纹成核特别是在金属/陶瓷界面附近。考虑到二维和周期性几何结构,对与不同界面粗糙形态(半圆形或正弦形)相对应的两个面漆/粘结层几何进行建模。研究了几何形状和粗糙程度对应力分布的影响,以研究TBCs系统随后分层的原因。此外,检查所有层的蠕变和粘结层塑性变形的影响,以及面漆/粘结层界面垂直方向上的氧化,朝着应力发展和关键部位的方向进行检查。破解路径。此外,还预测了系统中的裂纹萌生和扩展。

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