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Numerical Modeling of Short Crack Behavior in a Thermal Barrier Coating Upon Thermal Shock Loading

机译:热冲击载荷作用下热障涂层中短裂纹行为的数值模拟

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摘要

The behavior of microstructurally short inherent cracks within a preoxidized thermal barrier coating system upon thermal shock loading is considered. A thin alumina oxide layer holding residual stresses was induced at the ceramic/metal interface to simulate thermally grown oxide on the bond coat. Undulation of the oxidized bond coat was modeled as a sinusoidal surface. The variations of the stress-intensity factors of inherent centrally located cracks and of edge cracks were calculated during the thermal cycling. The instant crack shapes during the first thermal cycle and at steady state were investigated. It was found that oxide layer thickness, crack tip location, as well as interfacial undulation are factors influencing the risk of crack propagation. It was also found that an edge crack constitutes a greater threat to the coating durability than a central crack. The propagation of an edge crack, if it occurs, will take place during the first load cycle, whereas for a central crack, crack tip position decides the risk of crack propagation.
机译:考虑了在热冲击载荷作用下,预氧化的热障涂层系统中微观结构短的固有裂纹的行为。在陶瓷/金属界面上产生了一个带有残余应力的氧化铝薄层,以模拟粘结涂层上热生长的氧化物。氧化粘结层的起伏建模为正弦表面。计算了热循环过程中固有的中心裂纹和边缘裂纹的应力强度因子的变化。研究了在第一个热循环和稳态下的瞬时裂纹形状。发现氧化物层的厚度,裂纹尖端的位置以及界面起伏是影响裂纹扩展风险的因素。还发现边缘裂纹比中心裂纹对涂层耐久性的威胁更大。边缘裂纹的扩展(如果发生)将在第一个载荷周期内发生,而对于中心裂纹,裂纹尖端的位置决定了裂纹扩展的风险。

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