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The Effect of Interface Roughness and Oxide Film Thickness on the Inelastic Response of Thermal Barrier Coatings to Thermal Cycling

机译:界面粗糙度和氧化膜厚度对热障涂层对热循环的非弹性响应的影响

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摘要

The effects of interfacial roughness and oxide film thickness on thermally-induced stresses in plasma-sprayed thermal barrier coatings subjected to thermal cycling are investigated using the recently developed higher-order theory for functionally graded materials. The higher-order theory is shown to be a viable alternative to the finite-element approach, capable of modeling different interfacial roughness architectures in the presence of an aluminum oxide layer and capturing the high stress gradients that occur at the top coat/bond coat interface. The oxide layer thickness is demonstrated to have a substantially greater effect on the evolution of residual stresses than local variations in interfacial roughness. Further, the location of delamination initiation in the top coat is predicted to change with increasing oxide layer thickness. This result can be used to optimize the thickness of a pre-oxidized layer introduced at the top coat/bond coat interface in order to enhance TBC durability as suggested by some researchers. The results of our investigation also support a recently proposed hypothesis regarding delamination initiation and propagation in the presence of an evolving bond coat oxidation, while pointing to the importance of interfacial roughness details and specimen geometry in modeling this phenomenon.
机译:使用最近开发的功能梯度材料的高阶理论,研究了界面粗糙度和氧化物膜厚度对经受热循环的等离子喷涂热障涂层中热诱导应力的影响。高阶理论被证明是有限元方法的可行替代方法,它能够在存在氧化铝层的情况下对不同的界面粗糙度结构进行建模,并捕获在面漆/粘结层界面处出现的高应力梯度。与界面粗糙度的局部变化相比,氧化层厚度对残余应力的发展具有显着更大的影响。此外,预计面涂层中脱层起始的位置随着氧化物层厚度的增加而变化。如一些研究人员所建议的,该结果可用于优化在面漆/粘结层界面处引入的预氧化层的厚度,从而提高TBC的耐久性。我们的研究结果也支持了最近提出的关于在不断发展的粘结层氧化作用下脱层引发和扩展的假设,同时指出了界面粗糙度细节和试样几何形状在对该现象进行建模中的重要性。

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