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Defect evolution in thermal barrier coating systems under multi-axial thermomechanical loading

机译:多轴热机械负荷下热障涂层系统中的缺陷演变

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In service, gas turbine components with thermal barrier coatings experience high cyclic mechanical and thermal loading. Important, but not yet considered sufficiently, are the multi-axial stresses arising from thermal gradients. In this study, multi-axial stresses were simulated in laboratory experiments using a specially designed test rig. Cyclic thermomechanical fatigue experiments with radial thermal gradients (TGMF) were performed on tubular specimens consisting of a directionally densified superalloy substrate, a NiCoCrAlY bond coat, and a ceramic thermal barrier coating (TBC). The test setup enables surface temperatures of 1000 -C, temperature differences over the whole wall thickness of the specimen of about 170 -C, and high heating and cooling rates. The resultant defects have specific features consisting of cracks parallel to the bond coat/TBC interface. They are located within the bond coat close to this interface. Weakening thus this interface, the defects enhance TBC spallation. Finite element analyses, calculating stress distributions during the quasi-stationary condition of the TGMF test cycle at high temperature and the transient stress distributions during cooling, were used to discuss the evolution of these specific defects.
机译:在使用的使用中,具有热障涂层的燃气轮机部件经历高循环机械和热负荷。重要但尚未充分考虑,是热梯度引起的多轴应力。在该研究中,使用专门设计的试验台模拟了在实验室实验中模拟了多轴应力。在由定向致密化的超合金基材,NicoCraly键合涂层和陶瓷热阻挡涂层(TBC)组成的管状试样上进行径向热梯度(TGMF)的循环热机械疲劳实验。测试设置使得表面温度为1000 -c,温度差异的全壁厚度约为170 -c,以及高加热和冷却速率。所得到的缺陷具有由与粘合涂层/ TBC界面平行的裂缝组成的特定特征。它们位于靠近该界面的粘接衣内。弱化因此该界面,缺陷增强了TBC介绍。有限元分析,用于在高温下的TGMF试验周期的准固定状态下计算应力分布,冷却期间的瞬态应力分布,用于讨论这些特定缺陷的演变。

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