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Experimental and Modeling Studies of Bond Coat Species Effect on Microstructure Evolution in EB-PVD Thermal Barrier Coatings in Cyclic Thermal Environments

机译:粘结涂层物种对循环热环境中EB-PVD热阻挡涂层微观结构演化的实验和建模研究

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In this work, the effects of bond coat species on the thermal barrier coating (TBC) microstructure are investigated under thermal cyclic conditions. The TBC samples are prepared by electron beam-physical vapor deposition with two species of bond coats prepared by either air-plasma spray (APS) or high-velocity oxygen fuel (HVOF) methods. The TBC samples are evaluated in a variety of thermal cyclic conditions, including flame thermal fatigue (FTF), cyclic furnace thermal fatigue (CFTF), and thermal shock (TS) tests. In FTF test, the interface microstructures of TBC samples show a sound condition without any delamination or cracking. In CFTF and TS tests, the TBCs with the HVOF bond coat demonstrate better thermal durability than that by APS. In parallel with the experiments, a finite element (FE) model is developed. Using a transient thermal analysis, the high-temperature creep-fatigue behavior of the TBC samples is simulated similar to the conditions used in CFTF test. The FE simulation predicts a lower equivalent stress at the interface between the top coat and bond coat in bond coat prepared using HVOF compared with APS, suggesting a longer cyclic life of the coating with the HVOF bond coat, which is consistent with the experimental observation.
机译:在这项工作中,在热环状条件下研究了在热环状条件下研究了粘合涂层物种对热阻挡涂层(TBC)微观结构的影响。通过电子束物理气相沉积,通过通过空气等离子体喷雾(APS)或高速氧燃料(HVOF)方法制备的两种粘合涂层来制备TBC样品。 TBC样品在各种热环状条件下评估,包括火焰热疲劳(FTF),环炉热疲劳(CFTF)和热冲击(TS)测试。在FTF测试中,TBC样品的界面微观结构显示出没有任何分层或开裂的声音条件。在CFTF和TS测试中,具有HVOF粘合涂层的TBC表现出比APS更好的热耐久性。与实验并联,开发了有限元(FE)模型。使用瞬态热分析,模拟TBC样品的高温蠕变疲劳行为类似于CFTF测试中使用的条件。 Fe模拟预测使用HVOF与APS制备的粘合涂层的顶部涂层和粘合涂层之间的界面的较低等效应力,表明涂层的循环寿命与HVOF粘合涂层一致,这与实验观察一致。

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