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TGO EVOLUTION AND COATING PROPERTY CHANGES FOR EB-PVD TBC COATINGS UNDER CYCLIC OXIDATION CONDITION

机译:循环氧化条件下EB-PVD TBC涂层的TGO演变和涂层性能的变化

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The life of a thermal barrier coating (TBC) system is governed by the microstructural evolution of the thermally grown oxide (TGO) layer between the ceramic top layer and the bond coat. While the TGO provides a barrier to the oxygen diffusion, its continuous growth imposes stresses on the TGO/bond coat and TGO/topcoat interfaces that will eventually lead to crack linkage and propagation followed by failure of the TBC system. In addition to TGO growth during thermal exposure, coating properties such as hardness, Young's modulus and fracture toughness will also change. This study is undertaken to investigate the oxidation behaviour of an electron beam physical vapour deposition (EB-PVD) YSZ/PtAl coating system. Cyclic oxidation tests were carried out with each cycle consisting of 5 hr holding time at 1150°C followed by air cooling to room temperature. TGO evolution, coating property and maximum crack length as functions of total thermal exposure time were investigated in this study. Microstructural analyses of the coating were carried out using scanning electron microscopy (SEM) and energy dispersive x-ray spectroscopy (EDS). Both hardness and Young's modulus of the bond coat were measured using micro-hardness tester. The results from this study showed a parabolic TGO growth rate as a function of thermal exposure time. While no distinct mathematical relationship was found between the TGO thickness and maximum crack length, a general trend of increasing TGO thickness and maximum crack length wasfound with respect to exposure time. The mechanical properties of the bond coat were also found to be influenced by the thermal exposure.
机译:隔热涂层(TBC)系统的寿命取决于陶瓷顶层和粘结涂层之间热生长氧化物(TGO)层的微观结构演变。尽管TGO提供了阻止氧气扩散的屏障,但它的连续生长在TGO /粘结涂层和TGO /面涂层界面上施加了应力,最终将导致裂纹连接和扩展,进而导致TBC系统失效。除了在热暴露过程中TGO增长之外,诸如硬度,杨氏模量和断裂韧性之类的涂层性能也将发生变化。进行这项研究以研究电子束物理气相沉积(EB-PVD)YSZ / PtAl涂层系统的氧化行为。进行循环氧化测试,每个循环包括在1150°C下保持5小时,然后空冷至室温。研究了TGO的演变,涂层性能和最大裂纹长度与总热暴露时间的关系。使用扫描电子显微镜(SEM)和能量色散X射线光谱仪(EDS)进行涂层的微观结构分析。使用显微硬度测试仪测量粘合涂层的硬度和杨氏模量。这项研究的结果表明,抛物线型TGO的生长速率是受热时间的函数。虽然在TGO厚度和最大裂纹长度之间没有发现明显的数学关系,但总体趋势是TGO厚度和最大裂纹长度增加了。 发现有关曝光时间。还发现粘合涂层的机械性能受热暴露的影响。

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