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DEVELOPMENT OF HIGHLY DURABLE THERMAL BARRIER COATING BY SUPPRESSION OF THERMALLY GROWN OXIDE

机译:抑制热生长氧化物开发高度耐用的热障涂层

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Durability of thermal barrier coating (TBC) systems is important because of recent rising of TIT (Turbine inlet temperature) for improved efficiency of industrial gas turbine engines. However, high-temperature environment accelerates the degradation of the TBC as well as causes spalling of the top coat. Spalling of the top coat may be attributed to several factors, but evidently the growth of thermally grown oxide (TGO) should be considered as an important factor. One method for reducing the growth rate of TGO is to provide a dense α-Al_2O_3 layer at the boundary of the bond coat and top coat. This α-Al_2O_3 layer will protect the bond coat against oxidation and prevent outward diffusion of aluminum of the bond coat which causes further oxidation. In this study, we focused on thermal pre-oxidation of the bond coat as a means for forming an α-Al_2O_3 barrier layer that would be effective at reducing the growth rate of TGO and we studied the suitable pre-oxidation conditions. In the primary stage we analyzed the oxidation behavior of the bond coat surface during pre-oxidation heat treatment by means of in-situ synchrotron X-ray diffraction (XRD) analysis. As a result, we learned that during oxidation in ambient air environment, in the initial stage of oxidation metastable alumina is produced in addition to α-Al_2O_3, but if the thermal treatment is conducted under some specific low oxygen partial pressure condition, unlike in the ambient air environment, only α-Al_2O_3 is formed with suppressing formation of metastable alumina. We also conducted TEM and XRD analysis of oxide scale formed after pre-oxidation heat treatment of the bond coat. As a result, we learned that if pre-oxidation is performed under specific oxygen partial pressure conditions, a monolithic α-Al_2O_3 layer is formed on the bond coat. We performed a durability evaluation test of TBC with the monolithic α-Al_2O_3 layer formed by pre-oxidation of the bond coat. An isothermal oxidation test confirmed that the growth of TGO in the TBC that had undergone pre-oxidation was suppressed more thoroughly than that in the TBC that had not undergone pre-oxidation. Cyclic thermal shock test by hydrogen burner rig was also carried out. TBC with the monolithic α-Al_2O_3 layer has resistance to >2000 cycle thermal shock at a load equivalent to that of actual gas turbine.
机译:热障涂层(TBC)系统的耐用性很重要,因为最近TIT(涡轮机入口温度)上升了,从而提高了工业燃气涡轮发动机的效率。但是,高温环境会加速TBC的降解,并导致面漆剥落。面漆剥落可能归因于几个因素,但显然热生长氧化物(TGO)的生长应被视为重要因素。一种降低TGO生长速率的方法是在粘结涂层和面涂层的边界处提供致密的α-Al_2O_3层。该α-Al_2O_3层将保护粘结涂层免受氧化,并防止粘结涂层中的铝向外扩散,从而导致进一步的氧化。在这项研究中,我们集中于粘合涂层的热预氧化作为形成α-Al_2O_3势垒层的手段,该方法将有效降低TGO的生长速率,并研究了合适的预氧化条件。在初级阶段,我们通过原位同步加速器X射线衍射(XRD)分析了预氧化热处理过程中粘结涂层表面的氧化行为。结果,我们了解到,在环境空气氧化过程中,除了α-Al_2O_3之外,在氧化的初始阶段还生成亚稳态氧化铝,但如果在某些特定的低氧分压条件下进行热处理,则不同于在周围空气环境中,仅形成α-Al_2O_3,抑制了亚稳氧化铝的形成。我们还对粘结涂层的预氧化热处理后形成的氧化皮进行了TEM和XRD分析。结果,我们了解到,如果在特定的氧分压条件下进行预氧化,则会在粘结涂层上形成整体的α-Al_2O_3层。我们对结合涂层的预氧化形成的整体式α-Al_2O_3层进行了TBC的耐久性评估测试。等温氧化试验证实,与未进行预氧化的TBC相比,已进行预氧化的TBC中TGO的生长受到了更彻底的抑制。还通过氢气燃烧器装置进行了循环热冲击试验。具有整体式α-Al_2O_3层的TBC在与实际燃气轮机相当的负载下具有> 2000次循环热冲击的抵抗力。

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