Abstract Failure analysis of thermally cycled columnar thermal barrier coatings produced by high-velocity-air fuel and axial-suspension-plasma spraying: A design perspective
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Failure analysis of thermally cycled columnar thermal barrier coatings produced by high-velocity-air fuel and axial-suspension-plasma spraying: A design perspective

机译:高速空气燃料和轴悬空等离子喷涂产生的热循环柱热阻挡涂层的故障分析:设计视角

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AbstractAxial-suspension-plasma spraying (ASPS) is a fairly recent thermal spray technology which enables production of ceramic top coats in TBCs, incorporating simultaneously the properties of both the conventional-plasma sprayed (highly insulating porous structures) and electron-beam-physical-vapor-deposited (strain-tolerant columnar structures) top coats. TBCs are required to insulate the hot components in a gas turbine engine against high temperature and harsh operating conditions. Periodic heating and cooling of turbine engines during operation can create severe thermal cyclic fatigue conditions which can degrade the performance of these coatings eventually leading to the failure. An in-depth experimental investigation was performed to understand the failure behavior of columnar TBCs subjected to thermal cyclic fatigue (TCF) test at 1100?C. The study revealed that the TCF performance was influenced to an extent, by the top coat microstructure, but was primarily affected by the severity of thermally grown oxide (TGO) growth at the bond coat-top coat interface. Mixed failure modes comprising crack propagation through the bond coat-TGO interface, through TGO and within the top coat were identified. Based on the analysis of the experimental results and thorough discussion a novel design of microstructure for the high TCF performance columnar TBC is proposed.]]>
机译:<![cdata [ 抽象 轴向悬架 - 等离子喷涂(ASPS)是一种相当近最近的热喷涂技术,可在TBC中生产陶瓷顶部涂层,同时掺入该性质常规等离子体喷涂(高绝缘多孔结构)和电子束物理蒸汽沉积(应变耐受柱状结构)顶部涂层。需要TBC以防止燃气轮机发动机中的热部件抵抗高温和苛刻的操作条件。在操作期间的周期性加热和冷却涡轮发动机可以产生严重的热循环疲劳条件,这可能会降低这些涂层的性能最终导致失败。进行深入的实验研究以了解在1100℃下进行热循环疲劳(TCF)试验的柱状TBC的失效行为。该研究表明,TCF性能受到底层微观结构的影响,但主要受到粘合涂层涂层界面处的热生长氧化物(TGO)生长的严重程度的影响。鉴定了通过粘合涂层接口,通过TGO和顶层裂纹和顶层内裂纹传播的混合衰竭模式。基于实验结果的分析和彻底讨论,提出了高TCF性能柱TBC的微观结构设计。 ]] >

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