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ACCELERATED DURABILITY TESTING OF COATINGS FOR GAS TURBINES

机译:燃气轮机涂层的加速耐久性测试

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Oxidation resistance and thermal barrier coatings for components on the hot section of gas turbine engines are desired to have lifetimes on the order of tens of thousands of hours. This presents a problem in evaluating new coatings and modifications to existing coatings tests, which completely replicate the operating conditions, could take years to complete. Therefore, a reliable accelerated testing protocol is required. In this paper efforts directed toward developing a mechanism-based protocol for evaluating the life times of oxidation resistant coatings under thermal cyclic and hot corrosion conditions and thermal barrier coatings under thermal cyclic conditions is described. The cyclic lifetimes of oxidation resistant and thermal barrier coatings are determined by spalling behavior. Spallation is a function of oxide thickness and stress level, which control the elastic energy available to drive spallation, and the structures and morphologies of the various layers and interfaces in a given system, which control the fracture toughness at possible planes of weakness. Efforts to evaluate these quantities in relatively short duration tests are described. Specific techniques include acoustic emission studies, indentation techniques, and detailed metallographic observations. The extrapolation of results from high temperature tests, where failure can be achieved in relatively short times, to lower temperatures, which are characteristic of service conditions is also described. An approach to control these variables in a manner to produce accelerated failures under conditions, which allow estimation of lifetimes under typical operating conditions, are described and preliminary results are presented.
机译:期望用于燃气涡轮发动机的热部分上的部件的抗氧化性和隔热涂层具有约数万小时的寿命。这在评估新涂层和对现有涂层测试进行修改时提出了一个问题,要完全复制操作条件,可能需要数年才能完成。因此,需要可靠的加速测试协议。在本文中,针对开发一种基于机理的协议进行了评估,该协议用于评估在热循环和热腐蚀条件下的抗氧化涂层和在热循环条件下的热障涂层的寿命。抗氧化和隔热涂层的循环寿命由剥落行为决定。散裂是氧化物厚度和应力水平的函数,氧化物厚度和应力水平控制着可用来驱动散裂的弹性能量,以及给定系统中各个层和界面的结构和形态,它们控制了可能的薄弱平面处的断裂韧性。描述了在相对较短的持续时间测试中评估这些数量的工作。具体技术包括声发射研究,压痕技术和详细的金相观察。还描述了将高温测试的结果外推到较低的温度下的结果,该测试可以在较短的时间内实现故障,而低温是工作条件的特征,该测试可以在相对较短的时间内完成。描述了一种控制这些变量的方法,以便在一定条件下产生加速故障,从而可以估计典型工作条件下的寿命,并提供初步结果。

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