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FACTORS FOR IMPROVING RELIABILITY IN LARGE INDUSTRIAL GAS TURBINES

机译:提高大型工业燃气轮机可靠性的因素

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摘要

The use of aero engine design methods and experience including higher temperature materials and protective coatings have significantly increased thermal efficiency, and output capability of large industrial gas turbines such as the F, G and H class. As a result the gas path components operate at much higher gas temperatures over significantly longer maintenance intervals, as compared to aero engine experience. Therefore, it is essential that the hardware durability can effectively endure longer periods of attack by oxidation, creep and fatigue because of longer operating intervals between scheduled maintenance periods. Another factor that has become increasingly important is the need for greater flexibility in power plant operation. Specifically, the power plants must operate reliably under more frequent cyclic operation, including partial load cycling. This is in addition to the normal dispatch cycle of the power plant (i.e. daily-start-stop, weekly-start-stop, etc). Gas Turbine reliability is directly dependent on hardware performance and durability. Therefore, the gas turbine must have sufficient design margin to sustain the synergistic effect of higher firing temperature, and the operational challenges associated with greater partial load cycling. This paper discusses Mitsubishi's approach for achieving the above mentioned objectives so that the overarching goals of higher reliability and durability of hot components are achieved in large advanced gas turbines.
机译:使用航空发动机的设计方法和经验(包括高温材料和保护涂层)显着提高了热效率,并提高了大型工业燃气轮机(例如F,G和H级)的输出能力。结果,与航空发动机的经验相比,气路部件在明显更长的维护间隔内以更高的气体温度工作。因此,至关重要的是,由于计划的维护周期之间的工作间隔较长,因此硬件的耐用性必须能有效地承受较长时间的氧化,蠕变和疲劳攻击。变得越来越重要的另一个因素是在电厂运行中需要更大的灵活性。具体而言,发电厂必须在更频繁的循环运行(包括部分负载循环)下可靠地运行。这是发电厂正常调度周期(即每日启停,每周启停等)的补充。燃气轮机的可靠性直接取决于硬件性能和耐用性。因此,燃气轮机必须具有足够的设计余量,以维持较高的燃烧温度的协同效应,以及与较大的部分负荷循环相关的操作挑战。本文讨论了三菱实现上述目标的方法,以便在大型先进燃气轮机中实现热组件更高可靠性和耐用性这一总体目标。

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