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Creep-Fatigue Interaction Study on Gas Turbine Engine Alloy

机译:燃气轮机合金蠕变 - 疲劳相互作用研究

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Alloy IN 718 is used for manufacturing many critical components of gas turbine engine such as compressor blades, discs, and shafts. During engine operation, these components are subjected to cyclic loading along with steady-state operation at high temperatures. These operating conditions induce damage resulting from interaction of creep and fatigue. In order to predict realistically the life of these components, it is necessary to understand creep-fatigue interaction mechanisms and important to carry out test at conditions simulating engine parameters. Therefore, isothermal LCF tests with and without hold time were conducted at a temperature of 600°C, strain rate of 10~(-3) s~(-1) and total strain amplitude varying from 0.4 to 0.6%. Hold time of 1 and 5 min was inserted at maximum strain amplitude to give tensile dwell condition. In gas turbine engine, the presence of centrifugal force of rotating components leads to sustained tensile load in addition to varying loads; therefore, it was decided to have dwell time at peak tensile strains. The investigation revealed that the fatigue life was adversely affected when hold time was introduced at peak strain. The effect on fatigue life with 1- and 5-min hold is discussed. Deformation mechanism of tested samples was also studied using SEM.
机译:718中的合金用于制造燃气涡轮发动机的许多关键部件,例如压缩机叶片,盘和轴。在发动机操作期间,这些部件在高温下进行循环载荷以及稳态操作。这些操作条件诱导蠕变和疲劳相互作用导致的损伤。为了预测这些组件的寿命,有必要了解蠕变 - 疲劳相互作用机制,并在模拟发动机参数的条件下进行测试。因此,具有和不保持时间的等温LCF测试在600℃,应变率为10〜(-3)S〜(-1)的应变率,并且总应变幅度范围为0.4至0.6%。在最大应变幅度下插入1和5分钟的保持时间,以产生拉伸停留条件。在燃气轮机发动机中,除了不同的负载外,旋转部件的离心力的存在导致持续拉伸负荷;因此,决定在峰拉伸菌株处具有停留时间。调查显示,当在峰菌株引入保持时间时,疲劳寿命受到不利影响。讨论了对1-和5分钟的疲劳寿命的影响。还使用SEM研究了测试样品的变形机制。

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