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COUPLED THERMO-MECHANICAL FATIGUE TESTS FOR SIMULATING LOAD CONDITIONS IN COOLED TURBINE PARTS

机译:耦合热机械疲劳试验,用于模拟冷却涡轮机部件的负载条件

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Modern heavy-duty gas turbines operate under hot gas temperatures that are much higher than the temperature capability of nickel superalloys. For that reason, advanced cooling technology is applied for reducing the metal temperature to an acceptable level. Highly cooled components, however, are characterised by large thermal gradients resulting in inhomogeneous temperature fields and complex thermo-mechanical load conditions. In particular, the different rates of stress relaxation due to the different metal temperatures on hot gas and cooling air exposed surfaces lead to load redistributions in cooled structures, which have to be considered in the lifetime prediction methodology. In this context, the paper describes Coupled Thermo-Mechanical Fatigue (CTMF) tests for simultaneously simulating load conditions on hot and cold surfaces of cooled turbine parts, Refs [1, 2]. In contrary to standard Thermo-Mechanical Fatigue (TMF) testing methods, CTMF tests involve the interaction between hot and cold regions of the parts and thus more closely simulates the material behaviour in cooled gas turbine structures. The paper describes the methodology of CTMF tests and their application to typical load conditions in cooled gas turbine parts. Experimental results are compared with numerical predictions showing the advantages of the proposed testing method.
机译:现代重型燃气轮机在热气体温度下工作远高于镍高温合金的温度能力。因此,应用先进的冷却技术将金属温度降低到可接受的水平。然而,高冷却的部件的特征在于大的热梯度,导致不均匀的温度场和复杂的热机械负载条件。特别地,由于热气体和冷却空气暴露的表面上的不同金属温度引起的不同应力松弛率导致冷却结构中的载荷再分布,这必须考虑在寿命预测方法中。在这种情况下,本文描述了耦合的热机械疲劳(CTMF)测试,用于同时模拟冷却涡轮机部件的热和冷表面上的负载条件,REFS [1,2]。相反,与标准的热机械疲劳(TMF)测试方法相反,CTMF测试涉及部件的热和冷区域之间的相互作用,因此更紧密地模拟冷却燃气轮机结构中的材料行为。本文介绍了CTMF试验的方法及其在冷却燃气轮机部件中典型负载条件的应用。比较实验结果与表明所提出的测试方法的优点的数值预测。

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