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Creep-Fatigue Interaction Life Consumption of Industrial Gas Turbine Blades

机译:工业燃气轮机叶片的蠕变-疲劳相互作用寿命消耗

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This paper presents the creep-fatigue interaction life consumption of industrial gas turbine blades using the LM2500+ engine operated at Pulrose Power station, Isle of Mann as a case study. The linear damage summation approach where creep damage and fatigue damage are combined was used for the creep-fatigue interaction life consumption of the target blades. The creep damage was modelled with the Larson-Miller parameter method while fatigue damage was assessed with the modified universal slopes method and the damage due to creep-fatigue interaction was obtained from the respective life fractions. Because of the difficulty in predicting the life of engine components accurately, relative life consumption analysis was carried out in the work using the concept of creep-fatigue interaction factor which is the ratio of the creep-fatigue interaction life obtained from any condition of engine operation to a reference creep-fatigue interaction life. The developed creep-fatigue interaction life consumption analysis procedure was applied to 8 most of real engine operation. It was observed that the contribution of creep to creep-fatigue interaction life consumption is greater than that of fatigue at all ambient temperatures. The fatigue contribution is greater at lower ambient temperatures as against higher ambient temperatures. For the case study, the overall equivalent creep-fatigue factor obtained was 1.5 which indicates safe engine operation compared to the reference condition. The developed life analysis algorithm could be applied to other engines and could serve as useful tool in engine life monitoring by engine operators.
机译:本文以在马恩岛的Pulrose电站运行的LM2500 +发动机为例,介绍了工业燃气涡轮叶片的蠕变疲劳相互作用寿命消耗。将蠕变损伤和疲劳损伤相结合的线性损伤求和方法用于目标叶片的蠕变-疲劳相互作用寿命消耗。蠕变损伤用Larson-Miller参数法建模,疲劳损伤用改进的通用斜率法评估,蠕变疲劳相互作用引起的损伤可从相应的寿命分数中获得。由于难以准确预测发动机部件的寿命,因此在工作中使用蠕变-疲劳相互作用因子的概念进行了相对寿命消耗分析,蠕变-疲劳相互作用因子是从任何发动机运转条件获得的蠕变-疲劳相互作用寿命的比率参考蠕变-疲劳相互作用寿命。所开发的蠕变-疲劳相互作用寿命消耗分析程序已应用于8个大多数实际发动机运行中。观察到,在所有环境温度下,蠕变对蠕变-疲劳相互作用寿命消耗的贡献大于疲劳。与较低的环境温度相比,较低的环境温度对疲劳的影响更大。对于案例研究,获得的总等效蠕变疲劳系数为1.5,这表明与参考条件相比,发动机安全运行。所开发的寿命分析算法可以应用于其他发动机,并且可以用作发动机操作员监测发动机寿命的有用工具。

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