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IMPORTANCE OF PHYSICS-BASED PROGNOSIS FOR IMPROVING TURBINE RELIABILITY - RRA 501KB GAS TURBINE BLADE CASE STUDY

机译:基于物理学的预后改善涡轮机可靠性的重要性 - RRA 501KB燃气轮机叶片案例研究

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Prognosis and health monitoring (PHM) technology needs to be developed to meet the challenges posed by aging gas and steam turbines in power plants, transportation systems, gas pipelines, and other industries. It is necessary to use physics based residual life prediction and life extension techniques to take into account the state of damage due to prior service. This paper focuses on the requirements of the technology and the state of the development to date. In this study, Life Prediction Technologies Inc.'s (LPTi's) prognosis tool known as XactLIFE~TM was successfully used to establish the fracture critical location of RRA 501KB first stage gas turbine blades under steady state loads and to compute the average life to creep crack initiation in the blade airfoils. The analysis used typical engine operating data from the field in terms of engine speed and average turbine inlet temperature (TIT). The blade is known to suffer airfoil untwist and lengthening during service and this is obviously followed by stress rupture failure. The primary objectives of the case study are to show how prognosis can allow a user to predict fracture critical locations to avoid failures.
机译:需要制定预后和健康监测(PHM)技术,以应对发电厂,运输系统,燃气管道和其他行业老化气体和蒸汽轮机所带来的挑战。有必要使用基于物理的残余寿命预测和生命延长技术来考虑由于现有服务引起的损坏状态。本文重点介绍了技术的要求和迄今为止的发展状态。在本研究中,人寿预测技术公司(LPTI)已知为XACTLEFE〜TM的预测工具被成功地用于在稳态负荷下建立RRA 501KB第一阶段燃气轮机叶片的断裂临界位置,并计算平均寿命以蠕变叶片翼型中的裂纹启动。该分析在发动机速度和平均涡轮机入口温度(山顶)方面使用了来自现场的典型发动机操作数据。已知刀片在服务期间抵抗翼型和延长,这显然是应力破裂故障。案例研究的主要目标是展示预后可以允许用户预测骨折关键位置以避免故障。

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