Prediction of fatigue life of geometrically deviated steam turbine blades under thermo-mechanical conditions

Makgwantsha Mashiachidi, Dawood Desai
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Abstract

This study explores the intricate factors affecting the fatigue life of steam turbine blades, encompassing steam flow-induced bending, centrifugal loading, vibration response, structural mistuning, and temperature-dependent influences. By focusing on the significance of mistuned steam turbine blades with varying blade geometries due to manufacturing tolerances, this research has paramount relevance for the power generation industries. By employing finite element analysis (FEA) software, a simplified, mistuned, scaled-down steam turbine bladed disk model was developed, considering temperature-dependent material properties. Initial FEA provided insights into the vibration characteristics and steady-state stress responses, with numerical stress distributions evaluated, which were subsequently exported to Fe-Safe software for fatigue life calculations based on centrifugal and harmonic sinusoidal pressure loadings. By investigating the vibration characteristics and response to geometric blade variations, this study affirmed the reliability of the developed FEA model, with findings highlighting the pronounced sensitivity of fatigue life to blade length, width, and thickness variations, in this order. However, in order to validate the developed numerical models, analytical life cycle assessments were calculated, which exhibited a discrepancy of under 3.37%, reinforcing the applicability of the developed numerical methodology to real-world scenarios involving mistuned steam turbine blades experiencing manufacturing deviations in blade geometry.
热机械条件下几何偏差蒸汽轮机叶片的疲劳寿命预测
本研究探讨了影响蒸汽轮机叶片疲劳寿命的复杂因素,包括蒸汽流引起的弯曲、离心载荷、振动响应、结构失调和温度影响。通过重点研究因制造公差而导致叶片几何形状不同的蒸汽轮机叶片失调的重要性,本研究对发电行业具有重要意义。通过使用有限元分析(FEA)软件,开发了一个简化的、失谐的、按比例缩小的蒸汽轮机叶盘模型,并考虑了与温度相关的材料特性。最初的有限元分析深入分析了振动特性和稳态应力响应,并对数值应力分布进行了评估,随后将其导出至 Fe-Safe 软件,用于基于离心和谐波正弦压力负载的疲劳寿命计算。通过研究振动特性和对叶片几何变化的响应,本研究证实了所开发的有限元分析模型的可靠性,研究结果突出了疲劳寿命对叶片长度、宽度和厚度变化的明显敏感性。然而,为了验证所开发的数值模型,我们还计算了分析寿命周期评估,结果显示差异低于 3.37%,从而加强了所开发的数值方法在实际情况中的适用性,这些实际情况涉及叶片几何形状存在制造偏差的失谐蒸汽轮机叶片。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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