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水力发电学报 ›› 2026, Vol. 45 ›› Issue (8): 60-70.doi: 10.11660/slfdxb.20260806

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AGC下轴流转桨式转轮疲劳优化与定桨应急策略

  

  • 出版日期:2026-08-25 发布日期:2026-08-25

Study on fatigue optimization and fixed-pitch emergency strategy of Kaplan runners under AGC mode

  • Online:2026-08-25 Published:2026-08-25

摘要: 为适配新型电力系统自动发电控制(AGC)模式下机组调节频次激增的运行需求,解决大型轴流转桨式水轮机转轮操作架、转臂等关键传动部件因长期承受高频交变应力而产生的疲劳损伤问题,系统开展转轮关键部件疲劳防控与应急处置研究。基于大渡河沙湾、安谷水电站转轮关键部件的实际裂纹故障案例,构建操作架和转臂三维仿真模型,采用有限元方法细化分析AGC工况下核心部件的疲劳特性,定位结构薄弱区域并提出针对性优化方案。针对转轮传动机构失效的极端工况,提出转桨式转轮定桨运行应急策略,明确了可行性论证、桨叶角度选择、调节模式调整、桨叶定位工艺及运维管控等方面的具体实施要点,形成“疲劳分析-结构优化-应急处置”的全流程技术体系。研究成果为AGC模式下轴流转桨式转轮的安全稳定运行提供了技术支撑,对同类型机组的疲劳损伤防治与应急处置具有重要工程指导意义。

关键词: AGC模式, 轴流转桨式转轮, 关键部件, 疲劳分析, 结构优化, 定桨应急

Abstract: The new-type power system is subjected to a sharp increase in its unit regulation frequency under the Automatic Generation Control (AGC) mode, and long-term high-frequency alternating stress in a large-scale axial-flow Kaplan turbine runner causes fatigue damage to its key transmission components such as the operating frame and rocker arm. To meet the system’s operation demand and prevent such damage, this paper presents a systematic study on the fatigue prevention and control method and how to handle the key runner component emergency. We develop a three-dimensional simulation model of the operating frame and the rocker arm in the framework of the ANSYS Workbench finite element code, based on the real crack fault cases of key runner components at the Shawan and Angu hydropower stations on the Dadu River. The fatigue characteristics of core components under the AGC conditions are examined in detail, structural weak areas identified, and targeted optimization schemes suggested. We work out an emergency strategy for fixed-pitch operation of the Kaplan runners under the extreme working conditions that usually cause a failure of the runner transmission mechanism. Specific points for implementing engineering measures are clarified from the aspects of feasibility demonstration, blade angle selection, regulation mode adjustment, blade positioning technology, and operation & maintenance control. We have achieved a full-process technical system of "fatigue analysis–structural optimization–emergency disposal". Our results help the safe and stable operation of axial-flow Kaplan runners under the AGC mode, and would guide designing engineering measures for fatigue damage prevention and emergency handling of similar generating units.

Key words: AGC mode, axial-flow Kaplan runner, key components, fatigue analysis, structural optimization, fixed-pitch emergency operation

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