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Experimental and numerical analysis of blade channel vortices in a Francis turbine runner

机译:混流式水轮机转轮叶片通道涡旋的实验和数值分析

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摘要

Purpose - The purpose of this paper is to investigate, experimentally and numerically, the pressure pulse characteristics and unsteady flow behavior in a Francis turbine runner for moderate flow heads. The pressure pulses in the runner blade passage were predicted numerically for both moderate and high heads. The calculations were used to partition the turbine operating regions and to clarify the various for the unsteady flow behavior, especially the blade channel vortex in the runner. Design/methodology/approach - Experimental and numerical analyses of pressure pulse characteristics at moderate flow heads in a Francis turbine runner were then extended to high heads through numerical modeling with 3D unsteady numerical simulations performed for a number of operating conditions. The unsteady Reynolds-averaged Navier-Stokes equations with the k-ω-based shear stress transport turbulence model were used to model the unsteady flow within the entire flow passage of a Francis turbine. Findings - The dominate frequency of the predicted pressure pulses at runner inlet agree with the experimental results in the head cover at moderate flow heads. The influence of the blade passing frequency causes the simulated peak-to-peak amplitudes in the runner inlet to be larger than in the head cover. The measured and predicted pressure pulses at different positions along the runner are comparable. At the most unstable operating condition of 0.5a_0 guide vane opening, the pressure pulses in the runner blade passage are due to the blade channel vortex and the rotor-stator interference. The predictions show that the frequency of the blade channel vortex is relatively low and it changes with the operating conditions. Originality/value - The paper describes a study which experimentally and numerically investigated the pressure pulses characteristics in a Francis turbine runner at moderate flow heads. The pulse characteristics and unsteady flow behavior due to the blade channel vortex in the runner at high heads were investigated numerically, with the turbine operating regions then partitioned to identify safe operating regions.
机译:目的-本文的目的是通过实验和数值研究,研究中等流量水头的混流式水轮机中压力脉冲的特性和非稳态流动特性。对中,高水头的转轮叶片通道中的压力脉冲进行了数值预测。这些计算用于划分涡轮机的工作区域,并阐明各种非稳态流动行为,尤其是转轮中的叶片通道涡流。设计/方法/方法-在弗朗西斯水轮机转轮中,中等流量压头处的压力脉冲特性的实验和数值分析,然后通过在多个工况下进行3D非稳态数值模拟的数值模型扩展到高压头。使用非稳态雷诺平均Navier-Stokes方程和基于k-ω的切应力传递湍流模型对弗朗西斯涡轮整个流动通道内的非稳态流动进行建模。研究结果-在流道入口处的预测压力脉冲的主要频率与中等流量水头的水头盖实验结果吻合。叶片通过频率的影响导致流道入口中的模拟峰峰值幅度大于顶盖中的幅度。沿着流道的不同位置处的测量和预测压力脉冲具有可比性。在导流叶片打开度为0.5a_0的最不稳定运行条件下,叶轮叶片通道中的压力脉冲归因于叶片通道涡流和转子-定子干扰。预测表明,叶片通道涡旋的频率相对较低,并且随运行条件而变化。原创性/价值-本文介绍了一项研究,该研究通过实验和数值研究了中等流量水头的混流式水轮机转轮中的压力脉冲特性。数值研究了高水头处转轮中叶片通道涡流引起的脉冲特性和非稳态流动行为,然后对涡轮机运行区域进行了划分,以确定安全的运行区域。

著录项

  • 来源
    《Engineering Computations》 |2011年第2期|p.154-171|共18页
  • 作者单位

    State Key Laboratory of Hydroscience and Engineering and Department of Thermal Engineering, Tsinghua University,Beijing, People's Republic of China;

    State Key Laboratory of Hydroscience and Engineering and Department of Thermal Engineering, Tsinghua University,Beijing, People's Republic of China;

    State Key Laboratory of Hydroscience and Engineering and Department of Thermal Engineering, Tsinghua University,Beijing, People's Republic of China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    turbines; vortices; flow; vibration;

    机译:涡轮机旋涡流;振动;

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