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An in-depth numerical analysis of transient flow field in a Francis turbine during shutdown

机译:关闭期间弗朗西斯汽轮机瞬态流场的深入数值分析

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Power production from intermittent renewable energy resources, such as solar and wind, has increased in the past few decades, leading researchers and engineers to establish techniques to preserve a stable electrical grid. Consequently, hydraulic turbines are being used more frequently in transient operating modes to regulate the grid. The present work provides a comprehensive numerical study on the transient flow field of a high-head Francis turbine model throughout the shutdown sequence. The computations were performed using OpenFOAM, utilizing the SST-SAS turbulence model. A Laplacian smoothing scheme is employed to conduct the mesh deformation of the guide vane domain. The time-averaged draft tube velocity field at the steady Best Efficiency Point (BEP) is validated against experimental data. Then different aspects of the transient flow field in the shutdown sequence are carefully assessed and explained for the first time. Short-Time Fourier Transform (STFT) analysis is carried out on the fluctuating part of the static pressure and force signals. High-amplitude low-frequency oscillations, due to the formation of a Rotating Vortex Rope (RVR) were observed during a specific period of the shutdown sequence. Thereafter, at deep part load conditions, the RVR vanishes and, a wide range of stochastic frequencies are identified at minimum load. A signal coherence analysis was accomplished to distinguish the deterministic and stochastic frequencies. The variation of the velocity field in the draft tube is described in detail with the help of velocity triangles. An in-depth explanation of the formation and variation of vortical structures during the whole sequence is presented. The physical mechanism of formation and destruction of the RVR is thoroughly explained. (c) 2021 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
机译:从间歇性的可再生能源资源,如太阳能和风能的生产,在过去的几十年里已经增加,导致研究人员和工程师,建立技术,以保持稳定的电网。因此,水轮机被更频繁地使用在瞬态操作模式来调节网格。目前的工作提供了在整个关断序列的高水头混流式水轮机模型的瞬时流场的综合数值研究。的计算是使用OpenFOAM进行,利用所述SST-SAS湍流模型。拉普拉斯平滑方案被用来进行导向叶片域的网格变形。在稳态最佳效率点(BEP)的时间平均引流管的速度场进行验证实验数据。然后,在关闭序列瞬时流场的不同方面仔细评估和首次说明。短时傅立叶变换(STFT)分析上的静压力和力信号的波动部分进行。高振幅低频振荡,由于旋转涡带(RVR)的形成过程中关闭序列的特定周期中观察到。此后,在深部分负荷条件下,RVR消失和,一个宽范围的随机频率被在最小负载识别。的信号相干性分析,完成以区分确定性和随机性频率。在引流管的速度场的变化进行了详细的速度三角形的帮助下说明。整个序列中的形成和涡结构的变化进行了深入的说明被呈现。形成和RVR的破坏的物理机制有详尽的解释。 (c)2021作者。由elsevier有限公司发布这是CC下的开放式访问文章(http://creativecommons.org/licenses/by/4.0/)。

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