首页> 外文会议>ASME Turbo Expo: Turbomachinery Technical Conference and Exposition >AERODYNAMIC NUMERICAL INVESTIGATION OF LOW-PRESSURE STEAM TURBINE LAST STAGE UNDER LOW LOAD CONDITIONS WITH MODE DECOMPOSITION METHODS
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AERODYNAMIC NUMERICAL INVESTIGATION OF LOW-PRESSURE STEAM TURBINE LAST STAGE UNDER LOW LOAD CONDITIONS WITH MODE DECOMPOSITION METHODS

机译:低压汽轮机末级低负荷工况的气动数值模态分解研究

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It is common that steam turbine works at different operating points, especially under low load conditions, to cater to complex and varied demands for power generation recently. Considering the long and thin shape of last stage moving blades (LSMBs) in a low-pressure (LP) steam turbine, there are many challenges to design a suitable case which balances global efficiency against sufficient structure strength when suffering excitations at low load operating points. In present work, the aim is to extract specific aerodynamic excitations and recognize their distribution and propagation features. Firstly, steady 3D computational fluid dynamics (CFD) calculations are simulated at 25GV and 17GV (25% and 17% of design mass flow conditions) and corresponding unsteady calculations are performed with enough rotor revolutions to obtain integrated flow periodicities. Unsteady pressure signals near tip region of LSMBs are monitored circumferen-tially in both static and rotating coordinates. The fast Fourier transformation (FFT) results of unsteady pressure signals show that there are broadband humps with small disturbance amplitudes in low frequency spectrum at 25GV, however, a sharp spike is shown in low frequency spectrum at 17GV. Further, circumferential mode decomposition (CMD) method has been applied to distinguish different fluctuations in frequency and the mode numbers and circumferential propagating pace of which have been obtained. Finally, dynamic mode decomposition (DMD) method has been performed to describe detailed mode shapes of featured flow perturbances both in static and rotating coordinate system. These analyses indicate that at 25GV, a band of unsteady responses with very low amplitude was noted which has some features similar to rotating instability (RI). However, distribution and propagation features of flow unsteadiness at 17GV are in good agreement with rotating stall (RS) in compressor.
机译:蒸汽轮机通常在不同的工作点运行,尤其是在低负载条件下,以适应最近复杂且变化多端的发电需求。考虑到低压(LP)蒸汽轮机中末级动叶片(LSMB)的细长形状,设计合适的壳体存在许多挑战,当在低负载工作点承受励磁时,如何平衡整体效率与足够的结构强度。在目前的工作中,目标是提取特定的空气动力激励并识别其分布和传播特征。首先,在25GV和17GV(设计质量流量条件的25%和17%)下模拟稳定的3D计算流体动力学(CFD)计算,并使用足够的转子转数进行相应的非稳定计算,以获得积分的流动周期。 LSMBs尖端区域附近的不稳定压力信号在周向上在静态坐标和旋转坐标中都受到监视。非恒定压力信号的快速傅立叶变换(FFT)结果表明,在25GV的低频频谱中存在宽带振幅较小的干扰峰,而在17GV的低频频谱中则呈现出尖锐的尖峰。此外,已经应用圆周模式分解(CMD)方法来区分频率的不同波动,并且已经获得了其模式编号和圆周传播速度。最后,采用动态模式分解(DMD)方法来描述静态和旋转坐标系中特征流扰动的详细模式形状。这些分析表明,在25GV时,注意到了一个非常低幅度的不稳定响应带,它具有一些类似于旋转不稳定性(RI)的特征。但是,在17GV时,流动不稳定的分布和传播特征与压缩机中的旋转失速(RS)很好地吻合。

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