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Effects of stator blade camber and surface viscosity on unsteady flow in axial turbine

机译:定子叶片弯曲和表面粘度在轴向涡轮机中不稳定流动的影响

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The unsteady flow in turbine is extremely complicated and the wake further strengthens the unsteadiness. The vital effects of stator blade camber and surface viscosity on unsteady flow in axial turbine are revealed, aiming to improve aerodynamic performance. Single-stage models with straight stator, negative-bowed stator and positive-bowed stator are constructed. Then, viscous model and non-viscous model on stator blade surfaces are adopted respectively. The flow phenomenon including stator wakes and passage vortex are presented in the view of space and time. Moreover, time-averaged force and pulsating force changes are analyzed through time domain and frequency domain method. The results show that efficiency of turbine with non-viscosity stator surface is higher due to the weakening wakes and positive-bowed stator can reduce the end wall losses. Notably, the stator camber can reduce the aerodynamic exciting force through the wake structure change, and the aerodynamic exciting force for the investigated low gap turbine with stator surface viscosity is relatively lower since the wake induced by viscosity improves the potential flow field uniformity. The paper provides reference for efficiency improvement and aerodynamic exciting force reduction through wake control. (C) 2017 Elsevier Ltd. All rights reserved.
机译:涡轮机中的不稳定流量非常复杂,唤醒进一步增强了不稳定。揭示了定子叶片弯曲和表面粘度在轴向涡轮机中不稳定流动的重要效果,旨在提高空气动力学性能。构建了具有直定子,负屈服定子和正弯曲定子的单级型号。然后,分别采用粘性模型和定子叶片表面上的非粘性模型。包括定子唤醒和通道涡流的流动现象在空间和时间的视野中呈现。此外,通过时域和频域方法分析时间平均力和脉动力变化。结果表明,由于疲软的唤醒和正弯曲定子,涡轮机的效率较高,并且正弯曲的定子可以减少端壁损失。值得注意的是,定子弧形可以通过唤醒结构的变化来减少空气动力学激发力,并且所研究的低间隙涡轮机的空气动力励磁力,具有定子表面粘度的粘度相对较低,因为通过粘度诱导的XWAKE提高了潜在的流动场均匀性。本文提供了通过唤醒控制的效率提升和空气动力学励磁力的参考。 (c)2017 Elsevier Ltd.保留所有权利。

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