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Effects of Axial Gap on the Vane-Rotor Interaction in a Low Aspect Ratio Turbine Stage

机译:低纵横比涡轮阶段轴隙对叶片-转子相互作用的影响

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An extensive experimental analysis on the subject of unsteady flows in a low aspect-ratio turbine stage was performed at the Laboratorio di Fluidodinamica delle Macchine of the Politecnico di Milano. Three different vane-rotor axial gaps were considered ranging from 16 to 50% of the stator axial chord. Steady flow measurements at different axial planes in the stator-rotor gap were carried out to provide a complete description of the three-dimensional flowfleld entering the rotor for different axial gaps. The blade row interaction and its dependence on the axial gap Were evaluated by means of phase-resolved aerodynamic measurements downstream of the rotor. Unsteady numerical simulations were also performed to support the interpretation of the experiments. Results show a strong dependence of the time-averaged and phase-resolved flowfleld on the stator-rotor spacing. The blade row interaction is mainly driven by the vortex-blade interaction in the hub region, and by the rotor incidence unsteadiness produced by the stator flow structures. Different interaction phenomena take place for the different axial gaps, depending on the magnitude of the stator vortices and on the superposition between the stator wake and potential field. On the contrary, the tip region is dominated by the rotor aerodynamics, which are found to be almost steady in the relative frame. Spanwise efficiency profiles evidence the different effects related to the single blade row as well as to the wake and vortex interactions on the performance. The maximum overall efficiency and the minimum unsteadiness are achieved for a vane-rotor axial gap equal to one third of the stator axial chord, or five sixths of the stator throat.
机译:在米兰理工大学的流体力学实验室进行了关于低长宽比涡轮机阶段的非稳态流动的广泛实验分析。三种不同的叶片-转子轴向间隙被认为是定子轴向弦的16%至50%。在定子-转子间隙中的不同轴向平面上进行了稳定的流量测量,以完整描述在不同轴向间隙中进入转子的三维流场。通过转子下游的相位分辨空气动力学测量,评估了叶片行的相互作用及其对轴向间隙的依赖性。还进行了非稳态数值模拟,以支持对实验的解释。结果表明,时间平均和相位分辨流场对定子-转子间距的依赖性很大。叶片行的相互作用主要是由轮毂区域中的涡流-叶片相互作用以及由定子流动结构产生的转子入射不稳定引起的。对于不同的轴向间隙,会发生不同的相互作用现象,这取决于定子涡流的大小以及定子尾流和势场之间的叠加。相反,叶尖区域由转子空气动力学决定,这在相对框架中几乎是稳定的。跨度效率曲线证明了与单个叶片行以及尾流和涡流相互作用对性能的不同影响。当叶片-转子的轴向间隙等于定子轴向弦的三分之一或定子喉部的五分之六时,可获得最大的总效率和最小的不稳定。

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