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首页> 外文期刊>Journal of turbomachinery >Secondary Flows and Loss Caused by Blade Row Interaction in a Turbine Stage
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Secondary Flows and Loss Caused by Blade Row Interaction in a Turbine Stage

机译:涡轮级中叶片行相互作用引起的二次流和损失

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摘要

A study of the three-dimensional stator-rotor interaction in a turbine stage is presented. Experimental data reveal vortices downstream of the rotor which are stationary in the absolute frame-indicating that they are caused by the stator exit flowfield. Evidence of the rotor hub passage vortices is seen, but additional vortical structures away from the endwalls, which would not be present if the rotor were tested in isolation, are also identified. An unsteady computation of the rotor row is performed using the measured stator exit flowfield as the inlet boundary condition. The strength and location of the vortices at rotor exit are predicted. A formation mechanism is proposed whereby stator wake fluid with steep spanwise gradients of absolute total pressure is responsible for all but one of the rotor exit vortices. This mechanism is then verified computationally using a passive-scalar tracking technique. The predicted loss generation through the rotor row is then presented and a comparison made with a steady calculation where the inlet flow has been mixed out to pitchwise uniformity. The loss produced in the steady simulation, even allowing for the mixing loss at inlet, is 10% less than that produced in the unsteady simulation. This difference highlights the importance of the time-accurate calculation as a tool of the turbomachine designer.
机译:提出了涡轮级三维定子-转子相互作用的研究。实验数据显示,转子下游的涡流在绝对机架中是固定的,表明它们是由定子出口流场引起的。可以看到转子轮毂通道涡流的证据,但是还可以识别出远离端壁的其他涡流结构,如果单独进行转子测试则不会出现这些结构。使用测得的定子出口流场作为入口边界条件执行转子行的非定常计算。可以预测转子出口处涡流的强度和位置。提出了一种形成机制,其中具有绝对总压力的陡展角梯度的定子尾流流体负责除一个转子出口涡流以外的所有转子涡流。然后使用无源标量跟踪技术通过计算验证该机制。然后介绍了通过转子排产生的预计损失,并通过稳定计算进行了比较,在该计算中,入口流已混合成桨距均匀性。稳定模拟中产生的损耗,即使考虑到入口处的混合损耗,也比不稳定模拟中的损耗要小10%。这种差异突出了作为涡轮机设计人员工具的精确时间计算的重要性。

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