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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Flow-Feedback Method for Mitigating the Vortex Rope in Decelerated Swirling Flows
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Flow-Feedback Method for Mitigating the Vortex Rope in Decelerated Swirling Flows

机译:减缓旋流中涡流绳的流反馈方法

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When reaction hydraulic turbines are operated far from the design operating regime, particularly at partial discharge, swirling flow instability is developed downstream of the runner, in the discharge cone, with a precessing helical vortex and its associated severe pressure fluctuations. Bosioc et al. (2012, "Unsteady Pressure Analysis of a Swirling Flow With Vortex Rope and Axial Water Injection in a Discharge Cone," ASME J. Fluids Eng., 134(8), p. 081104) showed that this instability can be successfully mitigated by injecting a water jet along the axis. However, the jet discharge is too large to be supplied with high pressure water bypassing the runner, since this discharge is associated with the volumetric loss. In the present paper we demonstrate that the control jet injected at the inlet of the conical diffuser can actually be supplied with water collected from the discharge cone outlet, thus introducing a new concept of flow feedback. In this case, the jet is driven by the pressure difference between the cone wall, where the feedback spiral case is located, and the pressure at the jet nozzle outlet. In order to reach the required threshold value of the jet discharge, we also introduce ejector pumps to partially compensate for the hydraulic losses in the return pipes. Extensive experimental investigations show that the wall pressure fluctuations are successfully mitigated when the jet reaches 12% of the main flow discharge for a typical part load turbine operating regime. About 10% of the jet discharge is supplied by the plain flow feedback, and only 2% boost is insured by the ejector pumps. As a result, this new approach paves the way towards practical applications in real hydraulic turbines.
机译:当反作用水轮机远离设计工况运行时,特别是在部分排放时,在流道下游,在排放锥体中会产生涡旋流不稳定性,并带有螺旋状旋涡及其相关的剧烈压力波动。 Bosioc等。 (2012年,“在排料锥中用涡流绳和轴向注水进行旋流的非定常压力分析”,ASME J. Fluids Eng。,134(8),第081104页)显示,通过注入可以成功缓解这种不稳定性沿轴的喷水。但是,射流排放太大,无法绕过流道而被供以高压水,因为这种排放与体积损失有关。在本文中,我们证明了在锥形扩散器进口处注入的控制射流实际上可以被提供有从排放锥出口收集的水,从而引入了流量反馈的新概念。在这种情况下,射流由锥形壁(位于反馈螺旋壳体所在的位置)与喷嘴出口处的压力之间的压力差驱动。为了达到所需的喷射流量阈值,我们还引入了喷射泵,以部分补偿回油管中的液压损失。广泛的实验研究表明,对于典型的部分负荷涡轮机运行方式,当射流达到主流流量的12%时,壁压力波动可得到成功缓解。普通流量反馈提供约10%的喷射流量,而喷射泵仅保证2%的增压。结果,这种新方法为在实际水轮机中的实际应用铺平了道路。

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