首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Mechanism of Fast Transition of Pressure Pulsations in the Vaneless Space of a Model Pump-Turbine During Runaway
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Mechanism of Fast Transition of Pressure Pulsations in the Vaneless Space of a Model Pump-Turbine During Runaway

机译:失控期间模型泵涡轮机无码空间中压力脉动的快速过渡机制

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The pressure pulsations in the vaneless space of pump-turbines are extremely intense and always experience rapid time variations during transient scenarios, causing structural vibrations and even more serious accidents. In this study, the mechanism behind the rapid time variations of the vaneless space pressure pulsations in a model pump-turbine during runaway was analyzed through three-dimensional (3D) numerical simulations. These results show that the high-frequency pressure pulsation components originating from rotor-stator interactions (RSI) are dominant during the whole process. These components fluctuate significantly in frequency when the working point goes through the S-shaped region of the characteristic curve, with the amplitudes increasing. Meanwhile, some low-frequency pulsations are also enhanced and become obvious. These features can be attributed to the transitions of the inter blade vortex structures (IBVSs) to the forward flow vortex structures (FFVSs) and the back flow vortex structures (BFVSs) at the impeller entrance, when the pump-turbine operates in the region with S-shaped characteristics. The FFVSs mainly cause decreases in frequency and introduce low-frequency pulsations, while the BFVSs are responsible for the unstable fluctuations. These findings contribute to the understanding of how transient flow patterns evolve and may provide new ideas about avoiding severe pressure pulsations caused by rotating stalls in the pump-turbine during transient scenarios.
机译:泵涡轮机的无码空间中的压力脉动非常强烈,并且始终在瞬态场景期间经历快速的时间变化,导致结构振动甚至更严重的事故。在这项研究中,通过三维(3D)数值模拟分析了在失控期间模型泵涡轮机中无差空间压力脉动的快速时间变化的机制。这些结果表明,源自转子 - 定子相互作用(RSI)的高频压力脉动分量在整个过程中是显性的。当工作点通过特性曲线的S形区域时,这些组件在频率上显着波动,幅度增加。同时,一些低频脉动也增强,变得明显。当泵涡轮机在该区域中操作时,这些特征可归因于叶轮入口处的前叶片涡流结构(IBVS)和叶轮入口处的后流动涡流结构(BFVS)的转变。 S形特点。 FFVSS主要导致频率降低并引入低频脉动,而BFVS负责不稳定波动。这些发现有助于了解瞬态流动模式如何发展,并且可以提供关于避免在瞬态场景中泵涡轮机中的旋转失速引起的严重压力脉动的新思路。

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