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导叶错位的水泵水轮机S特性及压力脉动分析

Analysis of S Characteristics and Pressure Pulsations in a Pump-Turbine With Misaligned Guide Vanes.

作者信息

Sun Hui, Xiao Ruofu, Liu Weichao, Wang Fujun

机构信息

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出版信息

J Fluids Eng. 2013 May;135(5):511011-511016. doi: 10.1115/1.4023647. Epub 2013 Mar 29.

Abstract

Growing environmental concerns and the need for better power balancing and frequency control have increased attention in renewable energy sources such as the reversible pump-turbine which can provide both power generation and energy storage. Pump-turbine operation along the S-shaped curve can lead to difficulties in loading the rejection process with unusual increases in water pressure, which lead to machine vibrations. Pressure fluctuations are the primary reason for unstable operation of pump-turbines. Misaligned guide vanes (MGVs) are widely used to control the stability in the S region. There have been experimental investigations and computational fluid dynamics (CFD) simulations of scale models with aligned guide vanes and MGVs with spectral analyses of the S curve characteristics and the pressure pulsations in the frequency and time-frequency domains at runaway conditions. The course of the S characteristic is related to the centrifugal force and the large incident angle at low flow conditions with large vortices forming between the guide vanes and the blade inlets and strong flow recirculation inside the vaneless space as the main factors that lead to the S-shaped characteristics. Preopening some of the guide vanes enables the pump-turbine to avoid the influence of the S characteristic. However, the increase of the flow during runaway destroys the flow symmetry in the runner leading to all asymmetry forces on the runner that leads to hydraulic system oscillations. The MGV technique also increases the pressure fluctuations in the draft tube and has a negative impact on stable operation of the unit.

摘要

日益增长的环境问题以及对更好的功率平衡和频率控制的需求,使得人们对可再生能源的关注度不断提高,例如可逆式水泵水轮机,它既能发电又能储能。水泵水轮机沿S形曲线运行会导致在甩负荷过程中加载困难,水压异常升高,进而引发机组振动。压力波动是水泵水轮机运行不稳定的主要原因。错位导叶(MGV)被广泛用于控制S区域的稳定性。已经有针对具有对齐导叶和错位导叶的比例模型进行的实验研究和计算流体动力学(CFD)模拟,以及在飞逸工况下对S曲线特性和频率及时间频率域中的压力脉动进行的频谱分析。S特性曲线的过程与离心力以及低流量条件下的大入射角有关,此时导叶与叶片进口之间形成大涡旋,无叶空间内有强烈的流动再循环,这些是导致S形特性的主要因素。预先打开一些导叶可使水泵水轮机避免S特性的影响。然而,飞逸期间流量的增加会破坏转轮内的流动对称性,导致转轮上出现所有不对称力,从而引发液压系统振荡。MGV技术还会增加尾水管中的压力波动,对机组的稳定运行产生负面影响。

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