首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Numerical Analysis of the Effect of Misaligned Guide Vanes on Improving S-Shaped Characteristics for a Pump-Turbine
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Numerical Analysis of the Effect of Misaligned Guide Vanes on Improving S-Shaped Characteristics for a Pump-Turbine

机译:未对准导叶对泵汽轮机改善S形特性的数值分析

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The S-shaped characteristic curves in pump-turbines complicate synchronization with the electrical grid and affect system safety. Misaligned guide vanes (MGVs) are one of the most effective solutions to avoid S-shaped characteristics. The internal flow mechanism with the MGV for improving S-shaped characteristics was studied by numerical analysis. Six operating conditions were modeled in the S-shaped region. Four guide vanes were arranged as the MGVs to qualitatively and quantitatively analyze the flow behavior. The internal flow was quite complex at the four operating points without the MGV; here, the attack angle and the flow behavior had no obvious difference at each vane. For the similar conditions with MGVs, attack angles and internal flow fields varied clearly at each vane, especially in the vaneless region and in the runner blade passages. For the same discharge rates, total openings, and rotating speeds, the internal flows were quite different between with and without the MGVs. The MGVs disrupt the high-speed circumferential water ring (appreciably faster compared to the main flow) in the vaneless region and maintain operation with higher unit speeds. Consequently, the unit speed is larger at the same unit discharge in the S-shaped region. Therefore, the MGV method can reduce S-shaped characteristics.
机译:泵涡轮机中的S形特性曲线与电网同步并影响系统安全性。未对准的导叶(MGV)是最有效的解决方案之一,以避免S形特性。通过数值分析研究了具有用于改善S形特性的MGV的内部流量机制。在S形区域建模六种操作条件。四个导叶被安排为MGV,以定性和定量分析流动行为。内部流动在没有MGV的四个操作点处非常复杂;这里,攻击角和流动行为在每个叶片上没有明显的差异。对于具有MGV的类似条件,在每个叶片处攻击角和内部流动场在每个叶片处变化,特别是在横向区域和流道叶片通道中。对于相同的放电速率,总开口和旋转速度,内部流量与MGVs之间有很大差异。 MGV在无形区域中扰乱高速圆周水环(明显更快),并以更高的单位速度保持操作。因此,单位速度在S形区域的相同单元放电处更大。因此,MGV方法可以降低S形特征。

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