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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Compressible Large Eddy Simulation of a Francis Turbine During Speed-No-Load: Rotor Stator Interaction and Inception of a Vortical Flow
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Compressible Large Eddy Simulation of a Francis Turbine During Speed-No-Load: Rotor Stator Interaction and Inception of a Vortical Flow

机译:空转时弗朗西斯涡轮的可压缩大涡模拟:转子-定子相互作用和涡流的产生

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摘要

This work investigates the unsteady pressure fluctuations and inception of vortical flow in a hydraulic turbine during speed-no-load conditions. At speed-no-load (SNL), the available hydraulic energy dissipates to the blades without producing an effective torque. This results in high-amplitude pressure loading and fatigue development, which take a toll on a machine's operating life. The focus of the present study is to experimentally measure and numerically characterize time-dependent pressure amplitudes in the vaneless space, runner and draft tube of a model Francis turbine. To this end, ten pressure sensors, including four miniature sensors mounted in the runner, were integrated into a turbine. The numerical model consists of the entire turbine including Labyrinth seals. Compressible flow was considered for the numerical study to account for the effect of flow compressibility and the reflection of pressure waves. The results clearly showed that the vortical flow in the blade passages induces high-amplitude stochastic fluctuations. A distinct flow pattern in the turbine runner was found. The flow near the blade suction side close to the crown was more chaotic and reversible (pumping), whereas the flow on the blade pressure side close to the band was accelerating (turbine) and directed toward the outlet. Flow separation from the blade leading edge created a vortical flow, which broke up into four parts as it traveled further downstream and created high-energy turbulent eddies. The source of reversible flow was found at the draft tube elbow, where the flow in the center core region moves toward the runner cone. The vortical region located at the inner radius of the elbow gives momentum to the wall-attached flow and is pushed toward the outlet, whereas the flow at the outer radius is pushed toward the runner. The cycle repeats at a frequency of 22.3 Hz, which is four times the runner rotational speed.
机译:这项工作研究了在无速状态下水轮机中的非定常压力波动和涡流的开始。空载(SNL)时,可用的液压能耗散到叶片上,而不会产生有效扭矩。这会导致高振幅压力负载和疲劳发展,这会损害机器的使用寿命。本研究的重点是通过实验测量和数值表征弗朗西斯模型涡轮机的无叶空间,流道和尾水管中随时间变化的压力幅度。为此,将十个压力传感器(包括安装在流道中的四个微型传感器)集成到了涡轮机中。数值模型由整个涡轮机组成,包括迷宫式密封。在数值研究中考虑了可压缩流量,以说明流量可压缩性和压力波反射的影响。结果清楚地表明,叶片通道中的涡流会引起高振幅随机波动。在涡轮机转轮中发现了明显的流型。靠近冠部的叶片吸力侧附近的流动更混乱且可逆(泵送),而靠近带的叶片压力侧的流动正在加速(涡轮)并指向出口。与叶片前缘的气流分离产生了涡流,当其向下游移动并产生高能湍流涡流时,它分成四个部分。在引流管弯头处发现了可逆流的源头,在该处,中心芯区域中的流向流道锥体移动。位于肘部内半径处的旋涡区域为附壁的流动提供了动量,并被推向出口,而在外半径处的流动被推向流道。该循环以22.3 Hz的频率重复,是转轮转速的四倍。

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