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Cavitating Turbulent Flow Study for Low Head Francis Turbine by Transient Analysis

机译:低水头混流式水轮机空化流研究的瞬态分析

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Cavitation is undesirable phenomenon and it is difficult to eliminate completely, however it is minimized to the acceptable limits. It becomes more severe under off-design conditions and lower tail race level. Shear Stress Transport (SST) turbulence model and Rayleigh-Plesset mass transfer models are used using CFX solver for performing the transient simulation and investigating the cavitation turbulent flow through Francis turbine. An attempt has been carried out to analysis of cavitating flow at low head Francis turbine under different operating conditions having varying suction heads. Experimentation has been carried out to validate the simulation results. It was found that obtained simulation results are very close agreement with experimental results. Summarizing, the performance loss and cavitation rate are found maximum under over load operating conditions. At part load operating conditions of the turbine, high amplitude of pressure at low frequency has been found which may cause fatigue damage to the turbine over time. Cavitation rate, performance loss and magnitude of pressure pulsation increase with increase of suction head.
机译:空化是不希望的现象,很难完全消除,但是将其最小化到可接受的极限。在非设计条件下和较低的尾赛水平下,它会变得更加严重。使用CFX求解器使用剪切应力传递(SST)湍流模型和Rayleigh-Plesset传质模型进行瞬态模拟,并研究通过弗朗西斯涡轮机的空化湍流。已经尝试分析具有不同吸头的不同工况下低水头弗朗西斯水轮机的空化流。已进行实验以验证仿真结果。发现所获得的仿真结果与实验结果非常接近。总而言之,在过载工作条件下,发现性能损失和空化率最大。在涡轮机的部分负荷运行条件下,已经发现低频处的高振幅压力会随着时间的流逝对涡轮机造成疲劳损坏。空化率,性能损失和压力脉动的幅度随吸头的增加而增加。

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