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首页> 外文期刊>Journal of Fluids Engineering: Transactions of the ASME >Unstable Characteristics and Rotating Stall in Turbine Brake Operation of Pump-Turbines
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Unstable Characteristics and Rotating Stall in Turbine Brake Operation of Pump-Turbines

机译:水泵水轮机制动中的不稳定特性和失速

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摘要

Reversible pump-turbines are versatile in the electricity market since they can be switched between pump and turbine operation within a few minutes. The emphasis on the design of the more sensitive pump flow however often leads to stability problems in no load or turbine brake operation. Unstable characteristics can be responsible for hydraulic system oscillations in these operating points. The cause of the unstable characteristics can be found in the blocking effect of either stationary vortex formation or rotating stall. The so-called unstable characteristic in turbine brake operation is defined by the change of sign of the slope of the head curve. This change of sign or "S-shape" can be traced back to flow recirculation and vortex formation within the runner and the vaneless space between runner and guide vanes. When approaching part load from sound turbine flow the vortices initially develop and collapse again. This unsteady vortex formation induces periodical pressure fluctuations. In the turbine brake operation at small guide vane openings the vortices increase in intensity, stabilize and circumferentially block the flow passages. This stationary vortex formation is associated with a total pressure rise over the machine and leads to the slope change of the characteristic. Rotating stall is a flow instability which extends from the runner, the vaneless space to the guide and the stay vane channels at large guide vane openings. A certain number of channels is blocked (rotating stall cell) while the other channels comprise sound flow. Due to a momentum exchange between rotor and stator at the front and the rear cell boundary, the cell is rotating with subsynchronous frequency of about 60 percent of the rotational speed for the investigated pump-turbine (n_(q)(velence)45). The enforced rotating pressure distributions in the vaneless space lead to large dynamic radial forces on the runner. The mechanisms leading to stationary vortex formation and rotating stall were analyzed with a pump-turbine model by the means of numerical simulations and test rig measurements. It was found that stationary vortex formation and rotating stall have initially the same physical cause, but it depends on the mean convective acceleration within the guide vane channels, whether the vortex formations will rotate or not. Both phenomena lead to an unstable characteristic.
机译:可逆式水泵水轮机在电力市场上用途广泛,因为它们可以在几分钟内在水泵和水轮机运行之间切换。然而,对更灵敏的泵流量的设计的强调经常导致在无负载或涡轮制动操作中的稳定性问题。在这些工作点中,不稳定的特性可能是液压系统振荡的原因。产生不稳定特性的原因可以从固定涡流形成或旋转失速的阻塞效应中找到。涡轮机制动操作中所谓的不稳定特性是由机头曲线的斜率的符号变化定义的。这种符号或“ S形”的变化可以追溯到流道内的流动再循环和涡流形成以及流道和导流叶片之间的无叶空间。当接近来自声涡轮机的部分负荷时,涡流首先发展并再次崩溃。这种不稳定的涡流形成引起周期性的压力波动。在涡轮机的小导向叶片开口处进行制动操作时,涡流强度增加,稳定并沿周向阻塞流道。这种静止的涡流形成与整个机器上的总压力上升有关,并导致特性曲线的斜率变化。旋转失速是一种流动不稳定性,它从流道,无叶片空间延伸到大导叶开口处的导叶和导叶通道。一定数量的通道被阻塞(旋转的失速单元),而其他通道则包含声音流。由于在前,后单元边界处转子和定子之间进行了动量交换,因此,该单元以次同步频率旋转,大约是所研究的水泵水轮机转速的60%(n_(q)(velence)45)。无叶片空间中强制的旋转压力分布会在流道上产生较大的动态径向力。通过数值模拟和试验台架测量,利用水泵水轮机模型分析了导致静止涡旋形成和旋转失速的机理。已经发现,静止涡旋形成和旋转失速最初具有相同的物理原因,但是取决于涡旋形成是否旋转,取决于导叶通道内的平均对流加速度。两种现象都会导致特性不稳定。

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