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Nucleation and wake-chopping in low pressure steam turbines

机译:低压蒸汽涡轮机的成核和唤醒

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摘要

While wetness formation in steady flows such as nozzles and cascades is well understood, predicting the polydispersed droplet spectra observed in turbines remains challenging. The characteristics of wetness formation are affected by the expansion rate at the Wilson point. Because the expansion rate varies substantially both axially and circumferentially within steam turbines, the location of the Wilson point within a blade row is a primary factor determining the droplet spectrum and phase change losses. This effect is first investigated using a single streamline with a varying expansion rate, and it is shown that the phase change losses during spontaneous condensation are highest when a large region of high subcooling precedes the Wilson point. The conditions resulting in the highest wetness loss in the nucleation zone do not correspond to those that produce the largest downstream droplets. The effect of nucleation location is then assessed using a non-equilibrium RANS calculation of a realistic low pressure (LP) steam turbine geometry. A quasi-three dimensional (Q3D) flow domain is used to simplify the analysis, which is performed both steadily and unsteadily to isolate the effects of wake-chopping. The inlet temperature is varied to investigate the impact of the Wilson point location on the steady and unsteady wetness loss and droplet spectra. The trends observed in the 1D analysis are repeated in the steady RANS results. The unsteady results show that the Wilson zone is most sensitive to wake-chopping when located near a blade trailing edge and the following inter-row gap. The predicted wetness losses are compared to those predicted by the Baumann rule.
机译:虽然在诸如喷嘴和级联之类的稳定流动的湿润形成,但很好地理解,预测在涡轮机中观察到的多分散的液滴谱保持持挑战性。湿度形成的特征受到威尔逊点的膨胀率的影响。因为膨胀速率基本上在蒸汽涡轮机内轴向和周向性地变化,所以刀片行内的威尔逊点的位置是确定液滴频谱和相变损耗的主要因素。首先使用具有不同膨胀速率的单流线研究这种效果,并显示出在威尔逊点之前的大区域的自发冷凝期间的相变损失最高。导致成核区中湿度损失最高的条件不应对应于产生最大下游液滴的条件。然后使用逼真的低压(LP)汽轮机几何形状的非平衡RAN计算评估成核位置的效果。用于简化分析的准三维(Q3D)流域,其稳定地和不稳定地执行唤醒释放斩波的效果。改变入口温度以研究威尔逊点位置对稳态和不稳定的湿度损失和液滴光谱的影响。在稳定的RAN结果中重复在1D分析中观察到的趋势。不稳定的结果表明,威尔逊区域在位于刀片后边缘附近和以下行间间隙附近时对唤醒斩波最敏感。将预测的湿度损失与Baumann规则预测的那些进行比较。

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