The Influence of Wake Chopping on Wet-Steam Turbine Modelling

Andrej Vasilj, Sebastian Schuster, A. White
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Abstract

The formation of water droplets within condensing steam turbines is a complex process that occurs at supersaturated, non-equilibrium conditions and is influenced by the unsteady segmentation of blade wakes by successive blade rows. This is often referred to as ‘wake chopping’, and its effect on the condensation process is the subject of this paper. The practical significance is that thermodynamic ‘wetness losses’ (which constitute a major fraction of the overall loss) are strongly affected by droplet size. Likewise, droplet deposition and the various ensuing two-phase phenomena (such as film migration and coarse-water formation) also depend on the spectrum of droplet sizes in the primary fog. The majority of wake-chopping models presented in the literature adopt a stochastic approach, whereby large numbers of fluid particles are tracked through (some representation of) the turbine flowfield, assigning a random number at each successive blade row to represent the particle’s pitchwise location, and hence its level of dissipation. This study contributes to the existing literature by adding: (a) a comprehensive study of the sensitivity to key model parameters (e.g., blade wake shape and wake decay rate); (b) an assessment of the impact of circumferential pressure variations; (c) a study of the implications for wetness losses and (d) a study of the implications for deposition rates.
尾迹斩波对湿式汽轮机建模的影响
冷凝式汽轮机内部水滴的形成是一个复杂的过程,发生在过饱和非平衡状态下,并受到连续叶片排对叶片尾迹的非定常分割的影响。这通常被称为“尾流斩波”,它对冷凝过程的影响是本文的主题。实际意义在于热力学“湿损失”(占总损失的很大一部分)受到液滴大小的强烈影响。同样,液滴沉积和各种随后的两相现象(如薄膜迁移和粗水形成)也取决于初级雾中液滴大小的光谱。文献中提出的大多数尾流斩波模型采用随机方法,通过(某种表示)涡轮流场跟踪大量流体颗粒,在每个连续的叶片排上分配一个随机数来表示颗粒的俯角位置,从而表示其耗散水平。本研究对现有文献的贡献在于:(a)对关键模型参数(如叶片尾迹形状和尾迹衰减率)的敏感性进行了全面研究;(b)对环向压力变化影响的评估;(c)对水分损失影响的研究和(d)对沉积速率影响的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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