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Numerical investigation of novel dehumidification strategies in nuclear plant steam turbine based on the modified nucleation model

机译:基于修饰核模型的核电站汽轮机新型除湿策略的数值调查

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To decrease the wetness loss and increase the safety in nuclear plant steam turbine, several novel dehumidification strategies are presented in this paper and the dehumidification effect is tested by employing the modified model. The modified nucleation model is built firstly, and the accuracy of the modified nucleation model combined with several droplet growth models is investigated and discussed, the results show that the modified nucleation model combined with the Young's droplet growth model (phi = 0.75, alpha = 9) shows a satisfactory ability to describe the non-equilibrium condensation process. Secondly, the non-equilibrium condensation characteristic is studied in Dykas cascade, the relationship among the parameters is obtained, four phases and five feature nodes of the non-equilibrium condensation process are revealed, which provides a basis for the dehumidification strategy study. Thirdly, five novel dehumidification strategies are presented, and the dehumidification effect is evaluated. The results show that the passage adopted in the LWE (Location of the wetness emerging) has the best dehumidification effect, which lays the foundation for the dehumidification study in nuclear plant steam turbine three-dimensional cascade. Fourthly, the non-equilibrium condensation characteristic is studied numerically in nuclear plant steam turbine, with the span increasing, the LMF (Liquid mass fraction) gradually reduces. At last, the dehumidification strategies with different passage layers are investigated and whose effect are analyzed and discussed. With the passage number increasing, the LMF decreases quickly, and the location of the LMF forming moves backward gradually. Besides, when the passage layer increases to 8, the dehumidification effect almost keeps constant, and the wetness loss is reduced from 3.01 kJ/kg to 2.51 kJ/kg, the dehumidification effect is remarkable. The results in this paper can give a scientific basis and reference for the nuclear plant stea
机译:为了减少湿度损失并提高核植物汽轮机的安全性,本文提出了几种新的除湿策略,并通过采用修改模型来测试除湿效果。改进的成核模型是首先构建的,并研究了改进的成核模型与几滴生长模型的准确性进行了研究和讨论,结果表明,改性成核模型与杨氏生长模型相结合(PHI = 0.75,α= 9 )表示描述非平衡凝结过程的令人满意的能力。其次,在Dykas级联中研究了非平衡凝结特性,获得了参数之间的关系,揭示了四个阶段和五个特征节点,为除湿策略研究提供了基础。第三,提出了五种新型除湿策略,评估除湿效果。结果表明,LWE中采用的段落(湿润的位置)具有最佳的除湿效果,为核植物汽轮机三维级联的除湿研究奠定了基础。第四,在核植物汽轮机中使用非平衡冷凝特性进行了数量的研究,随着跨度的增加,LMF(液体质量分数)逐渐减少。最后,调查了不同通道层的除湿策略,并分析并讨论其效果。随着通道的数量增加,LMF快速降低,并且LMF形成的位置逐渐向后移动。此外,当通道层增加到8时,除湿效果几乎保持恒定,湿度损失从3.01 kj / kg减少到2.51 kj / kg,除湿效果显着。本文的结果可以为核植物Stea提供科学的基础和参考

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