首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >On the performance of a cascade of turbine rotor tip section blading in wet steam - Part 5: theoretical treatment
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On the performance of a cascade of turbine rotor tip section blading in wet steam - Part 5: theoretical treatment

机译:湿蒸汽中叶片叶片叶栅的叶栅性能研究-第5部分:理论处理

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During the course of expansion of steam in turbines, the fluid first supercools and then nucleates to become a two-phase mixture. The formation and behaviour of the liquid create problems that lower the performance of turbine wet stages and the mechanisms underlying these are insufficiently understood. Steam turbines play a dominant role in the generation of the main electrical power supply, and the economic returns on improved performance are substantial. This article is the last of a set and describes the theoretical part of an investigation into the performance of a turbine rotor tip section profile in wet steam. The experimental results are described in the earlier parts of the paper. To describe the behaviour of the flow theoretically, the conservation equations describing the main flow field are combined with equations describing droplet behaviour and the set is treated by the time-marching method. Comparisons are carried out with the experimental results presented in the earlier parts of the paper and the agreement obtained is good. When the droplets present in the steam are 0.15 μm in radius at inlet to the cascade, there is considerable secondary nucleation. With droplets of 0.05 μm radius, secondary nucleation is suppressed, but at high pressure ratios, the thermodynamic loss though reduced is not eliminated.
机译:在涡轮机中蒸汽膨胀的过程中,流体首先过冷,然后成核,成为两相混合物。液体的形成和行为会产生降低涡轮湿法阶段性能的问题,而引起这些问题的机理尚不充分。蒸汽轮机在主电源的产​​生中起着主导作用,改进性能带来了经济回报。本文是本文的最后一部分,它描述了在湿蒸汽中研究涡轮转子叶尖截面轮廓的理论部分。实验结果在本文的前面部分进行了描述。为了从理论上描述流的行为,将描述主流场的守恒方程与描述液滴行为的方程相结合,并通过时间步长方法对集合进行处理。与本文前面部分中给出的实验结果进行了比较,所获得的一致性很好。当蒸汽的液滴在叶栅入口处的半径为0.15μm时,会产生大量的二次成核。使用半径为0.05μm的液滴,可抑制二次成核,但在高压比下,尽管降低了热力学损失,但仍无法消除。

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