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Numerical investigation into the mechanism of spike-type stall inception in an axial compressor rotor

机译:轴流压气机转子尖峰型失速开始机理的数值研究

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Whole-passage simulations were conducted to simulate the stall inception process in a subsonic compressor rotor. The predicted results agreed well with available steady-state and time-resolving experimental data. The detailed flowfield analyses further demonstrated that the test rotor was of spike-type stall inception. The self-sustained unsteady cycle of tip separation vortex (TSV) was the underlying flow mechanism for the occurrence of the so-called ‘tip clearance spillage flow’ and ‘tip clearance backflow’. Furthermore, the correlation between the self-sustained cycles of TSV in the preceding and native passages was the flow mechanism for emergence of spike. For the test rotor, the distinctive flowfield feature during the development of spike was the involvement of ‘tip clearance back-spillage flow’.
机译:进行了全通道模拟,以模拟亚音速压缩机转子的失速开始过程。预测结果与可用的稳态和时间分辨实验数据非常吻合。详细的流场分析进一步证明了测试转子是尖峰型失速开始的。尖端分离涡(TSV)的自我维持的非稳态循环是发生所谓的“尖端间隙溢出流”和“尖端间隙回流”的潜在流动机制。此外,TSV在先前通道和自然通道中的自我维持周期之间的相关性是峰值出现的流动机制。对于测试转子,尖峰形成过程中的独特流场特征是“尖端间隙后溢流”的参与。

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  • 来源
    《Journal of Power and Energy》 |2012年第2期|p.192-207|共16页
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    School of Power and Energy, Northwestern Polytechnical University, Xi’an, People’s Republic of China;

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