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Numerical Investigation on the Effects of Self-Excited Tip Flow Unsteadiness and Blade Row Interactions on the Performance Predictions of Low Speed and Transonic Compressor Rotors.

机译:自激叶尖流动不稳定性和叶片行相互作用对低速和跨音速压缩机转子性能预测影响的数值研究。

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摘要

The impact blade row interactions can have on the performance of compressor rotors has been well documented. It is also well known that rotor tip clearance flows can have a large effect on compressor performance and stall margin and recent research has shown that tip leakage flows can exhibit self-excited unsteadiness at near stall conditions. However, the impact of tip leakage flow on the performance and operating range of a compressor rotor, relative to other important flow features such as upstream stator wakes or downstream potential effects, has not been explored. To this end, a numerical investigation has been conducted to determine the effects of self-excited tip flow unsteadiness, upstream stator wakes, and downstream blade row interactions on the performance prediction of low speed and transonic compressor rotors. Calculations included a single blade-row rotor configuration as well as two multi-blade row configurations: one where the rotor was modeled with an upstream stator and a second where the rotor was modeled with a downstream stator. Steady-state and time accurate calculations were performed using a RANS solver and the results were compared with detailed experimental data obtained in the GE Low Speed Research Compressor and the Notre Dame Transonic Rig at several operating conditions including near stall. Differences in the performance predictions between the three configurations were then used to determine the effect of the upstream stator wakes and the downstream blade row interactions. Results obtained show that for both the low speed and transonic research compressors used in this investigation time-accurate RANS analysis is necessary to accurately predict the stalling character of the rotor. Additionally, for the first time it is demonstrated that capturing the unsteady tip flow can have a larger impact on rotor performance predictions than adjacent blade row interactions.
机译:叶片行的相互作用对压缩机转子性能的影响已得到充分证明。众所周知,转子叶尖间隙流会对压缩机性能和失速裕度产生很大影响,最近的研究表明,叶尖泄漏流在失速条件下会表现出自激不稳定。但是,相对于其他重要的流量特性(例如上游定子尾流或下游潜在效应),未探究叶尖泄漏流对压缩机转子性能和工作范围的影响。为此,已经进行了数值研究,以确定自激式叶尖流动的不稳定性,上游定子尾流和下游叶片排相互作用对低速和跨音速压缩机转子性能预测的影响。计算包括单叶片行转子配置以及两种多叶片行配置:一种是转子以上游定子为模型,第二种转子以下游定子为模型。使用RANS求解器进行稳态和时间准确的计算,并将结果与​​GE低速研究压缩机和Notre Dame Transonic钻机在包括失速在内的几种操作条件下获得的详细实验数据进行比较。然后使用三种配置之间的性能预测差异来确定上游定子尾流和下游叶片排相互作用的影响。获得的结果表明,对于本研究中使用的低速和跨音速研究型压缩机,时间精确的RANS分析对于准确预测转子的失速特性是必要的。另外,首次证明捕获不稳定的叶尖流量比相邻叶片行相互作用对转子性能预测的影响更大。

著录项

  • 作者

    Lee, Daniel H.;

  • 作者单位

    University of Cincinnati.;

  • 授予单位 University of Cincinnati.;
  • 学科 Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 413 p.
  • 总页数 413
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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