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Numerical Investigation of the Unsteady Interaction Within a Close-Coupled Centrifugal Compressor Used in an Aero Engine

机译:航空发动机用密闭型离心压缩机内非定常相互作用的数值研究

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The present work forms part of a research project of the Institute of Jet Propulsion and Turbomachinery at the RWTH Aachen University in collaboration with GE Aviation. The subject is the detailed numerical analysis of the unsteady flow field, focusing on the interaction between the impeller and the passage diffuser of a close-coupled transonic centrifugal compressor used in an aero engine. The centrifugal compressor investigated is characterized by a close-coupled impeller and passage diffuser with a radial gap of only 3.6%. The close coupling tends to provide a high aerodynamic efficiency but simultaneously cause a high unsteady interaction between the impeller and the diffuser. These unsteady effects can have a significant impact on the performance of both components and present a challenge to state-of-the-art numerical methods. With increasing compressor efficiency, the more important it is to have an understanding of the detailed unsteady flow physics. Experimental data was obtained from a state-of-the art centrifugal compressor test rig located at the Institute of Jet Propulsion. Steady and unsteady pressure measurements within the impeller and diffuser are used to gain detailed information on the temporal, time-averaged, and spectral pressure distributions within the stage to validate the CFD. The work presented here shows the unsteady phenomena caused by the interaction and the location and propagation of these phenomena within the centrifugal stage. Within the impeller, the exducer is in first order excited by the blade passing frequency (BPF) of the diffuser, whereas in the diffuser both the BPF and the passage passing frequency (PPF), are present up until the end of the pipe-diffuser. Significant effects on the integral component performance could only be identified for the impeller. Special focus is paid to evaluate the diffuser upstream pressure field, since this is the major source of unsteadiness within the impeller. The performance of the rotor decreases due to the unsteady interaction. This effect is traced back to the unsteady tip-clearance flow, in which the time-averaged mass transport decreases, whereas the specific entropy production increases in a nonlinear way. Within the diffuser, local effects counteracting with respect to the integral performance are found. In front of the throat, there is less decay in the total pressure as a result of tangentially expanding pressure waves. Within the passage a decrease inflow uniformity in the unsteady flow is identified as the reason for the lower diffusion up until the throat and higher losses within the downstream diffuser passage.
机译:目前的工作是亚琛工业大学喷气推进与涡轮机械研究所与GE航空合作研究项目的一部分。主题是非定常流场的详细数值分析,重点是航空发动机中使用的紧密耦合跨音速离心压缩机的叶轮和通道扩压器之间的相互作用。所研究的离心压缩机的特征在于,叶轮和通道扩压器紧密耦合,径向间隙仅为3.6%。紧密联接趋向于提供高的空气动力学效率,但是同时导致叶轮和扩散器之间的高度不稳定的相互作用。这些不稳定的影响可能会对这两个组件的性能产生重大影响,并且对最新的数值方法提出了挑战。随着压缩机效率的提高,对详细的非定常流动物理原理的理解更为重要。实验数据是从位于喷气推进研究所的最先进的离心压缩机试验台获得的。叶轮和扩散器内的稳态和非稳态压力测量结果用于获取有关阶段内时间,时间平均和频谱压力分布的详细信息,以验证CFD。此处介绍的工作显示了由离心阶段中的相互作用以及这些现象的位置和传播引起的不稳定现象。在叶轮内部,扩散器的叶片通过频率(BPF)在一阶激发器,而在扩散器中,BPF和通过频率(PPF)都一直存在,直到管道扩散器的末端。仅对于叶轮才能确定对整体部件性能的重要影响。由于这是叶轮内部不稳定的主要根源,因此需要特别注意评估扩压器的上游压力场。转子的性能由于不稳定的相互作用而降低。这种效应可追溯到不稳定的尖端间隙流动,在该流动中,时间平均质量传递减少,而比熵产生以非线性方式增加。在扩散器内,发现了与整体性能有关的局部效应。在喉咙前面,由于切向膨胀的压力波,总压力的衰减较小。在通道内,非恒定流中流入均匀性的降低被认为是直至喉咙处的较低扩散和下游扩散器通道内较高损失的原因。

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  • 来源
    《Journal of turbomachinery》 |2014年第4期|041006.1-041006.12|共12页
  • 作者单位

    Institute of Jet Propulsion and Turbomachinery,RWTH Aachen University,Templegraben 55,Aachen 52062, Germany;

    Institute of Jet Propulsion and Turbomachinery,RWTH Aachen University,Templegraben 55,Aachen 52062, Germany;

    Institute of Jet Propulsion and Turbomachinery,RWTH Aachen University,Templegraben 55,Aachen 52062, Germany;

    Institute of Jet Propulsion and Turbomachinery,RWTH Aachen University,Templegraben 55,Aachen 52062, Germany;

    GE Aviation,1000 Western Avenue,MD47410,Lynn, MA 01910;

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  • 正文语种 eng
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  • 入库时间 2022-08-18 00:30:17

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