Trapped Acoustic Modes in an Axial Multi-Stage Compressor Leading to Non-Synchronous Blade Vibrations

IF 1.3 Q2 ENGINEERING, AEROSPACE
Anne-Lise Fiquet, S. Aubert, N. Buffaz, A. Vercoutter, C. Brandstetter
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引用次数: 0

Abstract

Non-synchronous blade vibrations have been observed in an experimental multi-stage high-speed compressor setup at part-speed conditions. A detailed numerical study has been carried out to understand the observed phenomenon by performing unsteady full-annulus Reynolds-Averaged Navier–Stokes (RANS) simulations of the whole setup using the solver elsA. Several operating conditions have been simulated to observe this kind of phenomena along a speedline of interest. Based on the simulation results, the physical source of the non-synchronous blade vibration is identified: An aerodynamic disturbance appears in a highly loaded downstream rotor and excites a spinning acoustic mode. A “lock-in” phenomenon occurs between the blade boundary layer oscillations and the spinning acoustic mode. The establishment of axially propagating acoustic waves can lead to a complex coupling mechanism and this phenomenon is highly relevant in understanding the multi-physical interactions appearing in modern compressors. It is shown that aerodynamic disturbances occurring downstream can lead to critical excitation of rotor blades in upstream stages due to an axially propagating acoustic wave. The paper includes the analysis of a relevant transient test and a detailed analysis of the numerical results. The study shows the capability and necessity of a full-annulus multistage simulation to understand the phenomenon.
轴向多级压气机叶片非同步振动的俘获声模
在实验多级高速压气机的部分转速条件下,观察到叶片的非同步振动。利用求解器elsA对整个装置进行了非定常全环雷诺平均纳维-斯托克斯(RANS)模拟,对观察到的现象进行了详细的数值研究。为了沿着感兴趣的速度线观察这种现象,模拟了几种操作条件。根据仿真结果,确定了叶片非同步振动的物理来源:在高负荷的下游转子中出现气动扰动,激发了旋转声模态。叶片边界层振荡与旋声模式之间存在“锁定”现象。轴向传播声波的建立可以导致复杂的耦合机制,这一现象对理解现代压气机中出现的多物理相互作用具有重要意义。研究表明,由于声波的轴向传播,下游发生的气动扰动会导致上游桨叶的临界激励。本文对相关的瞬态试验进行了分析,并对数值结果进行了详细的分析。研究表明,利用全环空多级模拟来理解这一现象的能力和必要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
2.30
自引率
21.40%
发文量
29
审稿时长
11 weeks
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