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Experimental investigation of flow field in a laboratory-scale compressor

  • Hongwei Ma*
  • , Wei Wei
  • , Xavier Ottavy
  • *Corresponding author for this work
  • Collaborative Innovation Center for Advanced Aero-Engine
  • Beihang University
  • China Aerospace Science and Technology Corporation
  • École centrale de Lyon

Research output: Contribution to journalArticlepeer-review

Abstract

The inner flow environment of turbomachinery presents strong three-dimensional, rotational, and unsteady characteristics. Consequently, a deep understanding of these flow phenomena will be the prerequisite to establish a state-of-the-art design system of turbomachinery. Currently the development of more accurate turbulence models and CFD tools is in urgent need for a high-quality database for validation, especially the advanced CFD tools, such as large eddy simulation (LES). Under this circumstance, this paper presents a detailed experimental investigation on the 3D unsteady flow field inside a laboratory-scale isolated-rotor with multiple advanced measurement techniques, including traditional aerodynamic probes, hotwire probes, unsteady endwall static pressure measurement, and stereo particle image velocimetry (SPIV). The inlet boundary layer profile is measured with both hotwire probe and aerodynamic probe. The steady and unsteady flow fields at the outlet of the rotor are measured with a mini five-hole probe and a single-slanted hotwire probe. The instantaneous flow field in the rotor tip region inside the passage is captured with SPIV, and then a statistical analysis of the spatial distribution of the instantaneous tip leakage vortex/flow is performed to understand its dynamic characteristics. Besides these, the uncertainty analysis of each measurement technique is described. This database is quite sufficient to validate the advanced numerical simulation with LES. The identification process of the tip leakage vortex core in the instantaneous frames obtained from SPIV is performed deliberately. It is concluded that the ensemble-averaged flow field could not represent the tip leakage vortex strength and the trajectory trace. The development of the tip leakage vortex could be clearly cataloged into three phases according to their statistical spatial distribution. The streamwise velocity loss induced by the tip leakage flow increases until the splitting process is weak and the turbulent mixing phase is dominant.

Original languageEnglish
Pages (from-to)31-46
Number of pages16
JournalChinese Journal of Aeronautics
Volume30
Issue number1
DOIs
StatePublished - 1 Feb 2017

Keywords

  • Database
  • Laboratory-scale compressor
  • SPIV
  • Tip leakage flow
  • Tip leakage vortex

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