Analysis and Prediction of Shock-Induced Vortex Circulation in Transonic Compressors

Author:

Clark Kenneth P.1,Gorrell Steven E.1

Affiliation:

1. Department of Mechanical Engineering, Brigham Young University, Provo, UT 84602 e-mail:

Abstract

Multiple high-fidelity time-accurate computational fluid dynamics simulations were performed to investigate the effects of upstream stator loading and rotor shock strength on vortex shedding characteristics in a single-stage transonic compressor. Three loadings on the upstream stator row of decreased, nominal, and increased loading in conjunction with three axial spacings of close, mid, and far were studied for this analysis. The time-accurate urans code turbo was used to generate periodic, quarter annulus simulations of the blade row interaction (BRI) compressor rig. It was observed that vortex shedding was synchronized to the passing of a rotor bow shock. Results show that vortex strength increases linearly with stator loading and rotor bow shock strength. “Normal” and “large” shock-induced vortices formed on the stator trailing edge (TE) immediately after the shock passing, but the large vortices were strengthened at the TE due to a low-velocity region on the suction surface. This low-velocity region was generated upstream on the suction surface from a shock-induced thickening of the boundary layer or separation bubble. The circulation of the large vortices was greater than the normal vortices by a factor of 1.7, 1.83, and 2.04 for decreased, nominal, and increased deswirler loadings. At decreased loading, only 24% of the measured vortices were considered large, while at nominal loading 58% were large. A model was developed to predict shock-induced vortex circulation from a known rotor bow shock strength, stator diffusion factor, and near-wake parameters. The model predicts the average vortex circulation very well, with 5% difference between predicted and measured values. An understanding of the unsteady interactions associated with blade loading and rotor shock strength in transonic stages will help compressor designers account for unsteady flow physics at design and off-design operating conditions.

Publisher

ASME International

Subject

Mechanical Engineering

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Enhancement of Rotor Loading and Suppression of Stator Separation through Reduction of the Blade–Row Gap;International Journal of Turbomachinery, Propulsion and Power;2023-03-01

2. The effect of wake vortex on the unsteady characteristics of tip leakage flow in a high-loading counter-rotating compressor;Proceedings of the Institution of Mechanical Engineers, Part A: Journal of Power and Energy;2023-02-27

3. Effect of Rotor-Stator Spacing on Compressor Performance at Variable Operating Conditions;Applied Sciences;2022-07-08

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