Experimental Investigation of Mode-Frequency Scattering at Fan Stages

Author:

Behn Maximilian1,Tapken Ulf1

Affiliation:

1. German Aerospace Center (DLR) Engine Acoustics Department, Institute of Propulsion Technology, , Berlin 10625 , Germany

Abstract

Abstract For the development of low-noise fan designs the sound generation must be reduced at the source, but also sound transmission effects through the rotor can be exploited to reduce the noise emitted to the far-field. Rotor shielding has been identified as a means of noise abatement, where rotor counter-rotating modes are blocked by the rotor and transmit poorly to the inlet. An effect that is rarely considered in this context is mode-frequency scattering at the rotor, which can circumvent the blockage effect by shifting the sound energy in frequency and mode order, typically to a rotor co-rotating mode order that transmits efficiently to the inlet. An experimental investigation is presented, where the transmission, reflection, and scattering of individually generated modes through a fan stage is measured by means of a loudspeaker array and microphone arrays, upstream and downstream. The highly resolved measured data comprise the variation of mode order, frequency, rotor speed, and aerodynamic operating conditions. In this study, the focus is on mode-frequency scattering, for which results are presented for high and low rotor speeds.

Publisher

ASME International

Reference24 articles.

1. Acoustic Reflection and Transmission of Rotors and Stators Including Mode and Frequency Scattering;Hanson,1997

2. Propagation of Sound Waves Through a Blade Row: II. Analysis Based on the Acceleration Potential Method;Kaji;J. Sound Vib.,1970

3. On the Transmission of Sound Waves Through a Blade Row;Koch;J. Sound Vib.,1971

4. The Role of Rotor Blade Blockage in the Propagation of Fan Noise Interaction Tones;Philpot,1975

Cited by 1 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. Experimental Validation of an Analytical Sound Transmission Model for Fan Stages;30th AIAA/CEAS Aeroacoustics Conference (2024);2024-05-30

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