Design of a single degree of freedom acoustic liner for a fan noise test rig

Author:

Spillere André MN1ORCID,Braga Danilo S1,Seki Leonardo A1,Bonomo Lucas A1ORCID,Cordioli Julio A1,Rocamora Bernardo M2,Greco Paulo C2ORCID,dos Reis Danillo C3,Coelho Eduardo LC3

Affiliation:

1. Department of Mechanical Engineering, Federal University of Santa Catarina, Florianópolis/SC, Brazil

2. Department of Aeronautical Engineering, University of São Paulo, São Carlos/SP, Brazil

3. Department of Research and Technology, Embraer S.A., São José dos Campos/SP, Brazil

Abstract

Acoustic liners are an essential part of noise reduction technologies commonly applied in aircraft turbofan engines. Fan noise suppression can be achieved by selecting an appropriate liner design with optimal acoustic impedance at the blade passing frequency. Great efforts have been made not only to improve experimental characterization and numerical methods for acoustic liners, but also to understand noise generation mechanisms, which ultimately impacts on the liner design itself. To gain confidence in the liner design process, a liner barrel was developed and fabricated for the Fan Noise Test Rig located at the University of São Paulo. To this end, analytical methods were used to determine the optimal acoustic impedance for the Fan Noise Test Rig, and a flat test sample was fabricated for experimental characterization with flow using both in-situ and impedance eduction techniques at the Federal University of Santa Catarina. A liner barrel of same nominal geometry was fabricated and placed at the Fan Noise Test Rig, and a modal decomposition indicated that the Tyler-Sofrin mode has been successfully suppressed at the first blade passing frequency. Numerical predictions of liner transmission loss considering the flat sample impedance showed good agreement with experimental results.

Funder

Financiadora de Estudos e Projetos

Conselho Nacional de Desenvolvimento Científico e Tecnológico

Publisher

SAGE Publications

Subject

Acoustics and Ultrasonics,Aerospace Engineering

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