Measurement of Aerodynamic and Acoustic Quantities Describing Flow around a Body Placed in a Wind Tunnel

Author:

Mahdal Miroslav1,Dobeš Josef2,Kozubková Milada3

Affiliation:

1. The Department of Control Systems and Instrumentation, Faculty of Mechanical Engineering , Technical University of Ostrava , 17. listopadu 15, 708 33 , Ostrava , Czech Republic

2. Hanon Systems Autopal Services, s. r. o., Lužická 984/14, 741 01 , Nový Jičín , Czech Republic

3. Department of Hydromechanics and Hydraulic Equipment, Faculty of Mechanical Engineering , VŠB - Technical University of Ostrava , 17. listopadu 15, 708 33 Ostrava - Poruba , Czech Republic

Abstract

Abstract Aerodynamically generated noise affects passenger comfort in cars, high-speed trains, and airplanes, and thus, automobile manufacturers aim for its reduction. Investigation methods of noise and vibration sources can be divided into two groups, i.e. experimental research and mathematical research. Recently, owing to the increase in computing power, research in aerodynamically generated noise (aero-acoustics) is beginning to use modern methods such as computational fluid dynamics or fluid-structure interaction. The mathematical model of turbulent flow is given by the system of partial differential equations, its solution is ambiguous and thus requires verification by physical experiment. The results of numerical methods are affected by the boundary conditions of high quality gained from the actual experiment. This article describes an application of complex measurement methodology in the aerodynamic and acoustic (vibro-acoustic) fields. The first part of the paper is focused on the specification of the experimental equipment, i.e. the wind tunnel, which was significantly upgraded in order to obtain the relevant aerodynamics and vibro-acoustics data. The paper presents specific results from the measurement of the aerodynamic and vibro-acoustic fields.

Publisher

Walter de Gruyter GmbH

Subject

Instrumentation,Biomedical Engineering,Control and Systems Engineering

Reference19 articles.

1. [1] Sun, Z., Song, J., An, Y. (2012). Numerical simulation of aerodynamic noise generated by high speed trains. Engineering Applications of Computational Fluid Mechanics, 6 (2), 173-185.

2. [2] Détry, S., Manera, J., Detandt, Y., d’Udekem, D. (2010). Aero-acoustic predictions of industrial dashboard HVAC systems. In 24th National Conference on Noise Control Engineering 2010 (Noise-Con 10). Ashland, Ohio: Noise Control Foundation, 870-881.

3. [3] Manera, J., Detandt, Y., d’Udekem, D., Détry, S. (2009). Aero-acoustic predictions of automotive instrument panel ducts. SAE Technical Paper 2009-01-2237.

4. [4] Van Antwerpen, B., d’Udekem, D., Bourachot, J.-L., Leandre, J.-P., Walbott, A., Bouvier, B. (2009). Vibro-acoustic simulation of diesel injection ducts. SAE Technical Paper 2009-01-2057.

5. [5] Gustafsson, M., Jacqmot, J., Caro, S. (2010). Experimental validation of an efficient procedure for large acoustic radiation problems. In Proceedings of ISMA2010 including USD2010. Heverlee, Belgium: Katholieke Universiteit Leuven, 4557-4566.

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