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A Study on the Acoustic Simulation for the Components of an Intake System
Technical Paper
2011-01-1520
ISSN: 0148-7191, e-ISSN: 2688-3627
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English
Abstract
The reduction of intake noise is a very important factor in controlling the interior noise levels of vehicles, particularly at low and major engine operating speeds. A vehicle intake system generally consists of air cleaner box, hose, duct, and filter element. Also, resonators and porous duct are included, being used to reduce intake noise. For more accurate estimation of the transmission loss (TL), it seems important to develop a CAE model that accurately describes this system. In this paper, simple methods, which can consider the effects of filter element and vibro-acoustic coupling, are suggested which could remarkably improve estimation accuracy of the TL. The filter element is assumed as equivalent semi-rigid porous materials characterized by the flow resistivity defined by the pressure drop, velocity, and thickness. Then, the transfer admittance matrices, the relation between the sound velocities on both sides of the filter element with the corresponding sound pressure, can be obtained. The effect of filter element can be considered in CAE model when this relation is used as a boundary condition. A correction factor is proposed to include other absorption effects such as the vibro-acoustic coupling effect, etc. Additionally, the effect of a porous duct can be considered in CAE model by using the acoustic wall impedance of porous duct as a boundary condition. Comparing the predicted data and the measured, it can be seen that great improvement is achieved in the prediction accuracy of the TL
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Citation
Park, C., Jeong, J., Kim, G., Kim, D. et al., "A Study on the Acoustic Simulation for the Components of an Intake System," SAE Technical Paper 2011-01-1520, 2011, https://doi.org/10.4271/2011-01-1520.Also In
References
- Park, C.-M. Ih, J.-G. Nakayama, Y. Kitahara, S. “Single-figure rating of porous woven hoses using a non-linear flow resistance model” Journal of Sound and Vibration 257 2 404 410 2002
- Munjal, M. L. Acoustics of Ducts and Mufflers, Chapter 2 Theory of Acoustic Filters 58 John Wiley & Son NewYork 1987
- Tao, Z. Seybert, A. F. “A Review of Current Techniques for Measuring Muffler Transmission Loss,” SAE Technical Paper 2003-01-1653 2003 10.4271/2003-01-1653
- Ih, J.-G. Kang, J.-H. “Acoustic modeling of an air cleaner filter in the engine intake system” Proceedings of KSNVE Conference 114 117 2006
- Brechlin, E. Inclusion of four-pole models in Sysnoise: Sysnoise Technical Note LMS 2000
- Tournour, M. Numerical Acoustics - Theoretical Manual, Chapter 5 Acoustic Treatments 147 LMS International 2006
- Beranek, L. L. Noise and Vibration Control Institute of Noise Control Engineering 257 1988
- Park, C.-M. Ih, J.-G. Nakayama, Y. Kitahara, S. “Measurement of acoustic impedance and prediction of transmission loss of the porous woven hose in engine intake systems” Applied Acoustics 63 775 794 2002
- Alex, M. “Air Intake Development - Effects of Coupled Fluid/Structure Modes,” SAE Technical Paper 2001-01-1431 2001 10.4271/2001-01-1431
- Kido, H. Kuwahara, H. Brechlin, E. Boonen, R. “Modeling the Sound Source of an Intake and Predicting the Intake Sound Pressure Level for a Motorcycle,” SAE Technical Paper 2003-32-0058 2003 10.4271/2003-32-0058
- Kumbhar, M. S. Miskin, A. Chaudhari, V. “Study of Intake and Exhaust System Acoustic Performance Refinement with the Help of Vibro-Acoustic Analysis Tool,” SAE Technical Paper 2010-01-1427 2010 10.4271/2010-01-1427
- SYSNOISE rev 5.6 Users Manual