Investigation of micro-perforated plate structure and cavity used as Helmholtz resonator in wheel arch liner
Year 2025,
Volume: 9 Issue: 1, 38 - 45, 20.03.2025
Yasemin Gültekin
,
Thomas Jean
,
M. Atakan Akar
,
Umut Kumlu
Abstract
Noise pollution, which is one of the pollutions in the developing world, affects human health and daily life. Cars make up a large part of this noise. This study focused on the transition noise reduction of automobiles by integrating the micro-perforated plate structure into the wheel arch liners. The noise absorption coefficients of the samples produced within the scope of the study were experimentally tested in Alpha Cabin and then validated with numerical simulations. When the results of the simulations were compared with the experimental test data, a compatible correlation was reached with the test data in terms of the reliability of the research. Finally, these structures were integrated and simulated in 4 different combinations on the wheel arch liners of a vehicle that is actively used in the market, and their noise absorption properties were compared with each other. As expected, while the noise absorption coefficients increased with the increase in perforated structures, combinations were obtained to meet the expectations of customers in the automotive industry. In addition, it is stated in the study results that the use of perforated structures in wheel arch liner (WAL) has the potential to reduce pass-by noise values.
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Year 2025,
Volume: 9 Issue: 1, 38 - 45, 20.03.2025
Yasemin Gültekin
,
Thomas Jean
,
M. Atakan Akar
,
Umut Kumlu
References
- Chen, S., Wang, D., & Liu, B. (2013). Automotive Exterior Noise Optimization Using Grey Relational Analysis Coupled with Principal Component Analysis. Fluctuation and Noise Letters, 12(3), 1–22. https://doi.org/10.1142/S021947751350017X
- U. S. Office of Noise Abatement Control & National Association of Noise Control Officials. (1981). Noise Effects Handbooks: a Desk Reference to Health and Welfare Effects of Noise. National Association of Noise Control Officials, Washington D. C.
- Ibarra, D., Ramírez-Mendoza, R., & López, E. (2016). A New Approach for Estimating Noise Emission of Automotive Vehicles. Acta Acustica United with Acustica, 102(5), 930–937. https://doi.org/10.3813/AAA.919007
- Baudson, R., Lafont, T., Balaramraja, V.S., Ronzio, F., & Nieuwenhof, B. V. (2019). Parametric Analysis of an Automotive Wheel Arch Acoustic Treatment. In Automotive Acoustics Conference 2019. (pp. 185–199)
- Huijssen, J., Hallez, R., Pluymers, B., & Desmet, W. (2013). A synthesis procedure for pass-by noise of automotive vehicles employing numerically evaluated source–receiver transfer functions. Journal of Sound and Vibration, 332(15), 3790–3802. https://doi.org/10.1016/j.jsv.2013.01.042
- Yasuda, T., Wu, C., Nakagawa, N., & Nagamura, K. (2013). Studies on an automobile muffler with the acoustic characteristic of low-pass filter and Helmholtz resonator. Applied Acoustics, 74(1), 49–57. https://doi.org/10.1016/j.apacoust.2012.06.007
- ISO 362-1: 2015., (2015). Measurement of Noise Emitted by Accelerating Road Vehicles – Part 1: M and N Categories.
- Bertolini, C., Horak, J., & Lafont, T., (2020). Design of sound package for pass-by noise reduction: process and application. In Automotive Acoustics Conference 2019 (pp.137–169).
- Bozca, M., & Fietkau, P. (2010). Empirical model based optimization of gearbox geometric design parameters to reduce rattle noise in an automotive transmission. Mechanism and Machine Theory, 45(11), 1599–612. https://doi.org/10.1016/j.mechmachtheory.2010.06.013
- Nghiem, G., & Wang, S. (2014). Improvement of engine sound radiation for the new pass-by noise regulation. SAE Technical Paper Series, 2014-01-2074, https://doi.org/10.4271/2014-01-2074
- Zhu, C.Y. (2011). Research on the absorption characteristic of three-layer microperforate plate of the automotive body. Advanced Materials Research, 201–203, 2160–2166. https://doi.org/10.4028/www.scientific.net/AMR.201-203.2160
- Allam, S., & Åbom, M. (2011). A new type of muffler based on microperforated tubes. Journal of Vibration and Acoustics. 133(3), 1-8. https://doi.org/10.1115/1.4002956
- O’Boy, D.J. (2020). Automotive wheel and tyre design for suppression of acoustic cavity noise through the incorporation of passive resonators. Journal of Sound and Vibration, 467, 1–14. https://doi.org/10.1016/j.jsv.2019.115037
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- Çolak, Ö.Ü., & Çakır, Y. (2019). Genetic algorithm optimization method for parameter estimation in the modeling of storage modulus of thermoplastics. Sigma Journal of Engineering and Natural Sciences, 37(3), 981–8.
- Hariprasad, K., Ravichandran, K., Jayaseelan, V., & Muthuramalingam, T. (2020). Acoustic and mechanical characterisation of polypropylene composites reinforced by natural fibres for automotive applications. Journal of Materials Research and Technology, 9(6), 14029–14035. https://doi.org/10.1016/j.jmrt.2020.09.112
- Cho, D., Seo, J.M., Lee, H.S., Cho, C.W., Han, S.O., & Park, W.H. (2007). Property improvement of natural fiber-reinforced green composites by water treatment. Advanced Composite Materials: The Official Journal of the Japan Society of Composite Materials, 16(4), 299–314. https://doi.org/10.1163/156855107782325249
- Gültekin, Y., Jean, T., Akar, M.A., & Kumlu, U., (2024) Acoustic emission reduction in vehicles by using MPP structures in wheel ARCH liner structures. Sigma Journal of Engineering and Natural Sciences, 42(6), 1749-1755. https://doi.org/10.14744/sigma.2024.00133
- Santoni, A., Bonfiglio, P., Fausti, P., & Pompoli, F. (2021). Computation of the alpha cabin sound absorption coefficient by using the finite transfer matrix method (FTMM): inter-laboratory test on porous media. Journal of Vibration and Acoustics, 143(2), https://doi.org/10.1115/1.4048395
- Bertolini, C., & Guj, L. (2011). Numerical simulation of the measurement of the diffuse field absorption coefficient in small reverberation rooms. SAE International Journal of Passenger Cars - Mechanical Systems, 4(2), 1168–1194. https://doi.org/10.4271/2011-01-1641
- Atalla, N., & Sgard, F. (2007). Modeling of perforated plates and screens using rigid frame porous models. Journal of Sound and Vibration, 303(1–2), 195–208. https://doi.org/10.1016/j.jsv.2007.01.012
- Panneton, R., & Olny, X. (2006). Acoustical determination of the parameters governing viscous dissipation in porous media. The Journal of the Acoustical Society of America. 119(4), 2027–2040. https://doi.org/10.1121/1.2169923
- Olny, X., & Panneton, R. (2008). Acoustical determination of the parameters governing thermal dissipation in porous media. The Journal of the Acoustical Society of America. 123(2), 814–824. https://doi.org/10.1121/1.2828066
- Johnson, D.L., Koplik, J., & Dashen, R. (1987). Theory of dynamic permeability and tortuosity in fluid saturated porous media. Journal of Fluid Mechanics. 176, 379–402. https://doi.org/10.1017/S0022112087000727
- Champoux, Y., & Allard, J.F. (1991). Dynamic tortuosity and bulk modulus in air-saturated porous media. Journal of Applied Physics. 70(4), 1975–1979. https://doi.org/10.1063/1.349482
- Lafarge, D., Lemarinier, P., Allard, J.F., & Tarnow, V. (1997). Dynamic compressibility of air in porous structures at audible frequencies. The Journal of the Acoustical Society of America, 102(4), 1995–2006. https://doi.org/10.1121/1.419690