Prediction of the airborne sound transmission through the front end of a vehicle
Tóm tắt
Acoustics represents a quality feature of a passenger vehicle. During the first development phases, prediction tools of the acoustic performance are required to assess in the design process. A combination of numerical and experimental data provides a good compromise between accuracy and modeling effort. A key part of the airborne noise transmission chain are the different passive acoustic treatments applied to minimize the noise impact. These treatments usually include one or more layers of poroelastic media. They exhibit a highly dissipative behavior, making them suitable as noise barriers but, at the same time, complex to model. This article aims to identify the parameters that define the appropriate numerical modeling approach for vibroacoustic systems with poroelastic acoustic packages. Two different concepts for the noise reduction based on poroelastic materials have been investigated, namely the insulation through a spring–mass component and the absorption of a porous layer. The essential principles of the theory of poroelasticity are recalled and three material formulations are derived. The application range of each material model is examined with the help of two configurations: a flat plate and a simplified model of a vehicle front end. The acoustic response of the system is solved with the help of the finite element method using the different material formulations for the description of the poroelastic layers, and the results are compared to measurements conducted in a window test bench. Finally, the main findings are summarized and recommendations towards a more realistic representation of the complete transmission chain are presented.
Tài liệu tham khảo
Allard, J., Atalla, N.: Propagation of Sound in Porous Media: Modelling Sound Absorbing Materials 2e. Wiley, Amsterdam (2009)
ASTM: Standard test method for measuring vibration-damping properties of materials. ASTM E756–10 (2010)
Atalla, N., Panneton, R., Debergue, P.: A mixed displacement-pressure formulation for poroelastic materials. J. Acoust. Soc. Am. 104(3), 1444–1452 (1998)
Biot, M.A.: Theory of propagation of elastic waves in a fluid-saturated porous solid. I. Low frequency range. J. Acoust. Soc. Am. 28(2), 168–178 (1956)
Biot, M.A.: Theory of propagation of elastic waves in a fluid-saturated porous solid. II. Higher frequency range. J. Acoust. Soc. Am. 28(2), 179–191 (1956)
Champoux, Y., Allard, J.F.: Dynamic tortuosity and bulk modulus in air-saturated porous media. J. Appl. Phys. 70(4), 1975–1979 (1991)
Duvigneau, F., Nitzschke, S., Woschke, E., Gabbert, U.: A holistic approach for the vibration and acoustic analysis of combustion engines including hydrodynamic interactions. Arch. Appl. Mech. 86(11), 1887–1900 (2016)
Duvigneau, F., Spannan, L., Gavila Lloret, M., Worschke, E., Gabbert, U.: Characterization of the frequency dependent properties of damping materials. In: PAMM—Proceedings in Applied Mathematics and Mechanics (2018)
Fernandez, C., Soize, C., Gagliardini, L.: Sound-insulation layer modelling in car computational vibroacoustics in the medium-frequency range. Acta Acust. Unit. Acust. 96(3), 437–444 (2010)
Gavila Lloret, M.: Prediction of the airborne sound transmission through a car front end model including poroelastic acoustic treatments. PhD thesis, Otto-von-Guericke-Universität Magdeburg (2018)
Gavila Lloret, M., Gabbert, U., Müller, G.: Sensitivities in the acoustic modeling of damping materials for automobile applications. In: Proceedings of the 44. Jahrestagung für Akustik - DAGA (2018)
Gavila Lloret, M., Müller, G., Duvigneau, F., Gabbert, U.: Motor- und Aggregate-Akustik: Tagungsband des 10. Magdeburger Symposiums, OvGU, chap Prediction of the sound transmission through a simplified front end model of a car, pp 257–274 (2018)
Hald, J., Mørkholt, J.: Panel contribution analysis in a vehicle cabin using a dual layer handheld array with integrated position measurement. SAE Int. J. Passeng. Cars Mech. Syst. 2(2009–01–2171), 1458–1469 (2009)
Jaouen, L., Renault, A., Deverge, M.: Elastic and damping characterizations of acoustical porous materials: available experimental methods and applications to a melamine foam. Appl. Acoust. 69(12), 1129–1140 (2008)
Jaouen, L., Bécot, F.X., Chevillote, F.: The acoustic characterization of porous media and its standards. In: 45th International Congress and Exposition on Noise Control Engineering—InterNoise 2016, Hamburg (2016)
Johnson, D.L., Koplik, J., Dashen, R.: Theory of dynamic permeability and tortuosity in fluid-saturated porous media. J. Fluid Mech. 176, 379–402 (1987)
Möser, M.: Technische Akustik, vol. 8. Springer, New YorkD (2009)
Schrader, P., Duvigneau, F., Gavila-Lloret, M., Rottengruber, H., Gabbert, U.: Finite element analysis of the acoustic behavior of poroelastic materials based on experimentally determined frequency dependent material properties. In: ISMA Conference on Noise and Vibration Engineering, Belgium (2018)
Tijs, E., Nejade, A., de Bree, H.: Verification of PU intensity calculation. INTER-NOISE and NOISE-CON Congress and Conference Proceedings, Institute of Noise Control Engineering 8, 423–434 (2009)
Zeller, P.: Handbuch Fahrzeugakustik, vol. 2. Springer, New York (2012)
