Experimental and numerical investigation on sound absorption characteristics of 3D printed coupled-cavity integrated passive element systems
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Date
2022
Journal Title
Journal ISSN
Volume Title
Publisher
SAGE Publications Inc.
Abstract
In aerospace applications, most of the components are made of composite materials due to the high strength-to-weight ratio. However, those composite structures are poor in sound absorption; for instance, payload fairing used in the launch vehicle system experiences broadband noise. Tuned Helmholtz resonator (HR) is being used to control few dominant low frequencies, and other frequency is left untreated. In this study, the acoustic mode of the rectangular cavity has been suppressed by a novel design of integrated passive elements (IPEs), which comprises a Helmholtz resonator, micro-perforated panel, and polyurethane foam. The proposed design reduces the noise level in Low-Mid-High frequencies, which is more efficient than passive elements used to control a single target frequency. The integrated passive components fabricated using the 3D printing technique are tested experimentally in an impedance tube to quantify the sound absorption coefficient, and the results are compared with the theoretical result. Further, the study presents a simplified approach for numerical simulation of fabricated samples coupled to a rectangular cavity system, which is validated experimentally. The overall sound pressure level (OSPL) results of the proposed design achieve 4–6 dB noise level reduction in (Formula presented.) octave frequency band. © The Author(s) 2021.
Description
Keywords
Acoustic impedance, Acoustic noise, Acoustic resonators, Acoustic wave absorption, Aerospace applications, Composite structures, Sound insulating materials, Integrated passive components, Integrated passive elements, Launch vehicle systems, Micro-perforated panels, Numerical investigations, Overall sound pressure level, Sound absorption characteristic, Sound absorption coefficients, 3D printers
Citation
Journal of Low Frequency Noise Vibration and Active Control, 2022, 41, 1, pp. 60-73
