Vibration Damping and Acoustic Behavior of PU-Filled Non-Stochastic Aluminum Cellular Solids

Aluminum-based cellular solids are promising lightweight structural materials considering their high specific strength and vibration damping, being potential candidates for future railway vehicles with enhanced riding comfort and low fuel consumption. The filling of these lattices with polymer-based...

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Main Authors: Vitor Hugo Carneiro, Hélder Puga, José Meireles
Format: Article
Language:English
Published: MDPI AG 2021-04-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/11/5/725
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spelling doaj-02213f6377674716a8aba770fa64f71c2021-04-28T23:04:52ZengMDPI AGMetals2075-47012021-04-011172572510.3390/met11050725Vibration Damping and Acoustic Behavior of PU-Filled Non-Stochastic Aluminum Cellular SolidsVitor Hugo Carneiro0Hélder Puga1José Meireles2CMEMS-UMinho, Campus of Azurém, University of Minho, 4800-058 Guimarães, PortugalCMEMS-UMinho, Campus of Azurém, University of Minho, 4800-058 Guimarães, PortugalMEtRiCS-Mechanical Engineering and Resource Sustainability Center, Campus of Azurém, University pf Minho, 4800-058 Guimarães, PortugalAluminum-based cellular solids are promising lightweight structural materials considering their high specific strength and vibration damping, being potential candidates for future railway vehicles with enhanced riding comfort and low fuel consumption. The filling of these lattices with polymer-based (i.e., polyurethane) foams may further improve the overall vibration/noise-damping without significantly increasing their density. This study explores the dynamic (i.e., frequency response) and acoustic properties of unfilled and polyurethane-filled aluminum cellular solids to characterize their behavior and explore their benefits in terms of vibration and noise-damping. It is shown that polyurethane filling can increase the vibration damping and transmission loss, especially if the infiltration process uses flexible foams. Considering sound reflection, however, it is shown that polyurethane filled samples (0.27–0.30 at 300 Hz) tend to display lower values of sound absorption coefficient relatively to unfilled samples (0.75 at 600 Hz), is this attributed to a reduction in overall porosity, tortuosity and flow resistivity. Foam-filled samples (43–44 dB at 700–1200 Hz) were shown to be more suitable to reduce sound transmission rather than reflection than unfilled samples (21 dB at 700 Hz). It was shown that the morphology of these cellular solids might be optimized depending on the desired application: (i) unfilled aluminum cellular solids are appropriate to mitigate internal noises due to their high sound absorption coefficient; and (ii) PU filled cellular solids are appropriate to prevent exterior noises and vibration damping due to their high transmission loss in a wide range of frequencies and vibration damping.https://www.mdpi.com/2075-4701/11/5/725cellular solidsaluminum latticesvibration dampingnoise-dampingsound absorption coefficienttransmission loss
collection DOAJ
language English
format Article
sources DOAJ
author Vitor Hugo Carneiro
Hélder Puga
José Meireles
spellingShingle Vitor Hugo Carneiro
Hélder Puga
José Meireles
Vibration Damping and Acoustic Behavior of PU-Filled Non-Stochastic Aluminum Cellular Solids
Metals
cellular solids
aluminum lattices
vibration damping
noise-damping
sound absorption coefficient
transmission loss
author_facet Vitor Hugo Carneiro
Hélder Puga
José Meireles
author_sort Vitor Hugo Carneiro
title Vibration Damping and Acoustic Behavior of PU-Filled Non-Stochastic Aluminum Cellular Solids
title_short Vibration Damping and Acoustic Behavior of PU-Filled Non-Stochastic Aluminum Cellular Solids
title_full Vibration Damping and Acoustic Behavior of PU-Filled Non-Stochastic Aluminum Cellular Solids
title_fullStr Vibration Damping and Acoustic Behavior of PU-Filled Non-Stochastic Aluminum Cellular Solids
title_full_unstemmed Vibration Damping and Acoustic Behavior of PU-Filled Non-Stochastic Aluminum Cellular Solids
title_sort vibration damping and acoustic behavior of pu-filled non-stochastic aluminum cellular solids
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2021-04-01
description Aluminum-based cellular solids are promising lightweight structural materials considering their high specific strength and vibration damping, being potential candidates for future railway vehicles with enhanced riding comfort and low fuel consumption. The filling of these lattices with polymer-based (i.e., polyurethane) foams may further improve the overall vibration/noise-damping without significantly increasing their density. This study explores the dynamic (i.e., frequency response) and acoustic properties of unfilled and polyurethane-filled aluminum cellular solids to characterize their behavior and explore their benefits in terms of vibration and noise-damping. It is shown that polyurethane filling can increase the vibration damping and transmission loss, especially if the infiltration process uses flexible foams. Considering sound reflection, however, it is shown that polyurethane filled samples (0.27–0.30 at 300 Hz) tend to display lower values of sound absorption coefficient relatively to unfilled samples (0.75 at 600 Hz), is this attributed to a reduction in overall porosity, tortuosity and flow resistivity. Foam-filled samples (43–44 dB at 700–1200 Hz) were shown to be more suitable to reduce sound transmission rather than reflection than unfilled samples (21 dB at 700 Hz). It was shown that the morphology of these cellular solids might be optimized depending on the desired application: (i) unfilled aluminum cellular solids are appropriate to mitigate internal noises due to their high sound absorption coefficient; and (ii) PU filled cellular solids are appropriate to prevent exterior noises and vibration damping due to their high transmission loss in a wide range of frequencies and vibration damping.
topic cellular solids
aluminum lattices
vibration damping
noise-damping
sound absorption coefficient
transmission loss
url https://www.mdpi.com/2075-4701/11/5/725
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