Nanofibrous Resonant Membrane for Acoustic Applications

Because the absorption of lower-frequency sound is problematic with fibrous material made up of coarser fibers, highly efficient sound absorption materials must be developed. The focus of this paper is on the development of a new material with high acoustic absorption characteristics. For low-freque...

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Main Author: K. Kalinová
Format: Article
Language:English
Published: Hindawi Limited 2011-01-01
Series:Journal of Nanomaterials
Online Access:http://dx.doi.org/10.1155/2011/265720
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spelling doaj-36f5d3ed1cfc4c7dbd659011fc0edbda2020-11-24T21:47:49ZengHindawi LimitedJournal of Nanomaterials1687-41101687-41292011-01-01201110.1155/2011/265720265720Nanofibrous Resonant Membrane for Acoustic ApplicationsK. Kalinová0Department of Nonwovens, Faculty of Textile Engineering, Technical University of Liberec, Studentská 2, 46117 Liberec, Czech RepublicBecause the absorption of lower-frequency sound is problematic with fibrous material made up of coarser fibers, highly efficient sound absorption materials must be developed. The focus of this paper is on the development of a new material with high acoustic absorption characteristics. For low-frequency absorption, structures based upon the resonance principle of nanofibrous layers are employed in which the resonance of some elements allows acoustic energy to be converted into thermal energy. A nanofibrous membrane was produced by an electrostatic spinning process from an aqueous solution of polyvinyl alcohol and the acoustic characteristics of the material measured. The resonant frequency prediction for the nanofibrous membrane is based on research into its production parameters. The distance between electrodes during the electrostatic spinning process determines the average diameter of the nanofibers, and the outlet velocity of the material determines its area density. The average diameter of nanofibers was measured using the Lucia software package directly from an electron microscope image. The resonant frequency of nanofibrous membranes was determined from the sound absorption coefficient and transmission loss measurement.http://dx.doi.org/10.1155/2011/265720
collection DOAJ
language English
format Article
sources DOAJ
author K. Kalinová
spellingShingle K. Kalinová
Nanofibrous Resonant Membrane for Acoustic Applications
Journal of Nanomaterials
author_facet K. Kalinová
author_sort K. Kalinová
title Nanofibrous Resonant Membrane for Acoustic Applications
title_short Nanofibrous Resonant Membrane for Acoustic Applications
title_full Nanofibrous Resonant Membrane for Acoustic Applications
title_fullStr Nanofibrous Resonant Membrane for Acoustic Applications
title_full_unstemmed Nanofibrous Resonant Membrane for Acoustic Applications
title_sort nanofibrous resonant membrane for acoustic applications
publisher Hindawi Limited
series Journal of Nanomaterials
issn 1687-4110
1687-4129
publishDate 2011-01-01
description Because the absorption of lower-frequency sound is problematic with fibrous material made up of coarser fibers, highly efficient sound absorption materials must be developed. The focus of this paper is on the development of a new material with high acoustic absorption characteristics. For low-frequency absorption, structures based upon the resonance principle of nanofibrous layers are employed in which the resonance of some elements allows acoustic energy to be converted into thermal energy. A nanofibrous membrane was produced by an electrostatic spinning process from an aqueous solution of polyvinyl alcohol and the acoustic characteristics of the material measured. The resonant frequency prediction for the nanofibrous membrane is based on research into its production parameters. The distance between electrodes during the electrostatic spinning process determines the average diameter of the nanofibers, and the outlet velocity of the material determines its area density. The average diameter of nanofibers was measured using the Lucia software package directly from an electron microscope image. The resonant frequency of nanofibrous membranes was determined from the sound absorption coefficient and transmission loss measurement.
url http://dx.doi.org/10.1155/2011/265720
work_keys_str_mv AT kkalinova nanofibrousresonantmembraneforacousticapplications
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