Model approximation for sound transmission from underwater structures in high-frequency range

Sound-insulation model provides a straightforward way to describe sound transmission behaviours of the thin-walled structures in engineering applications. The sound transmission characteristics depend on the parameters of incident wave, such as incident wave amplitude and incident angles. However, t...

Full description

Bibliographic Details
Main Authors: Zhang Rui, Yang Desen, Shi Shengguo, Yang Boquan
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:MATEC Web of Conferences
Online Access:https://www.matec-conferences.org/articles/matecconf/pdf/2019/32/matecconf_fcac2019_09007.pdf
id doaj-2910260317c14b4486edf53f5cd53016
record_format Article
spelling doaj-2910260317c14b4486edf53f5cd530162021-03-02T09:32:32ZengEDP SciencesMATEC Web of Conferences2261-236X2019-01-012830900710.1051/matecconf/201928309007matecconf_fcac2019_09007Model approximation for sound transmission from underwater structures in high-frequency rangeZhang RuiYang DesenShi ShengguoYang Boquan0College of Underwater Acoustic Engineering, Harbin Engineering UniversitySound-insulation model provides a straightforward way to describe sound transmission behaviours of the thin-walled structures in engineering applications. The sound transmission characteristics depend on the parameters of incident wave, such as incident wave amplitude and incident angles. However, this model is limited when the sound source is located in an enclosed space (e.g., noise source in underwater cabins), because it is difficult to obtain incident angles especially in the high-frequency range. In this paper, we develop a simply analytical model that can effectively study the sound transmission from an enclosed shell with internal acoustic excitation. In order to extend the application of the sound-insulation model to a submerged shell, the structural vibration equation is firstly simplified to the plate vibration equation. Then, the sound pressure near the inner surface of the shell is decomposed into an expansion of orthogonal cavity eigenmodes, and each cavity mode is replaced by two pairs of incident plane waves. Finally, the acoustic transmission loss can be obtained by substituting the parameters of incident waves into the sound-insulation model. Numerical results show that the sound transmission for the fundamental cavity mode (0, 0, 0) can be explained by the normal incidence in the sound-insulation model, while every other modes corresponds to a group of oblique incident plane waves whose incident angles decrease monotonically with the increase of frequency. In addition, it can be observed that the total reflection phenomenon in the sound-insulation model is consistent with the low radiation efficiency of the high order modes in the shell model.https://www.matec-conferences.org/articles/matecconf/pdf/2019/32/matecconf_fcac2019_09007.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Zhang Rui
Yang Desen
Shi Shengguo
Yang Boquan
spellingShingle Zhang Rui
Yang Desen
Shi Shengguo
Yang Boquan
Model approximation for sound transmission from underwater structures in high-frequency range
MATEC Web of Conferences
author_facet Zhang Rui
Yang Desen
Shi Shengguo
Yang Boquan
author_sort Zhang Rui
title Model approximation for sound transmission from underwater structures in high-frequency range
title_short Model approximation for sound transmission from underwater structures in high-frequency range
title_full Model approximation for sound transmission from underwater structures in high-frequency range
title_fullStr Model approximation for sound transmission from underwater structures in high-frequency range
title_full_unstemmed Model approximation for sound transmission from underwater structures in high-frequency range
title_sort model approximation for sound transmission from underwater structures in high-frequency range
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2019-01-01
description Sound-insulation model provides a straightforward way to describe sound transmission behaviours of the thin-walled structures in engineering applications. The sound transmission characteristics depend on the parameters of incident wave, such as incident wave amplitude and incident angles. However, this model is limited when the sound source is located in an enclosed space (e.g., noise source in underwater cabins), because it is difficult to obtain incident angles especially in the high-frequency range. In this paper, we develop a simply analytical model that can effectively study the sound transmission from an enclosed shell with internal acoustic excitation. In order to extend the application of the sound-insulation model to a submerged shell, the structural vibration equation is firstly simplified to the plate vibration equation. Then, the sound pressure near the inner surface of the shell is decomposed into an expansion of orthogonal cavity eigenmodes, and each cavity mode is replaced by two pairs of incident plane waves. Finally, the acoustic transmission loss can be obtained by substituting the parameters of incident waves into the sound-insulation model. Numerical results show that the sound transmission for the fundamental cavity mode (0, 0, 0) can be explained by the normal incidence in the sound-insulation model, while every other modes corresponds to a group of oblique incident plane waves whose incident angles decrease monotonically with the increase of frequency. In addition, it can be observed that the total reflection phenomenon in the sound-insulation model is consistent with the low radiation efficiency of the high order modes in the shell model.
url https://www.matec-conferences.org/articles/matecconf/pdf/2019/32/matecconf_fcac2019_09007.pdf
work_keys_str_mv AT zhangrui modelapproximationforsoundtransmissionfromunderwaterstructuresinhighfrequencyrange
AT yangdesen modelapproximationforsoundtransmissionfromunderwaterstructuresinhighfrequencyrange
AT shishengguo modelapproximationforsoundtransmissionfromunderwaterstructuresinhighfrequencyrange
AT yangboquan modelapproximationforsoundtransmissionfromunderwaterstructuresinhighfrequencyrange
_version_ 1724239132945809408