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Acoustic radiation from the submerged circular cylindrical shell treated with active constrained layer damping
Based on the transfer matrix method of exploring the circular cylindrical shell treated with active constrained layer damping(i.e., ACLD), combined with the analytical solution of the Helmholtz equation for a point source, a multi-point multipole virtual source simulation method is for the first tim...
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Published in: | Chinese physics B 2015-12, Vol.24 (12), p.361-372 |
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creator | 袁丽芸 向宇 陆静 蒋红华 |
description | Based on the transfer matrix method of exploring the circular cylindrical shell treated with active constrained layer damping(i.e., ACLD), combined with the analytical solution of the Helmholtz equation for a point source, a multi-point multipole virtual source simulation method is for the first time proposed for solving the acoustic radiation problem of a submerged ACLD shell. This approach, wherein some virtual point sources are assumed to be evenly distributed on the axial line of the cylindrical shell, and the sound pressure could be written in the form of the sum of the wave functions series with the undetermined coefficients, is demonstrated to be accurate to achieve the radiation acoustic pressure of the pulsating and oscillating spheres respectively. Meanwhile, this approach is proved to be accurate to obtain the radiation acoustic pressure for a stiffened cylindrical shell. Then, the chosen number of the virtual distributed point sources and truncated number of the wave functions series are discussed to achieve the approximate radiation acoustic pressure of an ACLD cylindrical shell. Applying this method, different radiation acoustic pressures of a submerged ACLD cylindrical shell with different boundary conditions, different thickness values of viscoelastic and piezoelectric layer, different feedback gains for the piezoelectric layer and coverage of ACLD are discussed in detail. Results show that a thicker thickness and larger velocity gain for the piezoelectric layer and larger coverage of the ACLD layer can obtain a better damping effect for the whole structure in general. Whereas, laying a thicker viscoelastic layer is not always a better treatment to achieve a better acoustic characteristic. |
doi_str_mv | 10.1088/1674-1056/24/12/124301 |
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This approach, wherein some virtual point sources are assumed to be evenly distributed on the axial line of the cylindrical shell, and the sound pressure could be written in the form of the sum of the wave functions series with the undetermined coefficients, is demonstrated to be accurate to achieve the radiation acoustic pressure of the pulsating and oscillating spheres respectively. Meanwhile, this approach is proved to be accurate to obtain the radiation acoustic pressure for a stiffened cylindrical shell. Then, the chosen number of the virtual distributed point sources and truncated number of the wave functions series are discussed to achieve the approximate radiation acoustic pressure of an ACLD cylindrical shell. Applying this method, different radiation acoustic pressures of a submerged ACLD cylindrical shell with different boundary conditions, different thickness values of viscoelastic and piezoelectric layer, different feedback gains for the piezoelectric layer and coverage of ACLD are discussed in detail. Results show that a thicker thickness and larger velocity gain for the piezoelectric layer and larger coverage of the ACLD layer can obtain a better damping effect for the whole structure in general. Whereas, laying a thicker viscoelastic layer is not always a better treatment to achieve a better acoustic characteristic.</description><identifier>ISSN: 1674-1056</identifier><identifier>EISSN: 2058-3834</identifier><identifier>EISSN: 1741-4199</identifier><identifier>DOI: 10.1088/1674-1056/24/12/124301</identifier><language>eng</language><subject>ACLD ; Acoustics ; Active constrained layers ; Cylindrical shells ; Damping ; Piezoelectricity ; Point sources ; Submerged ; Wave functions ; 主动约束层阻尼 ; 亥姆霍兹方程 ; 加筋圆柱壳 ; 反馈增益 ; 声辐射问题 ; 水下 ; 辐射声压</subject><ispartof>Chinese physics B, 2015-12, Vol.24 (12), p.361-372</ispartof><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><citedby>FETCH-LOGICAL-c315t-6f4bddccf5d3492cdda502be68404e903b53ce5c68e6d4fc39172a80727541763</citedby><cites>FETCH-LOGICAL-c315t-6f4bddccf5d3492cdda502be68404e903b53ce5c68e6d4fc39172a80727541763</cites></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Uhttp://image.cqvip.com/vip1000/qk/85823A/85823A.jpg</thumbnail><link.rule.ids>314,776,780,27901,27902</link.rule.ids></links><search><creatorcontrib>袁丽芸 向宇 陆静 蒋红华</creatorcontrib><title>Acoustic radiation from the submerged circular cylindrical shell treated with active constrained layer damping</title><title>Chinese physics B</title><addtitle>Chinese Physics</addtitle><description>Based on the transfer matrix method of exploring the circular cylindrical shell treated with active constrained layer damping(i.e., ACLD), combined with the analytical solution of the Helmholtz equation for a point source, a multi-point multipole virtual source simulation method is for the first time proposed for solving the acoustic radiation problem of a submerged ACLD shell. This approach, wherein some virtual point sources are assumed to be evenly distributed on the axial line of the cylindrical shell, and the sound pressure could be written in the form of the sum of the wave functions series with the undetermined coefficients, is demonstrated to be accurate to achieve the radiation acoustic pressure of the pulsating and oscillating spheres respectively. Meanwhile, this approach is proved to be accurate to obtain the radiation acoustic pressure for a stiffened cylindrical shell. Then, the chosen number of the virtual distributed point sources and truncated number of the wave functions series are discussed to achieve the approximate radiation acoustic pressure of an ACLD cylindrical shell. Applying this method, different radiation acoustic pressures of a submerged ACLD cylindrical shell with different boundary conditions, different thickness values of viscoelastic and piezoelectric layer, different feedback gains for the piezoelectric layer and coverage of ACLD are discussed in detail. Results show that a thicker thickness and larger velocity gain for the piezoelectric layer and larger coverage of the ACLD layer can obtain a better damping effect for the whole structure in general. Whereas, laying a thicker viscoelastic layer is not always a better treatment to achieve a better acoustic characteristic.</description><subject>ACLD</subject><subject>Acoustics</subject><subject>Active constrained layers</subject><subject>Cylindrical shells</subject><subject>Damping</subject><subject>Piezoelectricity</subject><subject>Point sources</subject><subject>Submerged</subject><subject>Wave functions</subject><subject>主动约束层阻尼</subject><subject>亥姆霍兹方程</subject><subject>加筋圆柱壳</subject><subject>反馈增益</subject><subject>声辐射问题</subject><subject>水下</subject><subject>辐射声压</subject><issn>1674-1056</issn><issn>2058-3834</issn><issn>1741-4199</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2015</creationdate><recordtype>article</recordtype><recordid>eNo9kEtLQzEQhYMoWKt_QYIrN9fmfdNlKb6g4EbXIZ3ktpH7aJNcpf_elEph4MDwnWHOQeiekidKtJ5RVYuKEqlmTMwoKyM4oRdowojUFddcXKLJGbpGNyl9E6IoYXyC-gUMY8oBcLQu2ByGHjdx6HDeepzGdefjxjsMIcLY2ojh0IbexQC2xWnr2xbn6G0uyG_IW2whhx-PYehTjjb0Zd_ag4_Y2W4X-s0tumpsm_zdv07R18vz5_KtWn28vi8Xqwo4lblSjVg7B9BIx8WcgXNWErb2Sgsi_JzwteTgJSjtlRMN8DmtmdWkZrUUtFZ8ih5Pd3dx2I8-ZdOFBOVd2_uS11BNiKhZwQuqTijEIaXoG7OLobPxYCgxx4LNsTtz7M6wosycCi7Gh3_jdug3-5Lu7FRK1VpqIfkf-7R71g</recordid><startdate>20151201</startdate><enddate>20151201</enddate><creator>袁丽芸 向宇 陆静 蒋红华</creator><scope>2RA</scope><scope>92L</scope><scope>CQIGP</scope><scope>~WA</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>7U5</scope><scope>8FD</scope><scope>H8D</scope><scope>L7M</scope></search><sort><creationdate>20151201</creationdate><title>Acoustic radiation from the submerged circular cylindrical shell treated with active constrained layer damping</title><author>袁丽芸 向宇 陆静 蒋红华</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c315t-6f4bddccf5d3492cdda502be68404e903b53ce5c68e6d4fc39172a80727541763</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2015</creationdate><topic>ACLD</topic><topic>Acoustics</topic><topic>Active constrained layers</topic><topic>Cylindrical shells</topic><topic>Damping</topic><topic>Piezoelectricity</topic><topic>Point sources</topic><topic>Submerged</topic><topic>Wave functions</topic><topic>主动约束层阻尼</topic><topic>亥姆霍兹方程</topic><topic>加筋圆柱壳</topic><topic>反馈增益</topic><topic>声辐射问题</topic><topic>水下</topic><topic>辐射声压</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>袁丽芸 向宇 陆静 蒋红华</creatorcontrib><collection>维普_期刊</collection><collection>中文科技期刊数据库-CALIS站点</collection><collection>维普中文期刊数据库</collection><collection>中文科技期刊数据库- 镜像站点</collection><collection>CrossRef</collection><collection>Solid State and Superconductivity Abstracts</collection><collection>Technology Research Database</collection><collection>Aerospace Database</collection><collection>Advanced Technologies Database with Aerospace</collection><jtitle>Chinese physics B</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>袁丽芸 向宇 陆静 蒋红华</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Acoustic radiation from the submerged circular cylindrical shell treated with active constrained layer damping</atitle><jtitle>Chinese physics B</jtitle><addtitle>Chinese Physics</addtitle><date>2015-12-01</date><risdate>2015</risdate><volume>24</volume><issue>12</issue><spage>361</spage><epage>372</epage><pages>361-372</pages><issn>1674-1056</issn><eissn>2058-3834</eissn><eissn>1741-4199</eissn><abstract>Based on the transfer matrix method of exploring the circular cylindrical shell treated with active constrained layer damping(i.e., ACLD), combined with the analytical solution of the Helmholtz equation for a point source, a multi-point multipole virtual source simulation method is for the first time proposed for solving the acoustic radiation problem of a submerged ACLD shell. This approach, wherein some virtual point sources are assumed to be evenly distributed on the axial line of the cylindrical shell, and the sound pressure could be written in the form of the sum of the wave functions series with the undetermined coefficients, is demonstrated to be accurate to achieve the radiation acoustic pressure of the pulsating and oscillating spheres respectively. Meanwhile, this approach is proved to be accurate to obtain the radiation acoustic pressure for a stiffened cylindrical shell. Then, the chosen number of the virtual distributed point sources and truncated number of the wave functions series are discussed to achieve the approximate radiation acoustic pressure of an ACLD cylindrical shell. Applying this method, different radiation acoustic pressures of a submerged ACLD cylindrical shell with different boundary conditions, different thickness values of viscoelastic and piezoelectric layer, different feedback gains for the piezoelectric layer and coverage of ACLD are discussed in detail. Results show that a thicker thickness and larger velocity gain for the piezoelectric layer and larger coverage of the ACLD layer can obtain a better damping effect for the whole structure in general. Whereas, laying a thicker viscoelastic layer is not always a better treatment to achieve a better acoustic characteristic.</abstract><doi>10.1088/1674-1056/24/12/124301</doi><tpages>12</tpages></addata></record> |
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subjects | ACLD Acoustics Active constrained layers Cylindrical shells Damping Piezoelectricity Point sources Submerged Wave functions 主动约束层阻尼 亥姆霍兹方程 加筋圆柱壳 反馈增益 声辐射问题 水下 辐射声压 |
title | Acoustic radiation from the submerged circular cylindrical shell treated with active constrained layer damping |
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