Complete vibrational bandgap in thin elastic metamaterial plates with periodically slot-embedded local resonators
This paper presents a metamaterial plate (metaplate) consisting of a periodic array of holes on a homogeneous thin plate with slot-embedded resonators. The study numerically proves that the proposed model can generate a complete vibrational bandgap in the low-frequency range. A simplified analytical...
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Veröffentlicht in: | Archive of applied mechanics (1991) 2018-08, Vol.88 (8), p.1263-1274 |
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creator | He, Jia-Hao Huang, Hsin-Haou |
description | This paper presents a metamaterial plate (metaplate) consisting of a periodic array of holes on a homogeneous thin plate with slot-embedded resonators. The study numerically proves that the proposed model can generate a complete vibrational bandgap in the low-frequency range. A simplified analytical model was proposed for feasibly and accurately capturing the dispersion behavior and first bandgap characteristics in the low-frequency range, which can be used for initial design and bandgap study of the metaplate. A realistic and practical unit metaplate was subsequently designed to verify the analytical model through finite element simulations. The metaplate not only generated a complete vibrational bandgap but also exhibited excellent agreement in both analytical and finite element models for predicting the bandgap characteristics. This study facilitates the design of opening and tuning bandgaps for potential applications such as low-frequency vibration isolation and stress wave mitigation. |
doi_str_mv | 10.1007/s00419-018-1371-0 |
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The study numerically proves that the proposed model can generate a complete vibrational bandgap in the low-frequency range. A simplified analytical model was proposed for feasibly and accurately capturing the dispersion behavior and first bandgap characteristics in the low-frequency range, which can be used for initial design and bandgap study of the metaplate. A realistic and practical unit metaplate was subsequently designed to verify the analytical model through finite element simulations. The metaplate not only generated a complete vibrational bandgap but also exhibited excellent agreement in both analytical and finite element models for predicting the bandgap characteristics. This study facilitates the design of opening and tuning bandgaps for potential applications such as low-frequency vibration isolation and stress wave mitigation.</description><subject>Classical Mechanics</subject><subject>Computer simulation</subject><subject>Engineering</subject><subject>Finite element method</subject><subject>Mathematical analysis</subject><subject>Mathematical models</subject><subject>Metamaterials</subject><subject>Original</subject><subject>Resonators</subject><subject>Stress waves</subject><subject>Theoretical and Applied Mechanics</subject><subject>Thin plates</subject><subject>Vibration analysis</subject><subject>Wave dispersion</subject><issn>0939-1533</issn><issn>1432-0681</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2018</creationdate><recordtype>article</recordtype><recordid>eNp1kM1LAzEQxYMoWKt_gLeA5-hMsp9HKX5BwYueQzabbbdkN9skVfrfm7KCJy8zw-P3Hswj5BbhHgHKhwCQYc0AK4aiRAZnZIGZ4AyKCs_JAmpRM8yFuCRXIewg4TmHBdmv3DBZEw396huvYu9GZWmjxnajJtqPNG7TMFaF2Gs6mKgGFY3vEzTZdAX63cctnZLk2l4ra480WBeZGRrTtqal1iWVehNScnQ-XJOLTtlgbn73knw-P32sXtn6_eVt9bhmWmARmQCddUojL7FsTIZNV4iC61a3pmoKEKXKBKDmSnQdKsh4raquS96qrgyvUCzJ3Zw7ebc_mBDlzh18-i5IDkWeZXnFeaJwprR3IXjTycn3g_JHiSBPzcq5WZmaladmJSQPnz0hsePG-L_k_00_NH19og</recordid><startdate>20180801</startdate><enddate>20180801</enddate><creator>He, Jia-Hao</creator><creator>Huang, Hsin-Haou</creator><general>Springer Berlin Heidelberg</general><general>Springer Nature B.V</general><scope>AAYXX</scope><scope>CITATION</scope><orcidid>https://orcid.org/0000-0002-2390-5166</orcidid></search><sort><creationdate>20180801</creationdate><title>Complete vibrational bandgap in thin elastic metamaterial plates with periodically slot-embedded local resonators</title><author>He, Jia-Hao ; Huang, Hsin-Haou</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c316t-30c4fac12717be41bf6362cdcde8b6037a4301c2a3ff1a0429a8ffc31898e2813</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2018</creationdate><topic>Classical Mechanics</topic><topic>Computer simulation</topic><topic>Engineering</topic><topic>Finite element method</topic><topic>Mathematical analysis</topic><topic>Mathematical models</topic><topic>Metamaterials</topic><topic>Original</topic><topic>Resonators</topic><topic>Stress waves</topic><topic>Theoretical and Applied Mechanics</topic><topic>Thin plates</topic><topic>Vibration analysis</topic><topic>Wave dispersion</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>He, Jia-Hao</creatorcontrib><creatorcontrib>Huang, Hsin-Haou</creatorcontrib><collection>CrossRef</collection><jtitle>Archive of applied mechanics (1991)</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>He, Jia-Hao</au><au>Huang, Hsin-Haou</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Complete vibrational bandgap in thin elastic metamaterial plates with periodically slot-embedded local resonators</atitle><jtitle>Archive of applied mechanics (1991)</jtitle><stitle>Arch Appl Mech</stitle><date>2018-08-01</date><risdate>2018</risdate><volume>88</volume><issue>8</issue><spage>1263</spage><epage>1274</epage><pages>1263-1274</pages><issn>0939-1533</issn><eissn>1432-0681</eissn><abstract>This paper presents a metamaterial plate (metaplate) consisting of a periodic array of holes on a homogeneous thin plate with slot-embedded resonators. The study numerically proves that the proposed model can generate a complete vibrational bandgap in the low-frequency range. A simplified analytical model was proposed for feasibly and accurately capturing the dispersion behavior and first bandgap characteristics in the low-frequency range, which can be used for initial design and bandgap study of the metaplate. A realistic and practical unit metaplate was subsequently designed to verify the analytical model through finite element simulations. The metaplate not only generated a complete vibrational bandgap but also exhibited excellent agreement in both analytical and finite element models for predicting the bandgap characteristics. 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subjects | Classical Mechanics Computer simulation Engineering Finite element method Mathematical analysis Mathematical models Metamaterials Original Resonators Stress waves Theoretical and Applied Mechanics Thin plates Vibration analysis Wave dispersion |
title | Complete vibrational bandgap in thin elastic metamaterial plates with periodically slot-embedded local resonators |
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