Effectiveness and nonlinear characterization of vibro-impact energy harvesting absorbers in controlling base-excited systems
In this study, model derivations are carried out of a dynamical system under base excitations with a piezoelectric energy harvesting absorber as the tuned-mass-damper. Additionally, amplitude stoppers are included to the absorber in order to create a broadband resonant response, increasing the windo...
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description | In this study, model derivations are carried out of a dynamical system under base excitations with a piezoelectric energy harvesting absorber as the tuned-mass-damper. Additionally, amplitude stoppers are included to the absorber in order to create a broadband resonant response, increasing the window of operational use for energy harvesting and system's control. This study is unique in the fact that the energy harvester is coupled to the source of its excitation. A nonlinear reduced-order model is developed using Euler-Lagrange principle and the Galerkin method to accurately estimate the energy harvesting absorber's displacement, harvested power, and the oscillating response of the primary structure. The nonlinear interaction of the energy harvesting absorber and the amplitude stoppers are the focus of this study, where an in-depth investigation of bifurcation points of the primary structure and energy harvesting absorber responses is performed. Due to a transfer of energy between the primary structure and the absorber, it is shown that a soft stopper with stiffness 5 x 10(3) N m(-1) has great control of the primary structure with 60% of the uncontrolled amplitude being reduced, as well as an increase of the harvested energy. Medium stoppers with small initial gaps size and hard stoppers do not control the primary structure and show a decrease in the energy harvesting capabilities due to the activation of the nonlinear contact-impact interactions. These stoppers also generate aperiodic regions due to the possible presence of grazing bifurcations. |
doi_str_mv | 10.1088/1361-665X/ac1b16 |
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(SNL-NM), Albuquerque, NM (United States)</creatorcontrib><description>In this study, model derivations are carried out of a dynamical system under base excitations with a piezoelectric energy harvesting absorber as the tuned-mass-damper. Additionally, amplitude stoppers are included to the absorber in order to create a broadband resonant response, increasing the window of operational use for energy harvesting and system's control. This study is unique in the fact that the energy harvester is coupled to the source of its excitation. A nonlinear reduced-order model is developed using Euler-Lagrange principle and the Galerkin method to accurately estimate the energy harvesting absorber's displacement, harvested power, and the oscillating response of the primary structure. The nonlinear interaction of the energy harvesting absorber and the amplitude stoppers are the focus of this study, where an in-depth investigation of bifurcation points of the primary structure and energy harvesting absorber responses is performed. Due to a transfer of energy between the primary structure and the absorber, it is shown that a soft stopper with stiffness 5 x 10(3) N m(-1) has great control of the primary structure with 60% of the uncontrolled amplitude being reduced, as well as an increase of the harvested energy. Medium stoppers with small initial gaps size and hard stoppers do not control the primary structure and show a decrease in the energy harvesting capabilities due to the activation of the nonlinear contact-impact interactions. 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(SNL-NM), Albuquerque, NM (United States)</creatorcontrib><title>Effectiveness and nonlinear characterization of vibro-impact energy harvesting absorbers in controlling base-excited systems</title><title>Smart materials and structures</title><addtitle>SMS</addtitle><addtitle>SMART MATER STRUCT</addtitle><addtitle>Smart Mater. Struct</addtitle><description>In this study, model derivations are carried out of a dynamical system under base excitations with a piezoelectric energy harvesting absorber as the tuned-mass-damper. Additionally, amplitude stoppers are included to the absorber in order to create a broadband resonant response, increasing the window of operational use for energy harvesting and system's control. This study is unique in the fact that the energy harvester is coupled to the source of its excitation. A nonlinear reduced-order model is developed using Euler-Lagrange principle and the Galerkin method to accurately estimate the energy harvesting absorber's displacement, harvested power, and the oscillating response of the primary structure. The nonlinear interaction of the energy harvesting absorber and the amplitude stoppers are the focus of this study, where an in-depth investigation of bifurcation points of the primary structure and energy harvesting absorber responses is performed. Due to a transfer of energy between the primary structure and the absorber, it is shown that a soft stopper with stiffness 5 x 10(3) N m(-1) has great control of the primary structure with 60% of the uncontrolled amplitude being reduced, as well as an increase of the harvested energy. Medium stoppers with small initial gaps size and hard stoppers do not control the primary structure and show a decrease in the energy harvesting capabilities due to the activation of the nonlinear contact-impact interactions. These stoppers also generate aperiodic regions due to the possible presence of grazing bifurcations.</description><subject>absorber control</subject><subject>contact-impact</subject><subject>energy harvesting</subject><subject>Instruments & Instrumentation</subject><subject>MATERIALS SCIENCE</subject><subject>Materials Science, Multidisciplinary</subject><subject>nonlinear characterization</subject><subject>optimal performance</subject><subject>Science & Technology</subject><subject>Technology</subject><issn>0964-1726</issn><issn>1361-665X</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2021</creationdate><recordtype>article</recordtype><sourceid>HGBXW</sourceid><recordid>eNqNkM9rFDEYhoNYcG179xi86rT5MZvJHGVpVSh4UegtJN98aVN2kyVJV1f84810Sm-CuQTyvc_Hm4eQd5xdcKb1JZeKd0qtby8tcMfVK7J6eXpNVmxUfccHod6Qt6U8MMa5lnxF_lx5j1DDASOWQm2caExxGyLaTOHeZgsVc_hta0iRJk8PweXUhd2-DWiD8t2RttgBSw3xjlpXUnaYCw2RQoo1p-12HjhbsMNfECpOtBxLxV05IyfebgueP9-n5Mf11ffNl-7m2-evm083Hch-rJ0HXE--V3aY1nItpWZOAqpR2AGEd3qcFON6ABjBghSDBzcxyYUexKScEvKUvF_2plbSlLkD3Ldysf3ccC1Yz_sWYksIciolozf7HHY2Hw1nZlZsZp9m9mkWxQ35sCA_0SXf9mIEfMEYY0pr0bOnw1ta_396E-qT8k16jLWhHxc0pL15SI85Nl3_7vUXc1WhzA</recordid><startdate>20210901</startdate><enddate>20210901</enddate><creator>Alvis, Tyler</creator><creator>Abdelkefi, Abdessattar</creator><general>IOP Publishing</general><general>Iop Publishing Ltd</general><scope>BLEPL</scope><scope>DTL</scope><scope>HGBXW</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>OIOZB</scope><scope>OTOTI</scope><orcidid>https://orcid.org/0000-0002-7284-2683</orcidid><orcidid>https://orcid.org/0000000272842683</orcidid></search><sort><creationdate>20210901</creationdate><title>Effectiveness and nonlinear characterization of vibro-impact energy harvesting absorbers in controlling base-excited systems</title><author>Alvis, Tyler ; Abdelkefi, Abdessattar</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c349t-fce5df46a7d5353380b3ce692a7c2fb89d60187cc9cac327fcbd0312872d6b623</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2021</creationdate><topic>absorber control</topic><topic>contact-impact</topic><topic>energy harvesting</topic><topic>Instruments & Instrumentation</topic><topic>MATERIALS SCIENCE</topic><topic>Materials Science, Multidisciplinary</topic><topic>nonlinear characterization</topic><topic>optimal performance</topic><topic>Science & Technology</topic><topic>Technology</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Alvis, Tyler</creatorcontrib><creatorcontrib>Abdelkefi, Abdessattar</creatorcontrib><creatorcontrib>Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)</creatorcontrib><collection>Web of Science Core Collection</collection><collection>Science Citation Index Expanded</collection><collection>Web of Science - Science Citation Index Expanded - 2021</collection><collection>CrossRef</collection><collection>OSTI.GOV - Hybrid</collection><collection>OSTI.GOV</collection><jtitle>Smart materials and structures</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Alvis, Tyler</au><au>Abdelkefi, Abdessattar</au><aucorp>Sandia National Lab. (SNL-NM), Albuquerque, NM (United States)</aucorp><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Effectiveness and nonlinear characterization of vibro-impact energy harvesting absorbers in controlling base-excited systems</atitle><jtitle>Smart materials and structures</jtitle><stitle>SMS</stitle><stitle>SMART MATER STRUCT</stitle><addtitle>Smart Mater. Struct</addtitle><date>2021-09-01</date><risdate>2021</risdate><volume>30</volume><issue>9</issue><spage>95028</spage><pages>95028-</pages><artnum>095028</artnum><issn>0964-1726</issn><eissn>1361-665X</eissn><coden>SMSTER</coden><abstract>In this study, model derivations are carried out of a dynamical system under base excitations with a piezoelectric energy harvesting absorber as the tuned-mass-damper. Additionally, amplitude stoppers are included to the absorber in order to create a broadband resonant response, increasing the window of operational use for energy harvesting and system's control. This study is unique in the fact that the energy harvester is coupled to the source of its excitation. A nonlinear reduced-order model is developed using Euler-Lagrange principle and the Galerkin method to accurately estimate the energy harvesting absorber's displacement, harvested power, and the oscillating response of the primary structure. The nonlinear interaction of the energy harvesting absorber and the amplitude stoppers are the focus of this study, where an in-depth investigation of bifurcation points of the primary structure and energy harvesting absorber responses is performed. Due to a transfer of energy between the primary structure and the absorber, it is shown that a soft stopper with stiffness 5 x 10(3) N m(-1) has great control of the primary structure with 60% of the uncontrolled amplitude being reduced, as well as an increase of the harvested energy. Medium stoppers with small initial gaps size and hard stoppers do not control the primary structure and show a decrease in the energy harvesting capabilities due to the activation of the nonlinear contact-impact interactions. These stoppers also generate aperiodic regions due to the possible presence of grazing bifurcations.</abstract><cop>BRISTOL</cop><pub>IOP Publishing</pub><doi>10.1088/1361-665X/ac1b16</doi><tpages>24</tpages><orcidid>https://orcid.org/0000-0002-7284-2683</orcidid><orcidid>https://orcid.org/0000000272842683</orcidid><oa>free_for_read</oa></addata></record> |
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subjects | absorber control contact-impact energy harvesting Instruments & Instrumentation MATERIALS SCIENCE Materials Science, Multidisciplinary nonlinear characterization optimal performance Science & Technology Technology |
title | Effectiveness and nonlinear characterization of vibro-impact energy harvesting absorbers in controlling base-excited systems |
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