Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation

<p dir="ltr">This study presents a Finite Element (FE) model updating methodology of a piping system and demonstrates vibration attenuation at its resonant frequencies using tuned local resonators distributed along its length. An experimental laboratory scaled version of a prototype...

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Main Author: S. El-Borgi (14150532) (author)
Other Authors: A. Alrumaihi (17058096) (author), P. Rajendran (14150541) (author), R. Yazbeck (17058045) (author), R. Fernandes (1551049) (author), J.G. Boyd (17058048) (author), D.C. Lagoudas (17058051) (author)
Published: 2021
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author S. El-Borgi (14150532)
author2 A. Alrumaihi (17058096)
P. Rajendran (14150541)
R. Yazbeck (17058045)
R. Fernandes (1551049)
J.G. Boyd (17058048)
D.C. Lagoudas (17058051)
author2_role author
author
author
author
author
author
author_facet S. El-Borgi (14150532)
A. Alrumaihi (17058096)
P. Rajendran (14150541)
R. Yazbeck (17058045)
R. Fernandes (1551049)
J.G. Boyd (17058048)
D.C. Lagoudas (17058051)
author_role author
dc.creator.none.fl_str_mv S. El-Borgi (14150532)
A. Alrumaihi (17058096)
P. Rajendran (14150541)
R. Yazbeck (17058045)
R. Fernandes (1551049)
J.G. Boyd (17058048)
D.C. Lagoudas (17058051)
dc.date.none.fl_str_mv 2021-03-15T00:00:00Z
dc.identifier.none.fl_str_mv 10.1016/j.ijmecsci.2020.106211
dc.relation.none.fl_str_mv https://figshare.com/articles/journal_contribution/Model_updating_of_a_scaled_piping_system_and_vibration_attenuation_via_locally_resonant_bandgap_formation/24210726
dc.rights.none.fl_str_mv CC BY 4.0
info:eu-repo/semantics/openAccess
dc.subject.none.fl_str_mv Engineering
Mechanical engineering
Resources engineering and extractive metallurgy
Blue Similitude Theory
Scaling Laws
Free and Forced Vibration Testing
Finite Element Model Updating
Local Resonators
Bandgap Formation
Metamaterial Structure
dc.title.none.fl_str_mv Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation
dc.type.none.fl_str_mv Text
Journal contribution
info:eu-repo/semantics/publishedVersion
text
contribution to journal
description <p dir="ltr">This study presents a Finite Element (FE) model updating methodology of a piping system and demonstrates vibration attenuation at its resonant frequencies using tuned local resonators distributed along its length. An experimental laboratory scaled version of a prototype piping system inspired from existing piping structures in the oil and gas industry is assembled to study its dynamic behavior under laboratory conditions. A dynamic structural similitude analysis is carried out to derive scaling factors for frequencies and mode shapes between the prototype and scaled piping systems. These scaling factors are verified with the aid of both detailed and reduced-order FE models. Experimental natural frequencies and mode shapes are obtained based on the impact hammer modal test and the forced vibration sine sweep test and then compared with numerical results. Discrepancies between measured and computed results due to uncertainties in the FE model necessitate the use of an FE model updating technique to minimize the error between the predicted and the measured response. This updating strategy is carried out by iteratively adjusting parameters associated with the assumed boundary conditions until a relatively faithful computational model that can replicate the actual behavior of the structure is obtained. The updated reduced order model is then used to investigate the creation of locally resonant bandgaps centered at the first three resonant frequencies of the structure by embedding tuned resonant cantilever beams with tip masses along the length of the piping system. Using a harmonic response analysis, it is shown that an attenuation is obtained at all considered target frequencies with distinct edge frequencies appearing in the frequency response for the third mode of vibration.</p><h2>Other Information</h2><p dir="ltr">Published in: International Journal of Mechanical Sciences<br>License: <a href="http://creativecommons.org/licenses/by/4.0/" target="_blank">http://creativecommons.org/licenses/by/4.0/</a><br>See article on publisher's website: <a href="https://dx.doi.org/10.1016/j.ijmecsci.2020.106211" target="_blank">https://dx.doi.org/10.1016/j.ijmecsci.2020.106211</a></p>
eu_rights_str_mv openAccess
id Manara2_e751e729f4df1d2f07e8f737f01d783e
identifier_str_mv 10.1016/j.ijmecsci.2020.106211
network_acronym_str Manara2
network_name_str Manara2
oai_identifier_str oai:figshare.com:article/24210726
publishDate 2021
repository.mail.fl_str_mv
repository.name.fl_str_mv
repository_id_str
rights_invalid_str_mv CC BY 4.0
spelling Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formationS. El-Borgi (14150532)A. Alrumaihi (17058096)P. Rajendran (14150541)R. Yazbeck (17058045)R. Fernandes (1551049)J.G. Boyd (17058048)D.C. Lagoudas (17058051)EngineeringMechanical engineeringResources engineering and extractive metallurgyBlue Similitude TheoryScaling LawsFree and Forced Vibration TestingFinite Element Model UpdatingLocal ResonatorsBandgap FormationMetamaterial Structure<p dir="ltr">This study presents a Finite Element (FE) model updating methodology of a piping system and demonstrates vibration attenuation at its resonant frequencies using tuned local resonators distributed along its length. An experimental laboratory scaled version of a prototype piping system inspired from existing piping structures in the oil and gas industry is assembled to study its dynamic behavior under laboratory conditions. A dynamic structural similitude analysis is carried out to derive scaling factors for frequencies and mode shapes between the prototype and scaled piping systems. These scaling factors are verified with the aid of both detailed and reduced-order FE models. Experimental natural frequencies and mode shapes are obtained based on the impact hammer modal test and the forced vibration sine sweep test and then compared with numerical results. Discrepancies between measured and computed results due to uncertainties in the FE model necessitate the use of an FE model updating technique to minimize the error between the predicted and the measured response. This updating strategy is carried out by iteratively adjusting parameters associated with the assumed boundary conditions until a relatively faithful computational model that can replicate the actual behavior of the structure is obtained. The updated reduced order model is then used to investigate the creation of locally resonant bandgaps centered at the first three resonant frequencies of the structure by embedding tuned resonant cantilever beams with tip masses along the length of the piping system. Using a harmonic response analysis, it is shown that an attenuation is obtained at all considered target frequencies with distinct edge frequencies appearing in the frequency response for the third mode of vibration.</p><h2>Other Information</h2><p dir="ltr">Published in: International Journal of Mechanical Sciences<br>License: <a href="http://creativecommons.org/licenses/by/4.0/" target="_blank">http://creativecommons.org/licenses/by/4.0/</a><br>See article on publisher's website: <a href="https://dx.doi.org/10.1016/j.ijmecsci.2020.106211" target="_blank">https://dx.doi.org/10.1016/j.ijmecsci.2020.106211</a></p>2021-03-15T00:00:00ZTextJournal contributioninfo:eu-repo/semantics/publishedVersiontextcontribution to journal10.1016/j.ijmecsci.2020.106211https://figshare.com/articles/journal_contribution/Model_updating_of_a_scaled_piping_system_and_vibration_attenuation_via_locally_resonant_bandgap_formation/24210726CC BY 4.0info:eu-repo/semantics/openAccessoai:figshare.com:article/242107262021-03-15T00:00:00Z
spellingShingle Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation
S. El-Borgi (14150532)
Engineering
Mechanical engineering
Resources engineering and extractive metallurgy
Blue Similitude Theory
Scaling Laws
Free and Forced Vibration Testing
Finite Element Model Updating
Local Resonators
Bandgap Formation
Metamaterial Structure
status_str publishedVersion
title Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation
title_full Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation
title_fullStr Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation
title_full_unstemmed Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation
title_short Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation
title_sort Model updating of a scaled piping system and vibration attenuation via locally resonant bandgap formation
topic Engineering
Mechanical engineering
Resources engineering and extractive metallurgy
Blue Similitude Theory
Scaling Laws
Free and Forced Vibration Testing
Finite Element Model Updating
Local Resonators
Bandgap Formation
Metamaterial Structure