Determination of full piezoelectric complex parameters using gradient-based optimization algorithm

Kiyono, C.Y - Pérez Alvarez, Nicolás - Silva, E.C.N

Resumen:

At present, numerical techniques allow the precise simulation of mechanical structures, but the results are limited by the knowledge of the material properties. In the case of piezoelectric ceramics, the full model determination in the linear range involves five elastic, three piezoelectric, and two dielectric complex parameters. A successful solution to obtaining piezoceramic properties consists of comparing the experimental measurement of the impedance curve and the results of a numerical model by using the finite element method (FEM). In the present work, a new systematic optimization method is proposed to adjust the full piezoelectric complex parameters in the FEM model. Once implemented, the method only requires the experimental data (impedance modulus and phase data acquired by an impedometer), material density, geometry, and initial values for the properties. This method combines a FEM routine implemented using an 8-noded axisymmetric element with a gradient-based optimization routine based on the method of moving asymptotes (MMA). The main objective of the optimization procedure is minimizing the quadratic difference between the experimental and numerical electrical conductance and resistance curves (to consider resonance and antiresonance frequencies). To assure the convergence of the optimization procedure, this work proposes restarting the optimization loop whenever the procedure ends in an undesired or an unfeasible solution. Two experimental examples using PZ27 and APC850 samples are presented to test the precision of the method and to check the dependency of the frequency range used, respectively.


Detalles Bibliográficos
2016
Sistemas y Control
Inglés
Universidad de la República
COLIBRI
https://hdl.handle.net/20.500.12008/42724
Acceso abierto
Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
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author Kiyono, C.Y
author2 Pérez Alvarez, Nicolás
Silva, E.C.N
author2_role author
author
author_facet Kiyono, C.Y
Pérez Alvarez, Nicolás
Silva, E.C.N
author_role author
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dc.creator.none.fl_str_mv Kiyono, C.Y
Pérez Alvarez, Nicolás
Silva, E.C.N
dc.date.accessioned.none.fl_str_mv 2024-02-26T19:52:48Z
dc.date.available.none.fl_str_mv 2024-02-26T19:52:48Z
dc.date.issued.es.fl_str_mv 2016
dc.date.submitted.es.fl_str_mv 20240223
dc.description.abstract.none.fl_txt_mv At present, numerical techniques allow the precise simulation of mechanical structures, but the results are limited by the knowledge of the material properties. In the case of piezoelectric ceramics, the full model determination in the linear range involves five elastic, three piezoelectric, and two dielectric complex parameters. A successful solution to obtaining piezoceramic properties consists of comparing the experimental measurement of the impedance curve and the results of a numerical model by using the finite element method (FEM). In the present work, a new systematic optimization method is proposed to adjust the full piezoelectric complex parameters in the FEM model. Once implemented, the method only requires the experimental data (impedance modulus and phase data acquired by an impedometer), material density, geometry, and initial values for the properties. This method combines a FEM routine implemented using an 8-noded axisymmetric element with a gradient-based optimization routine based on the method of moving asymptotes (MMA). The main objective of the optimization procedure is minimizing the quadratic difference between the experimental and numerical electrical conductance and resistance curves (to consider resonance and antiresonance frequencies). To assure the convergence of the optimization procedure, this work proposes restarting the optimization loop whenever the procedure ends in an undesired or an unfeasible solution. Two experimental examples using PZ27 and APC850 samples are presented to test the precision of the method and to check the dependency of the frequency range used, respectively.
dc.description.es.fl_txt_mv Postprint
dc.identifier.citation.es.fl_str_mv Kiyono, C.Y, Pérez Alvarez, N, Silva, E.C.N. "Determination of full piezoelectric complex parameters using gradient-based optimization algorithm" Smart Materials and Structures, v. 25, 025019, 2016.DOI 10.1088/0964-1726/25/2/025019
dc.identifier.doi.es.fl_str_mv 10.1088/0964-1726/25/2/025019
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12008/42724
dc.language.iso.none.fl_str_mv en
eng
dc.publisher.es.fl_str_mv IOP Publishing
dc.relation.ispartof.es.fl_str_mv Smart Materials and Structures, v. 25, 025019, 2016.
dc.rights.license.none.fl_str_mv Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.none.fl_str_mv reponame:COLIBRI
instname:Universidad de la República
instacron:Universidad de la República
dc.subject.other.es.fl_str_mv Sistemas y Control
dc.title.none.fl_str_mv Determination of full piezoelectric complex parameters using gradient-based optimization algorithm
dc.type.es.fl_str_mv Artículo
dc.type.none.fl_str_mv info:eu-repo/semantics/article
dc.type.version.none.fl_str_mv info:eu-repo/semantics/publishedVersion
description Postprint
eu_rights_str_mv openAccess
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identifier_str_mv Kiyono, C.Y, Pérez Alvarez, N, Silva, E.C.N. "Determination of full piezoelectric complex parameters using gradient-based optimization algorithm" Smart Materials and Structures, v. 25, 025019, 2016.DOI 10.1088/0964-1726/25/2/025019
10.1088/0964-1726/25/2/025019
instacron_str Universidad de la República
institution Universidad de la República
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language eng
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publishDate 2016
reponame_str COLIBRI
repository.mail.fl_str_mv mabel.seroubian@seciu.edu.uy
repository.name.fl_str_mv COLIBRI - Universidad de la República
repository_id_str 4771
rights_invalid_str_mv Licencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)
spelling 2024-02-26T19:52:48Z2024-02-26T19:52:48Z201620240223Kiyono, C.Y, Pérez Alvarez, N, Silva, E.C.N. "Determination of full piezoelectric complex parameters using gradient-based optimization algorithm" Smart Materials and Structures, v. 25, 025019, 2016.DOI 10.1088/0964-1726/25/2/025019https://hdl.handle.net/20.500.12008/4272410.1088/0964-1726/25/2/025019PostprintAt present, numerical techniques allow the precise simulation of mechanical structures, but the results are limited by the knowledge of the material properties. In the case of piezoelectric ceramics, the full model determination in the linear range involves five elastic, three piezoelectric, and two dielectric complex parameters. A successful solution to obtaining piezoceramic properties consists of comparing the experimental measurement of the impedance curve and the results of a numerical model by using the finite element method (FEM). In the present work, a new systematic optimization method is proposed to adjust the full piezoelectric complex parameters in the FEM model. Once implemented, the method only requires the experimental data (impedance modulus and phase data acquired by an impedometer), material density, geometry, and initial values for the properties. This method combines a FEM routine implemented using an 8-noded axisymmetric element with a gradient-based optimization routine based on the method of moving asymptotes (MMA). The main objective of the optimization procedure is minimizing the quadratic difference between the experimental and numerical electrical conductance and resistance curves (to consider resonance and antiresonance frequencies). To assure the convergence of the optimization procedure, this work proposes restarting the optimization loop whenever the procedure ends in an undesired or an unfeasible solution. Two experimental examples using PZ27 and APC850 samples are presented to test the precision of the method and to check the dependency of the frequency range used, respectively.Made available in DSpace on 2024-02-26T19:52:48Z (GMT). No. of bitstreams: 5 KPS16.pdf: 349920 bytes, checksum: d1f49b8ccf388aa74cee33ce0e488c3e (MD5) license_text: 21936 bytes, checksum: 9833653f73f7853880c94a6fead477b1 (MD5) license_url: 49 bytes, checksum: 4afdbb8c545fd630ea7db775da747b2f (MD5) license_rdf: 23148 bytes, checksum: 9da0b6dfac957114c6a7714714b86306 (MD5) license.txt: 4244 bytes, checksum: 528b6a3c8c7d0c6e28129d576e989607 (MD5) Previous issue date: 2016enengIOP PublishingSmart Materials and Structures, v. 25, 025019, 2016.Las obras depositadas en el Repositorio se rigen por la Ordenanza de los Derechos de la Propiedad Intelectual de la Universidad De La República. (Res. Nº 91 de C.D.C. de 8/III/1994 – D.O. 7/IV/1994) y por la Ordenanza del Repositorio Abierto de la Universidad de la República (Res. Nº 16 de C.D.C. de 07/10/2014)info:eu-repo/semantics/openAccessLicencia Creative Commons Atribución - No Comercial - Sin Derivadas (CC - By-NC-ND 4.0)Sistemas y ControlDetermination of full piezoelectric complex parameters using gradient-based optimization algorithmArtículoinfo:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionreponame:COLIBRIinstname:Universidad de la Repúblicainstacron:Universidad de la RepúblicaKiyono, C.YPérez Alvarez, NicolásSilva, 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- Universidad de la Repúblicafalse
spellingShingle Determination of full piezoelectric complex parameters using gradient-based optimization algorithm
Kiyono, C.Y
Sistemas y Control
status_str publishedVersion
title Determination of full piezoelectric complex parameters using gradient-based optimization algorithm
title_full Determination of full piezoelectric complex parameters using gradient-based optimization algorithm
title_fullStr Determination of full piezoelectric complex parameters using gradient-based optimization algorithm
title_full_unstemmed Determination of full piezoelectric complex parameters using gradient-based optimization algorithm
title_short Determination of full piezoelectric complex parameters using gradient-based optimization algorithm
title_sort Determination of full piezoelectric complex parameters using gradient-based optimization algorithm
topic Sistemas y Control
url https://hdl.handle.net/20.500.12008/42724