Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells

Descripción del Articulo

The closed-form solution of a generalized hybrid type quasi-3D higher order shear deformation theory (HSDT) for the bending analysis of functionally graded shells is presented. From the generalized quasi-3D HSDT (which involves the shear strain functions “f(ζ)” and “g(ζ)” and therefore their paramet...

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Detalles Bibliográficos
Autor: Mantari, J.L.
Formato: artículo
Fecha de Publicación:2015
Institución:Universidad de Ingeniería y tecnología
Repositorio:UTEC-Institucional
Lenguaje:inglés
OAI Identifier:oai:repositorio.utec.edu.pe:20.500.12815/49
Enlace del recurso:https://hdl.handle.net/20.500.12815/49
https://doi.org/10.1016/j.compositesb.2015.08.048
Nivel de acceso:acceso abierto
Materia:A. Plates
B. Elasticity
C. Analytical modeling
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dc.title.es_PE.fl_str_mv Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells
title Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells
spellingShingle Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells
Mantari, J.L.
A. Plates
B. Elasticity
C. Analytical modeling
title_short Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells
title_full Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells
title_fullStr Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells
title_full_unstemmed Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells
title_sort Refined and generalized hybrid type quasi-3D shear deformation theory for the bending analysis of functionally graded shells
author Mantari, J.L.
author_facet Mantari, J.L.
author_role author
dc.contributor.author.fl_str_mv Mantari, J.L.
dc.subject.es_PE.fl_str_mv A. Plates
B. Elasticity
C. Analytical modeling
topic A. Plates
B. Elasticity
C. Analytical modeling
description The closed-form solution of a generalized hybrid type quasi-3D higher order shear deformation theory (HSDT) for the bending analysis of functionally graded shells is presented. From the generalized quasi-3D HSDT (which involves the shear strain functions “f(ζ)” and “g(ζ)” and therefore their parameters to be selected “m” and “n”, respectively), infinite six unknowns' hybrid shear deformation theories with thickness stretching effect included, can be derived and solved in a closed-from. The generalized governing equations are also “m” and “n” parameter dependent. Navier-type closed-form solution is obtained for functionally graded shells subjected to transverse load for simply supported boundary conditions. Numerical results of new optimized hybrid type quasi-3D HSDTs are compared with the first order shear deformation theory (FSDT), and other quasi-3D HSDTs. The key conclusions that emerge from the present numerical results suggest that: (a) all non-polynomial HSDTs should be optimized in order to improve the accuracy of those theories; (b) the optimization procedure in all the cases is, in general, beneficial in terms of accuracy of the non-polynomial hybrid type quasi-3D HSDT; (c) it is possible to gain accuracy by keeping the unknowns constant; (d) there is not unique quasi-3D HSDT which performs well in any particular example problems, i.e. there exists a problem dependency matter.
publishDate 2015
dc.date.accessioned.none.fl_str_mv 2017-11-28T12:39:38Z
dc.date.available.none.fl_str_mv 2017-11-28T12:39:38Z
dc.date.issued.fl_str_mv 2015-12
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dc.identifier.issn.es_PE.fl_str_mv 1359-8368
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12815/49
dc.identifier.doi.es_PE.fl_str_mv https://doi.org/10.1016/j.compositesb.2015.08.048
dc.identifier.journal.es_PE.fl_str_mv Composites Part B: Engineering
identifier_str_mv 1359-8368
Composites Part B: Engineering
url https://hdl.handle.net/20.500.12815/49
https://doi.org/10.1016/j.compositesb.2015.08.048
dc.language.iso.es_PE.fl_str_mv eng
language eng
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dc.publisher.es_PE.fl_str_mv Elsevier
dc.source.es_PE.fl_str_mv Repositorio Institucional UTEC
Universidad de Ingeniería y Tecnología - UTEC
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spelling Mantari, J.L.2017-11-28T12:39:38Z2017-11-28T12:39:38Z2015-121359-8368https://hdl.handle.net/20.500.12815/49https://doi.org/10.1016/j.compositesb.2015.08.048Composites Part B: EngineeringThe closed-form solution of a generalized hybrid type quasi-3D higher order shear deformation theory (HSDT) for the bending analysis of functionally graded shells is presented. From the generalized quasi-3D HSDT (which involves the shear strain functions “f(ζ)” and “g(ζ)” and therefore their parameters to be selected “m” and “n”, respectively), infinite six unknowns' hybrid shear deformation theories with thickness stretching effect included, can be derived and solved in a closed-from. The generalized governing equations are also “m” and “n” parameter dependent. Navier-type closed-form solution is obtained for functionally graded shells subjected to transverse load for simply supported boundary conditions. Numerical results of new optimized hybrid type quasi-3D HSDTs are compared with the first order shear deformation theory (FSDT), and other quasi-3D HSDTs. The key conclusions that emerge from the present numerical results suggest that: (a) all non-polynomial HSDTs should be optimized in order to improve the accuracy of those theories; (b) the optimization procedure in all the cases is, in general, beneficial in terms of accuracy of the non-polynomial hybrid type quasi-3D HSDT; (c) it is possible to gain accuracy by keeping the unknowns constant; (d) there is not unique quasi-3D HSDT which performs well in any particular example problems, i.e. there exists a problem dependency matter.application/pdfengElsevierinfo:eu-repo/semantics/openAccesshttp://creativecommons.org/licenses/by-nc-nd/4.0/Repositorio Institucional UTECUniversidad de Ingeniería y Tecnología - UTECreponame:UTEC-Institucionalinstname:Universidad de Ingeniería y tecnologíainstacron:UTECA. PlatesB. ElasticityC. 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