Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories

In this novel work, applying boundary shape function differential quadrature hierarchical finite element method (DQHFEM) will be employed to analyze frequency, damping, bending, and buckling of an embedded sandwich nanoplate using different plate theories such as refined zigzag theory (RZT), sinusoi...

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主要な著者: Al-Furjan, M. S. H., Shan, L., Shen, X., Kolahchi, R., Rajak, Dipen Kumar
フォーマット: 論文
出版事項: Elsevier 2022
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spelling my.um.eprints.419342023-10-17T04:43:58Z http://eprints.um.edu.my/41934/ Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories Al-Furjan, M. S. H. Shan, L. Shen, X. Kolahchi, R. Rajak, Dipen Kumar TA Engineering (General). Civil engineering (General) In this novel work, applying boundary shape function differential quadrature hierarchical finite element method (DQHFEM) will be employed to analyze frequency, damping, bending, and buckling of an embedded sandwich nanoplate using different plate theories such as refined zigzag theory (RZT), sinusoidal shear deformation theory (SSDT), first-order shear deformation theory (FSDT) and classical plate theory (CPT). The face sheets as well as the core layer of the sandwich structure respectively are formed by porous material and nanocomposites reinforced with graphene platelets (GPLs) considering various dispersion. According to the Halpin-Tsai micromechanics model, Young's modulus, as well as the rule of mixture for density as well as Poisson's ratio related to the face sheets, can be obtained. Further, for modeling the mentioned sandwich structure much more realistic, Kelvin-Voigt model is applied. In order to gain motion of equations, D'Alembert's principle is utilized where size influences can be contemplated as well using higher-order strain gradient nonlocal theory. In this comprehensive research, diverse parameters featuring the influences of structural damping, strain gradient parameters, GPL volume percent, dispersion, viscoelastic medium, porosity, boundary edges, and geometric variables upon vibration, buckling, and bending behaviors correlative to this structure. It is ascertained that RZT is the most accurate theory among other mentioned theories in estimating the static and dynamic response of structure which needs no shear correction factors. Moreover, the presence of GPLs can make the entire sandwich structure stiffer and dispersion patterns of pores, as well as GPLs, can affect the vibration, buckling, and bending of the structure. Elsevier 2022-09 Article PeerReviewed Al-Furjan, M. S. H. and Shan, L. and Shen, X. and Kolahchi, R. and Rajak, Dipen Kumar (2022) Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories. Thin-Walled Structures, 178. ISSN 0263-8231, DOI https://doi.org/10.1016/j.tws.2022.109495 <https://doi.org/10.1016/j.tws.2022.109495>. 10.1016/j.tws.2022.109495
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic TA Engineering (General). Civil engineering (General)
spellingShingle TA Engineering (General). Civil engineering (General)
Al-Furjan, M. S. H.
Shan, L.
Shen, X.
Kolahchi, R.
Rajak, Dipen Kumar
Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories
description In this novel work, applying boundary shape function differential quadrature hierarchical finite element method (DQHFEM) will be employed to analyze frequency, damping, bending, and buckling of an embedded sandwich nanoplate using different plate theories such as refined zigzag theory (RZT), sinusoidal shear deformation theory (SSDT), first-order shear deformation theory (FSDT) and classical plate theory (CPT). The face sheets as well as the core layer of the sandwich structure respectively are formed by porous material and nanocomposites reinforced with graphene platelets (GPLs) considering various dispersion. According to the Halpin-Tsai micromechanics model, Young's modulus, as well as the rule of mixture for density as well as Poisson's ratio related to the face sheets, can be obtained. Further, for modeling the mentioned sandwich structure much more realistic, Kelvin-Voigt model is applied. In order to gain motion of equations, D'Alembert's principle is utilized where size influences can be contemplated as well using higher-order strain gradient nonlocal theory. In this comprehensive research, diverse parameters featuring the influences of structural damping, strain gradient parameters, GPL volume percent, dispersion, viscoelastic medium, porosity, boundary edges, and geometric variables upon vibration, buckling, and bending behaviors correlative to this structure. It is ascertained that RZT is the most accurate theory among other mentioned theories in estimating the static and dynamic response of structure which needs no shear correction factors. Moreover, the presence of GPLs can make the entire sandwich structure stiffer and dispersion patterns of pores, as well as GPLs, can affect the vibration, buckling, and bending of the structure.
format Article
author Al-Furjan, M. S. H.
Shan, L.
Shen, X.
Kolahchi, R.
Rajak, Dipen Kumar
author_facet Al-Furjan, M. S. H.
Shan, L.
Shen, X.
Kolahchi, R.
Rajak, Dipen Kumar
author_sort Al-Furjan, M. S. H.
title Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories
title_short Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories
title_full Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories
title_fullStr Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories
title_full_unstemmed Combination of FEM-DQM for nonlinear mechanics of porous GPL-reinforced sandwich nanoplates based on various theories
title_sort combination of fem-dqm for nonlinear mechanics of porous gpl-reinforced sandwich nanoplates based on various theories
publisher Elsevier
publishDate 2022
url http://eprints.um.edu.my/41934/
_version_ 1781704572842016768
score 13.251813