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Hybrid layerwise-differential quadrature transient dynamic analysis of functionally graded axisymmetric cylindrical shells subjected to dynamic pressure

Author:
علیرضا ستوده
,
مسعود طهانی
,
احسان سلاحی
,
Masoud Tahani
,
Ehsan Selahi
Year
: 2011
Abstract: In this paper, two computationally efficient and accurate solution methods for transient dynamic analysis

of functionally graded (FG) cylindrical shells subjected to internal dynamic pressure are presented. In

order to accurately account for the thickness effects, the layerwise theory is employed to approximate

the displacement components in the radial direction. In the first solution method, differential quadrature

method (DQM) is implemented to discretize the resulting equations in the both spatial and time domains.

In the second approach, DQM is applied to discretize equations in the axial direction while Newmark’s

time integration scheme is used to solve the problem in the time domain. The fast convergence rate of

the methods is demonstrated and their accuracy is verified by comparing the results with those obtained

using ANSYS and also with available exact solution of a particular problem. Considerable less computational

efforts of the proposed approaches with respect to the finite element method is observed. Furthermore,

comparative studies are performed between two approaches in different cases and it is found that

the two techniques give very close results. The effects of geometrical parameters and boundary conditions on the transient behavior of shells are also investigated.
URI: https://libsearch.um.ac.ir:443/fum/handle/fum/3403503
Keyword(s): Transient dynamic analysis,Functionally graded materials,Cylindrical shells,Differential quadrature method,Layerwise theory,Newmark’s time integration
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    Hybrid layerwise-differential quadrature transient dynamic analysis of functionally graded axisymmetric cylindrical shells subjected to dynamic pressure

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contributor authorعلیرضا ستودهen
contributor authorمسعود طهانیen
contributor authorاحسان سلاحیen
contributor authorMasoud Tahanifa
contributor authorEhsan Selahifa
date accessioned2020-06-06T14:36:02Z
date available2020-06-06T14:36:02Z
date issued2011
identifier urihttps://libsearch.um.ac.ir:443/fum/handle/fum/3403503?locale-attribute=en
description abstractIn this paper, two computationally efficient and accurate solution methods for transient dynamic analysis

of functionally graded (FG) cylindrical shells subjected to internal dynamic pressure are presented. In

order to accurately account for the thickness effects, the layerwise theory is employed to approximate

the displacement components in the radial direction. In the first solution method, differential quadrature

method (DQM) is implemented to discretize the resulting equations in the both spatial and time domains.

In the second approach, DQM is applied to discretize equations in the axial direction while Newmark’s

time integration scheme is used to solve the problem in the time domain. The fast convergence rate of

the methods is demonstrated and their accuracy is verified by comparing the results with those obtained

using ANSYS and also with available exact solution of a particular problem. Considerable less computational

efforts of the proposed approaches with respect to the finite element method is observed. Furthermore,

comparative studies are performed between two approaches in different cases and it is found that

the two techniques give very close results. The effects of geometrical parameters and boundary conditions on the transient behavior of shells are also investigated.
en
languageEnglish
titleHybrid layerwise-differential quadrature transient dynamic analysis of functionally graded axisymmetric cylindrical shells subjected to dynamic pressureen
typeJournal Paper
contenttypeExternal Fulltext
subject keywordsTransient dynamic analysisen
subject keywordsFunctionally graded materialsen
subject keywordsCylindrical shellsen
subject keywordsDifferential quadrature methoden
subject keywordsLayerwise theoryen
subject keywordsNewmark’s time integrationen
journal titleComposite Structuresen
journal titleComposite Structuresfa
pages2663-2670
journal volume93
journal issue11
identifier linkhttps://profdoc.um.ac.ir/paper-abstract-1022878.html
identifier articleid1022878
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