Vibration and Buckling of Shear Deformable Functionally Graded Nanoporous Metal Foam Nanoshells

This article aims to investigate free vibration and buckling of functionally graded (FG) nanoporous metal foam (NPMF) nanoshells. The first-order shear deformation (FSD) shell theory is adopted and the theoretical model is formulated by using Mindlin’s most general strain gradient theory,...

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Main Authors: Yufei Zhang, Fei Zhang
Format: Article
Language:English
Published: MDPI AG 2019-02-01
Series:Nanomaterials
Subjects:
Online Access:https://www.mdpi.com/2079-4991/9/2/271
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spelling doaj-32258ff9be774370a5bfc9193cc5afb22020-11-25T00:33:26ZengMDPI AGNanomaterials2079-49912019-02-019227110.3390/nano9020271nano9020271Vibration and Buckling of Shear Deformable Functionally Graded Nanoporous Metal Foam NanoshellsYufei Zhang0Fei Zhang1 College of Aerospace Engineering, Shenyang Aerospace University, Shenyang 110136, China College of Sciences, Northeastern University, Shenyang 110819, ChinaThis article aims to investigate free vibration and buckling of functionally graded (FG) nanoporous metal foam (NPMF) nanoshells. The first-order shear deformation (FSD) shell theory is adopted and the theoretical model is formulated by using Mindlin’s most general strain gradient theory, which can derive several well-known simplified models. The symmetric and unsymmetric nanoporosity distributions are considered for the structural composition. Hamilton’s principle is employed to deduce the governing equations as well as the boundary conditions. Then, via the Navier solution technique, an analytical solution for the free vibration and buckling of FG NPMF nanoshells is presented. Afterwards, a detailed parametric analysis is conducted to highlight the effects of the nanoporosity coefficient, nanoporosity distribution, length scale parameter, and geometrical parameters on the mechanical behaviors of FG NPMF nanoshells.https://www.mdpi.com/2079-4991/9/2/271nanoporous metal foamnanoshellbucklingfree vibrationstrain gradient theoryfirst-order shear deformation theory
collection DOAJ
language English
format Article
sources DOAJ
author Yufei Zhang
Fei Zhang
spellingShingle Yufei Zhang
Fei Zhang
Vibration and Buckling of Shear Deformable Functionally Graded Nanoporous Metal Foam Nanoshells
Nanomaterials
nanoporous metal foam
nanoshell
buckling
free vibration
strain gradient theory
first-order shear deformation theory
author_facet Yufei Zhang
Fei Zhang
author_sort Yufei Zhang
title Vibration and Buckling of Shear Deformable Functionally Graded Nanoporous Metal Foam Nanoshells
title_short Vibration and Buckling of Shear Deformable Functionally Graded Nanoporous Metal Foam Nanoshells
title_full Vibration and Buckling of Shear Deformable Functionally Graded Nanoporous Metal Foam Nanoshells
title_fullStr Vibration and Buckling of Shear Deformable Functionally Graded Nanoporous Metal Foam Nanoshells
title_full_unstemmed Vibration and Buckling of Shear Deformable Functionally Graded Nanoporous Metal Foam Nanoshells
title_sort vibration and buckling of shear deformable functionally graded nanoporous metal foam nanoshells
publisher MDPI AG
series Nanomaterials
issn 2079-4991
publishDate 2019-02-01
description This article aims to investigate free vibration and buckling of functionally graded (FG) nanoporous metal foam (NPMF) nanoshells. The first-order shear deformation (FSD) shell theory is adopted and the theoretical model is formulated by using Mindlin’s most general strain gradient theory, which can derive several well-known simplified models. The symmetric and unsymmetric nanoporosity distributions are considered for the structural composition. Hamilton’s principle is employed to deduce the governing equations as well as the boundary conditions. Then, via the Navier solution technique, an analytical solution for the free vibration and buckling of FG NPMF nanoshells is presented. Afterwards, a detailed parametric analysis is conducted to highlight the effects of the nanoporosity coefficient, nanoporosity distribution, length scale parameter, and geometrical parameters on the mechanical behaviors of FG NPMF nanoshells.
topic nanoporous metal foam
nanoshell
buckling
free vibration
strain gradient theory
first-order shear deformation theory
url https://www.mdpi.com/2079-4991/9/2/271
work_keys_str_mv AT yufeizhang vibrationandbucklingofsheardeformablefunctionallygradednanoporousmetalfoamnanoshells
AT feizhang vibrationandbucklingofsheardeformablefunctionallygradednanoporousmetalfoamnanoshells
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