Stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticity

The buckling of rotationally restrained microbars embedded in an elastic matrix is studied within the framework of strain gradient elasticity theory. The elastic matrix is modeled in this study as Winkler’s one-parameter elastic matrix. Fourier sine series with a Fourier coefficient is used for desc...

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Main Author: Yayli Mustafa Özgür
Format: Article
Language:English
Published: De Gruyter 2019-01-01
Series:Curved and Layered Structures
Subjects:
Online Access:https://doi.org/10.1515/cls-2019-0001
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spelling doaj-6aca94d8cecc4f4cb1373dd8b0c728da2021-09-06T19:19:40ZengDe GruyterCurved and Layered Structures2353-73962019-01-016111010.1515/cls-2019-0001cls-2019-0001Stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticityYayli Mustafa Özgür0Uludag University Faculty of Engineering Department of Civil Engineering 16059 Görükle Campüs,Bursa, TurkeyThe buckling of rotationally restrained microbars embedded in an elastic matrix is studied within the framework of strain gradient elasticity theory. The elastic matrix is modeled in this study as Winkler’s one-parameter elastic matrix. Fourier sine series with a Fourier coefficient is used for describing the deflection of the microbar. An eigenvalue problem is obtained for buckling modes with the aid of implementing Stokes’ transformation to force boundary conditions. This mathematical model bridges the gap between rigid and the restrained boundary conditions. The influences of rotational restraints, small scale parameter and surrounding elastic matrix on the critical buckling load are discussed and compared with those available in the literature. It is concluded from analytical results that the critical buckling load of microbar is dependent upon rotational restraints, surrounding elastic matrix and the material scale parameter. Similarly, the dependencies of the critical buckling load on material scale parameter, surrounding elastic medium and rotational restraints are significant.https://doi.org/10.1515/cls-2019-0001bucklingmicrobarembedded in an elastic matrixrotational restraintsfourier sine series
collection DOAJ
language English
format Article
sources DOAJ
author Yayli Mustafa Özgür
spellingShingle Yayli Mustafa Özgür
Stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticity
Curved and Layered Structures
buckling
microbar
embedded in an elastic matrix
rotational restraints
fourier sine series
author_facet Yayli Mustafa Özgür
author_sort Yayli Mustafa Özgür
title Stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticity
title_short Stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticity
title_full Stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticity
title_fullStr Stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticity
title_full_unstemmed Stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticity
title_sort stability analysis of a rotationally restrained microbar embedded in an elastic matrix using strain gradient elasticity
publisher De Gruyter
series Curved and Layered Structures
issn 2353-7396
publishDate 2019-01-01
description The buckling of rotationally restrained microbars embedded in an elastic matrix is studied within the framework of strain gradient elasticity theory. The elastic matrix is modeled in this study as Winkler’s one-parameter elastic matrix. Fourier sine series with a Fourier coefficient is used for describing the deflection of the microbar. An eigenvalue problem is obtained for buckling modes with the aid of implementing Stokes’ transformation to force boundary conditions. This mathematical model bridges the gap between rigid and the restrained boundary conditions. The influences of rotational restraints, small scale parameter and surrounding elastic matrix on the critical buckling load are discussed and compared with those available in the literature. It is concluded from analytical results that the critical buckling load of microbar is dependent upon rotational restraints, surrounding elastic matrix and the material scale parameter. Similarly, the dependencies of the critical buckling load on material scale parameter, surrounding elastic medium and rotational restraints are significant.
topic buckling
microbar
embedded in an elastic matrix
rotational restraints
fourier sine series
url https://doi.org/10.1515/cls-2019-0001
work_keys_str_mv AT yaylimustafaozgur stabilityanalysisofarotationallyrestrainedmicrobarembeddedinanelasticmatrixusingstraingradientelasticity
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