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Title: | Vibration of FG nano-sized beams embedded in Winkler elastic foundation and with various boundary conditions |
Authors: | Civalek, Ömer Bursa Uludağ Üniversitesi/Mühendislik Fakültesi/İnşaat Mühendisliği. 0000-0003-2231-170X Uzun, Büşra Yaylı, Mustafa Özgür GGA-0877-2022 57208629064 44661926700 |
Keywords: | Nonlocal elasticity theory functionally graded nano-sized beam Finite element method Euler-Bernoulli beam theory Winkler foundation Functionally graded beams Buckling analysis Nanobeams Matrix Formulation Euler Mechanics Alumina Aluminum alloys Aluminum oxide Boundary conditions Continuum mechanics Elasticity Finite element method Foundations Nanowires Stiffness Stiffness matrix Elastic foundation model Euler Bernoulli beam theory Finite element formulations Free-vibration analysis Non-local elasticity theories Power law distribution Various boundary conditions Winkler elastic foundation Vibration analysis |
Issue Date: | 11-Nov-2020 |
Publisher: | Taylor & Francis |
Citation: | Uzun, B. vd. (2020). "Vibration of FG nano-sized beams embedded in Winkler elastic foundation and with various boundary conditions". Mechanics Based Design of Structures and Machines. |
Abstract: | In the current study, vibration analysis of functionally graded (FG) nano-sized beams resting on a elastic foundation is presented via a finite element method. The elastic foundation is simulated by using one-parameter Winkler type elastic foundation model. Euler-Bernoulli beam theory and Eringen's nonlocal elasticity theory are utilized to model the functionally graded nano-sized beams with various boundary conditions such as simply supported at both ends (S-S), clamped-clamped (C-C) and clamped-simply supported (C-S). Material properties of functionally graded nanobeam vary across the thickness direction according to the power-law distribution. The vibration behaviors of functionally graded nanobeam composed of alumina (Al2O3) and steel are shown using nonlocal finite element formulation. The importance of this paper is the utilize of shape functions and the Eringen's nonlocal elasticity theory to set up the stiffness matrices and mass matrices of the functionally graded nano-sized beam resting on Winkler elastic foundation for free vibration analysis. Bending stiffness, foundation stiffness and mass matrices are obtained to realize the solution of vibration problem of the FG nanobeam. The influences of power-law exponent (k), dimensionless nonlocal parameters (e(0)a/L), dimensionless Winkler foundation parameters (KW), mode numbers and boundary conditions on frequencies are investigated via several numerical examples and shown by a number of tables and figures. |
URI: | https://doi.org/10.1080/15397734.2020.1846560 https://www.tandfonline.com/doi/full/10.1080/15397734.2020.1846560 http://hdl.handle.net/11452/29948 |
ISSN: | 1539-7734 |
Appears in Collections: | Scopus Web of Science |
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