Title of article :
Nonlinear size-dependent finite element analysis of functionally graded elastic tiny-bodies
Author/Authors :
Shaat، نويسنده , , M. and Eltaher، نويسنده , , M.A. and Gad، نويسنده , , A.I. and Mahmoud، نويسنده , , F.F.، نويسنده ,
Issue Information :
ماهنامه با شماره پیاپی سال 2013
Pages :
9
From page :
356
To page :
364
Abstract :
In this paper, a nonlinear size-dependent finite element model incorporating surface energy effects is developed to study the mechanical behavior of tiny elastic functionally graded (FG) bodies. Here the classical elasticity theory is modified to incorporate the surface energy effects. Most of previous studies assumed that the surface energy depends only on the 2D symmetric infinitesimal surface strains and neglects the second-order products of surface strains/displacement gradients. These descriptions assume a small strain deformation of the surface and neglect the pre-strain that is, already, developed on the surface – before loading – due to the pre-tension stress σ0. Here in this paper, the pre-strain is considered which forces the surface to a state of large strain after loading instead of small strain. In this sense, in the presence of initial surface tension, the theory of surface elasticity is a hybrid formulation characterized by linearized bulk elastic material and second order finite deformation of the surface. In the proposed finite element model, the surface energy effect is taken into account in the derivation of the element stiffness matrix for the material elements located very close to the boundary surface. The proposed model is then used to study the effects of surface energy, including the 2nd order displacement gradient, on the mechanical behavior of plane-strain functionally graded elastic body.
Keywords :
Finite element method , surface energy , surface elasticity , Nonlinear size-dependent analysis , Functionally Graded
Journal title :
International Journal of Mechanical Sciences
Serial Year :
2013
Journal title :
International Journal of Mechanical Sciences
Record number :
1420300
Link To Document :
بازگشت