A mixed inverse differential quadrature method for static analysis of constant- and variable-stiffness laminated beams based on Hellinger-Reissner mixed variational formulation

被引:25
|
作者
Trinh, Luan C. [1 ]
Ojo, Saheed O. [1 ]
Groh, Rainer M. J. [2 ]
Weaver, Paul M. [1 ,2 ]
机构
[1] Univ Limerick, Sch Engn, Bernal Inst, Castletroy V94 T9PX, Ireland
[2] Univ Bristol, Dept Aerosp Engn, Bristol Composites Inst ACCIS, Queens Bldg,Univ Walk, Bristol BS8 1TR, Avon, England
基金
爱尔兰科学基金会;
关键词
Inverse differential quadrature method; Hellinger-Reissner mixed formulation; Variable stiffness beam; Zigzag theory; Stress analysis; Interlaminar condition; HIERARCHICAL FINITE-ELEMENT; 3D STRESS PREDICTIONS; SHEAR DEFORMATION-THEORY; FREE-VIBRATION ANALYSIS; RADIAL BASIS FUNCTIONS; EFFICIENT 2D MODEL; BUCKLING ANALYSIS; SHELL ELEMENT; COMPOSITE; PLATES;
D O I
10.1016/j.ijsolstr.2020.11.019
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Increasing applications of laminated composite structures necessitate the development of equivalent single layer (ESL) models that can achieve similar accuracy but are more computationally efficient than 3D or layer-wise models. Most ESL displacement-based models do not guarantee interfacial continuity of shear stresses within laminates. A possible remedy is the enforcement of interlaminar equilibrium in variational formulations, for example, in the framework of the Hellinger-Reissner variational principle, leading to a mixed force/displacement model. In this paper, the governing equations for bending and stretching of laminated beams, comprising only seven stress resultants and two displacement functionals, are obtained using global fifth-order and a local linear zigzag kinematics. As a strong-form solution technique, the differential quadrature method (DQM) is an efficient tool which can provide excellent convergence with relatively few number of grid points. However, in dealing with high-order differential equations, the conventional DQM can incur considerable errors due to the nature of numerical differentiation. Therefore, a mixed inverse differential quadrature method (iDQM) is proposed herein to solve the governing fourth-order differential equations for bending and stretching of laminated beams. This approach involves approximating the first derivatives of functional unknowns, thereby reducing the order of differentiation being performed. Using a non-uniform Chebychev-Gauss-Lobatto grid point profile, numerical results show that the accuracy of stress predictions is improved by using iDQM compared to DQM. In addition, the Cauchy's equilibrium condition is satisfied more accurately by iDQM, especially in the vicinity of boundaries. (C) 2020 The Authors. Published by Elsevier Ltd.
引用
收藏
页码:66 / 87
页数:22
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