A microstructure-dependent anisotropic magneto-electro-elastic Mindlin plate model based on an extended modified couple stress theory

被引:0
作者
Y. L. Qu
P. Li
G. Y. Zhang
F. Jin
X.-L. Gao
机构
[1] Xi’an Jiaotong University,State Key Laboratory for Strength and Vibration of Mechanical Structures, School of Aerospace
[2] Kyoto University,Department of Aeronautics and Astronautics, Graduate School of Engineering
[3] Xi’an Jiaotong University,Department of Civil Engineering
[4] Southeast University,Jiangsu Key Laboratory of Engineering Mechanics, School of Civil Engineering
[5] Xi’an Jiaotong University,MOE Key Laboratory for Multifunctional Materials and Structures, School of Aerospace
[6] Southern Methodist University,Department of Mechanical Engineering, Lyle School of Engineering
来源
Acta Mechanica | 2020年 / 231卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
A new model for anisotropic magneto-electro-elastic Mindlin plates is developed by using an extended modified couple stress theory. The equations of motion and complete boundary conditions are simultaneously obtained by a variational formulation based on Hamilton’s principle. The new anisotropic magneto-electro-elastic plate model includes the models for orthotropic and transversely isotropic magneto-electro-elastic Mindlin plates and the model for isotropic Mindlin plates, all incorporating the microstructure effect, as special cases. To illustrate the new model, the static bending and free vibration problems of a simply supported transversely isotropic magneto-electro-elastic plate are analytically solved by directly applying the general formulas derived. For the static bending problem, the numerical results reveal that the deflection, rotation, electric potential, and magnetic potential of the simply supported plate predicted by the current non-classical model are always smaller than those predicted by the classical elasticity-based model, and the differences are significant when the plate thickness is very small but is diminishing as the thickness increases. For the free vibration problem, it is found that the natural frequency predicted by the new plate model is higher than that predicted by the classical model, and the difference is quite large for very thin plates.
引用
收藏
页码:4323 / 4350
页数:27
相关论文
共 124 条
[31]  
Guo J(2000)Size-dependent elastic properties of nanosized structural elements Nanotechnology 11 139-147
[32]  
Chen J(1994)Magnetoelectric effect in composites of piezoelectric and piezomagnetic phases Phys. Rev. B 50 6082-6088
[33]  
Pan E(2001)Exact solution for simply supported and multilayered magneto-electro-elastic plates ASME J. Appl. Mech. 68 608-618
[34]  
Gurtin ME(2002)Three-dimensional Green’s functions in anisotropic magneto-electro-elastic bimaterials Z. Angew. Math. Phys. 53 815-838
[35]  
Murdoch AI(2006)Bernoulli-Euler beam model based on a modified couple stress theory J. Micromech. Microeng. 16 2355-2359
[36]  
Jomehzadeh E(2008)Variational formulation of a modified couple stress theory and its application to a simple shear problem Z. Angew. Math. Phys. 59 904-917
[37]  
Noori HR(2006)Discrete layer solution to free vibrations of functionally graded magneto-electro-elastic plates Mech. Adv. Mater. Struct. 13 249-266
[38]  
Saidi AR(2018)A topology optimization formulation for transient design of multi-entry laminated piezocomposite energy harvesting devices coupled with electrical circuit Int. J. Numer. Methods Eng. 113 1370-1410
[39]  
Lakes RS(2003)State vector approach to analysis of multilayered magneto-electro-elastic plates Int. J. Solids Struct. 40 1669-1680
[40]  
Benedict RL(2011)Surface stress effect in mechanics of nanostructured materials Acta Mech. Solida Sin. 24 52-82