Thermal buckling analysis of rectangular microplates using higher continuity p-version finite element method

被引:27
作者
Farahmand, H. [1 ]
Ahmadi, A. R. [2 ]
Arabnejad, S. [2 ]
机构
[1] Islamic Azad Univ, Dept Mech Engn, Kerman Branch, Kerman, Iran
[2] Int Ctr Sci High Technol & Environm Sci, Kerman, Iran
关键词
Thermal buckling; Strain gradient elasticity; Higher continuity finite element; Microplate; LINEAR ELASTICITY; PLATES; STRESSES; BONE;
D O I
10.1016/j.tws.2011.08.006
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
In this article, thermal buckling characteristics of rectangular flexural microplates (FMP) subjected to uniform temperature are investigated using higher continuity p-version finite element framework. Invariant form of the governing equation for a microplate with non-local effects based on "modified couple stress theory" is extended for thermal buckling analysis of FMP by considering the strain gradient effects. In this case, the constitutive equation for strain gradient model is based on one constant. Galerkin weak form of the governing equation is derived and subsequently solved for a variety of boundary conditions using higher continuity p-version finite elements to extract critical thermal buckling loads. The computational procedure is verified by comparing its predictions to those of the classical theory and analytic microplate studies that are based on the same strain gradient model. Investigations indicate that length scale parameter affects the computed flexural stiffness of a plate, and the effect is directly proportional to the value of gradient coefficient considered for that plate. Hence, there is a strong influence of length scale parameter on value of the thermal buckling load. Depending on boundary conditions and value of length scale parameter used in numerical experiments, the classical plate model severely underestimates (up to 90%) the thermal buckling load for microplates. Therefore, it is concluded and strongly suggested that the classical plate theory should not be used to predict structural response of microplates. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1584 / 1591
页数:8
相关论文
共 31 条
[1]   Free vibration of microscaled Timoshenko beams [J].
Abbasion, Saeed ;
Rafsanjani, Ahmad ;
Avazmohammadi, Reza ;
Farshidianfar, Anoushiravan .
APPLIED PHYSICS LETTERS, 2009, 95 (14)
[2]  
[Anonymous], 2009, THEORIE CORPS DEFORM
[3]   BUCKLING OF PLATES DUE TO SELF-EQUILIBRATED THERMAL-STRESSES [J].
BEDNARCZYK, H ;
RICHTER, M .
JOURNAL OF THERMAL STRESSES, 1985, 8 (01) :139-152
[4]   THERMAL BUCKLING ANALYSIS OF COMPOSITE LAMINATED PLATES BY THE FINITE-ELEMENT METHOD [J].
CHEN, LW ;
CHEN, LY .
JOURNAL OF THERMAL STRESSES, 1989, 12 (01) :41-56
[5]   A THIN-PLATE ANALYSIS AND EXPERIMENTAL EVALUATION OF COUPLE-STRESS EFFECTS [J].
ELLIS, RW ;
SMITH, CW .
EXPERIMENTAL MECHANICS, 1967, 7 (09) :372-&
[6]  
ERINGEN CA, 1966, J MATH MECH, V15, P909
[7]   Microstructure in linear elasticity and scale effects: a reconsideration of basic rock mechanics and rock fracture mechanics [J].
Exadaktylos, GE ;
Vardoulakis, I .
TECTONOPHYSICS, 2001, 335 (1-2) :81-109
[8]  
Farahmand H, 2010, INT J MULTISCALE COM, V8, P441
[9]   Computational continua [J].
Fish, Jacob ;
Kuznetsov, Sergey .
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING, 2010, 84 (07) :774-802
[10]   QUEST FOR MICROPOLAR ELASTIC-CONSTANTS [J].
GAUTHIER, RD ;
JAHSMAN, WE .
JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 1975, 42 (02) :369-374