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http://dx.doi.org/10.12989/sem.2020.76.1.027

Size dependent effect on deflection and buckling analyses of porous nanocomposite plate based on nonlocal strain gradient theory  

Khazaei, Pegah (Department of Solid Mechanics, Faculty of Mechanical Engineering, University of Kashan)
Mohammadimehr, Mehdi (Department of Solid Mechanics, Faculty of Mechanical Engineering, University of Kashan)
Publication Information
Structural Engineering and Mechanics / v.76, no.1, 2020 , pp. 27-56 More about this Journal
Abstract
In this paper, the deflection and buckling analyses of porous nano-composite piezoelectric plate reinforced by carbon nanotube (CNT) are studied. The equations of equilibrium using energy method are derived from principle of minimum total potential energy. In the research, the non-local strain gradient theory is employed to consider size dependent effect for porous nanocomposite piezoelectric plate. The effects of material length scale parameter, Eringen's nonlocal parameter, porosity coefficient and aspect ratio on the deflection and critical buckling load are investigated. The results indicate that the effect of porosity coefficient on the increase of the deflection and critical buckling load is greatly higher than the other parameters effect, and size effect including nonlocal parameter and the material length scale parameter have a lower effect on the deflection increase with respect to the porosity coefficient, respectively and vice versa for critical buckling load. Porous nanocomposites are used in various engineering fields such as aerospace, medical industries and water refinery.
Keywords
deflection and buckling analyses; porous materials; nanocomposite; carbon nanotube; nonlocal strain gradient theory; principle of minimum total potential energy;
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Times Cited By KSCI : 14  (Citation Analysis)
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