Buckling behavior of smart MEE-FG porous plate with various boundary conditions based on refined theory

IF 1.9 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
F. Ebrahimi, A. Jafari
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引用次数: 21

Abstract

Present disquisition proposes an analytical solution method for exploring the buckling characteristics of porous magneto-electro-elastic functionally graded (MEE-FG) plates with various boundary conditions for the first time. Magneto electro mechanical properties of FGM plate are supposed to change through the thickness direction of plate. The rule of power-law is modified to consider influence of porosity according to two types of distribution namely even and uneven. Pores possibly occur inside FGMs due the result of technical problems that lead to creation of micro-voids in these materials. The variation of pores along the thickness direction influences the mechanical and physical properties. Four-variable tangential-exponential refined theory is employed to derive the governing equations and boundary conditions of porous FGM plate under magneto-electrical field via Hamilton’s principle. An analytical solution procedure is exploited to achieve the non-dimensional buckling load of porous FG plate exposed to magneto-electrical field with various boundary condition. A parametric study is led to assess the efficacy of material graduation exponent, coefficient of porosity, porosity distribution, magnetic potential, electric voltage, boundary conditions, aspect ratio and side-tothickness ratio on the non-dimensional buckling load of the plate made of magneto electro elastic FG materials with porosities. It is concluded that these parameters play remarkable roles on the dynamic behavior of porous MEE-FG plates. The results for simpler states are confirmed with known data in the literature. Presented numerical results can serve as benchmarks for future analyses of MEE-FG plates with porosity phases.
基于精细化理论的智能MEE-FG多孔板在不同边界条件下的屈曲行为
本文首次提出了一种分析求解多孔磁电弹性梯度板在不同边界条件下屈曲特性的方法。FGM板的电磁力学性能随板厚方向的变化而变化。修正幂律法则,根据均匀和不均匀两种分布类型考虑孔隙度的影响。由于技术问题导致在这些材料中产生微孔,因此可能会在女性生殖器官内部产生孔。孔隙沿厚度方向的变化影响了材料的力学和物理性能。采用四变量切指数精化理论,通过Hamilton原理推导了磁电场作用下多孔FGM板的控制方程和边界条件。采用解析解的方法,求解了多孔FG板在不同边界条件下受磁场作用时的无量纲屈曲载荷。通过参数化研究,评价了材料梯度指数、孔隙率系数、孔隙率分布、磁势、电压、边界条件、纵横比和边厚比对含孔隙的磁电弹性FG材料板无量纲屈曲载荷的影响。结果表明,这些参数对多孔MEE-FG板的动态性能有显著影响。简单态的结果用文献中已知的数据证实了。本文给出的数值结果可为今后分析具有孔隙相的MEE-FG板提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advances in Materials Research-An International Journal
Advances in Materials Research-An International Journal MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
3.50
自引率
27.30%
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0
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