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Thermal vibration and buckling of magneto-electro-elastic functionally graded porous nanoplates using nonlocal strain gradient elasticity

机译:基于非局域应变梯度弹性的磁电弹性功能梯度多孔纳米片的热振动和屈曲

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摘要

This study models and examines the thermal vibration and buckling behaviours of a porous nanoplate made of functional grading of barium-titanate and cobalt-ferrite. The porosity in the nanoplate is modelled with uniform and symmetrical porosity distribution functions. In the constitutive equation of the nanoplate, the strains are assumed to originate from classical mechanics, thermal expansion, electroelastic and magnetostrictive properties, nonlocal elasticity, and strain gradient elasticity. The motion equations of magneto-electro-elastic (MEE) nanoplate is obtained by Hamilton's principle. The study investigated the effects of thermal stresses, magnetoelectro-elastic coupling, externally applied electric and magnetic field potential, nonlocal properties (nonlocal and material size parameters), and porosity volume fraction and function of porosity variation across thickness in free vibration and buckling behaviour of the nanoplate. According to the analysis results, the dimensionless frequencies decrease as the barium-titanate ratio in the nanoplate increases, and the frequencies increase as the cobalt-ferrite ratio increases, depending on the material grading index. While temperature increased and porosity ratio decreased dimensionless frequencies, external magnetic potential increased dimensionless frequencies. On the other hand, the application of electric potential causes a slight increase in dimensionless frequencies compared to the effect of magnetic potential.
机译:本研究模拟并检查了由钛酸钡和钴铁氧体功能级配制成的多孔纳米板的热振动和屈曲行为。纳米板中的孔隙率是用均匀和对称的孔隙度分布函数来建模的。在纳米板的本构方程中,假设应变起源于经典力学、热膨胀、电弹性和磁致伸缩特性、非局域弹性和应变梯度弹性。磁-电-弹性(MEE)纳米板的运动方程是利用汉密尔顿原理得到的。该研究研究了热应力、磁电弹性耦合、外部施加的电场和磁场势、非局域特性(非局域和材料尺寸参数)、孔隙率体积分数和孔隙率随厚度变化的函数对纳米板自由振动和屈曲行为的影响。分析结果表明,无量纲频率随纳米板中钛酸钡比的增加而减小,频率随钴铁氧体比的增加而增加,具体取决于材料的级配指标。当温度升高和孔隙率降低无量纲频率时,外磁势增加无量纲频率。另一方面,与磁势的影响相比,电势的应用会导致无量纲频率略有增加。

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