A free vibration analysis of carbon nanotube reinforced magneto-electro-elastic nanoplates using nonlocal strain gradient theory

IF 3.5 3区 工程技术 Q1 MATHEMATICS, APPLIED Finite Elements in Analysis and Design Pub Date : 2024-04-04 DOI:10.1016/j.finel.2024.104154
Chien H. Thai , P.T. Hung , H. Nguyen-Xuan , P. Phung-Van
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Abstract

This study presents a combination approach of the higher-order shear deformation theory, nonlocal strain gradient theory (NSGT) and isogeometric analysis (IGA) for the free vibration of carbon nanotube-reinforced (CNT) magneto-electro-elastic (MEE) nanoplates. To account size-dependent effects at the nanoscale, the classical theory model is extended with two additional scale parameters. However, this extended model necessitates at least the third derivative of the approximation function, which is incompatible with the standard finite element method. So, IGA with NURBS offers higher-order continuity through its basis functions, making it well-suited for this size-dependent model. To simplify computations, a power-law scheme is employed to represent the material properties. Various distribution types of carbon nanotubes (CNTs) including UD, FG-X, FG-O and FG-V are incorporated to investigate their effects on mechanical behaviors of CNT-MEE nanoplates. The governing equations of motion are derived in their weak form using the principle of extended virtual displacement and then solved by isogeometric analysis (IGA). The impact of the magnetic, electric and elastic fields on the coupling behaviors of CNT-MEE nanoplates are studied. Specially, parametric studies are conducted to analyze the influence of geometrical parameters, CNT distributions, CNT volume fraction, matrix volume fraction, electric voltage, magnetic potential, nonlocal and strain gradient parameters on the natural frequencies of the CNT-MEE nanoplates. Comparisons between the results obtained using NSGT and the classical theory reveal significant findings. The natural frequencies calculated by NSGT exhibit dependence on the relative values of the nonlocal and strain gradient parameters.

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利用非局部应变梯度理论对碳纳米管增强磁电弹性纳米板进行自由振动分析
本研究提出了一种高阶剪切变形理论、非局部应变梯度理论(NSGT)和等距分析(IGA)相结合的方法,用于研究碳纳米管增强(CNT)磁电弹性(MEE)纳米板的自由振动。为了考虑纳米尺度上与尺寸相关的效应,对经典理论模型进行了扩展,增加了两个尺度参数。然而,这种扩展模型至少需要近似函数的三次导数,这与标准有限元方法不兼容。因此,带有 NURBS 的 IGA 通过其基函数提供了更高阶的连续性,使其非常适合这种与尺寸相关的模型。为了简化计算,采用了幂律方案来表示材料特性。为了研究其对 CNT-MEE 纳米板机械行为的影响,加入了各种分布类型的碳纳米管(CNT),包括 UD、FG-X、FG-O 和 FG-V。利用扩展虚拟位移原理推导出弱运动控制方程,然后通过等几何分析(IGA)进行求解。研究了磁场、电场和弹性场对 CNT-MEE 纳米板耦合行为的影响。特别是,通过参数研究分析了几何参数、CNT 分布、CNT 体积分数、基体体积分数、电压、磁势、非局部和应变梯度参数对 CNT-MEE 纳米板固有频率的影响。使用 NSGT 和经典理论得出的结果之间的比较揭示了重大发现。NSGT 计算出的自然频率与非局部参数和应变梯度参数的相对值有关。
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来源期刊
CiteScore
4.80
自引率
3.20%
发文量
92
审稿时长
27 days
期刊介绍: The aim of this journal is to provide ideas and information involving the use of the finite element method and its variants, both in scientific inquiry and in professional practice. The scope is intentionally broad, encompassing use of the finite element method in engineering as well as the pure and applied sciences. The emphasis of the journal will be the development and use of numerical procedures to solve practical problems, although contributions relating to the mathematical and theoretical foundations and computer implementation of numerical methods are likewise welcomed. Review articles presenting unbiased and comprehensive reviews of state-of-the-art topics will also be accommodated.
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