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Analysis of Sigmoid Functionally Graded Material (S-FGM) Nanoscale Plates Using the Nonlocal Elasticity Theory

机译:使用非局部弹性理论分析S型功能梯度材料(S-FGM)纳米板

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摘要

Based on a nonlocal elasticity theory, a model for sigmoid functionally graded material (S-FGM) nanoscale plate with first-order shear deformation is studied. The material properties of S-FGM nanoscale plate are assumed to vary according to sigmoid function (two power law distribution) of the volume fraction of the constituents. Elastic theory of the sigmoid FGM (S-FGM) nanoscale plate is reformulated using the nonlocal differential constitutive relations of Eringen and first-order shear deformation theory. The equations of motion of the nonlocal theories are derived using Hamilton's principle. The nonlocal elasticity of Eringen has the ability to capture the small scale effect. The solutions of S-FGM nanoscale plate are presented to illustrate the effect of nonlocal theory on bending and vibration response of the S-FGM nanoscale plates. The effects of nonlocal parameters, power law index, aspect ratio, elastic modulus ratio, side-to-thickness ratio, and loading type on bending and vibration response are investigated. Results of the present theory show a good agreement with the reference solutions. These results can be used for evaluating the reliability of size-dependent S-FGM nanoscale plate models developed in the future.
机译:基于非局部弹性理论,研究了具有一阶剪切变形的S形功能梯度材料(S-FGM)纳米级板的模型。假定S-FGM纳米级板的材料性能根据成分的体积分数的S形函数(二次幂定律分布)而变化。使用Eringen的非局部微分本构关系和一阶剪切变形理论,重新构造了S型FGM(S-FGM)纳米级板的弹性理论。非局部理论的运动方程是根据汉密尔顿原理导出的。 Eringen的非局部弹性具有捕获小尺度效应的能力。提出了S-FGM纳米板的解决方案,以说明非局部理论对S-FGM纳米板的弯曲和振动响应的影响。研究了非局部参数,幂律指数,长宽比,弹性模量比,边厚比和载荷类型对弯曲和振动响应的影响。本理论的结果表明与参考解决方案有很好的一致性。这些结果可用于评估未来开发的尺寸依赖性S-FGM纳米板模型的可靠性。

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  • 来源
    《Mathematical Problems in Engineering》 |2013年第6期|476131.1-476131.10|共10页
  • 作者

    Woo-Young Jung; Sung-Cheon Han;

  • 作者单位

    Department of Civil Engineering, Gangneung-Wonju National University, 7 Jukheon, Gangneung 210-702, Republic of Korea;

    Department of Civil & Railroad Engineering, Daewon University College, 599 Shinwol, Jecheon 390-702, Republic of Korea;

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