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A novel one-variable first-order shear deformation theory for biaxial buckling of a size-dependent plate based on Eringen's nonlocal differential law

机译:基于艾林根非局部微分律的尺寸依赖板双轴屈曲的一变量一阶一阶剪切变形理论

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Purpose - This paper aims to present a new one-variable first-order shear deformation theory (OVFSDT) using nonlocal elasticity concepts for buckling of graphene sheets. Design/methodology/approach - The FSDT had errors in its assumptions owing to the assumption of constant shear stress distribution along the thickness of the plate, even though by using the shear correction factor (SCF), it has been slightly corrected, the errors have been remained owing to the fact that the exact value of SCF has not already been accurately identified. By using two-variable first-order shear deformation theories, these errors decreased further by removing the SCF. To consider nanoscale effects on the plate, Eringen's nonlocal elasticity theory was adopted. The critical buckling loads were computed by Navier's approach. The obtained numerical results were then compared with previous studies' results using molecular dynamics simulations and other plate theories for validation which also showed the accuracy and simplicity of the proposed theory. Findings - In comparing the biaxial buckling results of the proposed theory with the two-variable shear deformation theories and exact results, it revealed that the two-variable plate theories were not appropriate for the investigation of asymmetrical analyses. Originality/value - A formulation for FSDT was innovated by reconsidering its errors to improve the FSDT for investigation of mechanical behavior of nanoplates.
机译:目的-本文旨在提出一种新的单变量一阶剪切变形理论(OVFSDT),该理论使用非局部弹性概念对石墨烯片进行屈曲。设计/方法/方法-由于假设沿板的厚度方向上的剪切应力分布恒定,因此FSDT的假设存在误差,即使通过使用剪切校正因子(SCF)对其进行了稍微校正,误差仍存在由于尚未准确确定SCF的确切值,因此仍然存在。通过使用二变量一阶剪切变形理论,通过去除SCF可以进一步降低这些误差。为了考虑纳米级效应对板的影响,采用了埃林根的非局部弹性理论。临界屈曲载荷是通过Navier的方法计算的。然后将获得的数值结果与以前的研究结果进行比较,使用分子动力学模拟和其他板理论进行验证,这也证明了所提出理论的准确性和简便性。研究结果-在将所提出的理论的双轴屈曲结果与二变量剪切变形理论和精确结果进行比较时,发现二变量板理论不适用于非对称分析的研究。原创性/价值-通过重新考虑其错误来创新FSDT的配方,以改善FSDT,以研究纳米板的机械性能。

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