首页> 外文期刊>Iranian Journal of Science and Technology, Transactions of Mechanical Engineering >A Unified Higher-Order Beam Theory for Free Vibration and Buckling of FGCNT-Reinforced Microbeams Embedded in Elastic Medium Based on Unifying Stress-Strain Gradient Framework
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A Unified Higher-Order Beam Theory for Free Vibration and Buckling of FGCNT-Reinforced Microbeams Embedded in Elastic Medium Based on Unifying Stress-Strain Gradient Framework

机译:基于统一的应力应变梯度框架的FGCNT增强微梁自由振动和屈曲的统一高阶梁理论

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摘要

The main object of this research is to formulate the linear free vibration as well as static stability of embedded functionally graded carbon nanotube-reinforced composite microbeams in thermal environment. The nonlocal stress-strain gradient theory in conjunction with the unified higher-order beam theory by considering the temperature dependence of material properties and the initial thermal stresses is used to derive nonclassical governing equations. The eigenvalue problems governing the linear vibration and static stability of microbeams are obtained by using the weak form of partial differential equations and employing Chebyshev-Ritz method. The fast rate of convergence of the method is demonstrated numerically, and its accuracy is verified by comparing the results in the limit cases with existing solutions in the literature. The effects of transverse shear stress distribution along the thickness together with the spring constants of Winkler-Pasternak elastic medium, different distribution patterns of CNTs across the thickness, the temperature dependence of material properties, the temperature rise, boundary conditions, nonlocal stress and strain gradient parameters on the frequency parameters and load-bearing capacity are investigated. Findings show that the effects of Pasternak constant of elastic medium on the natural frequency as well as critical buckling load depend on the boundary conditions. It is also shown that the nonlocal stress and strain gradient parameters have opposite effects on the stiffness. The more effective distribution pattern of CNTs across the thickness which enhances the static stability and vibratory behavior of microbeam is determined as well.
机译:这项研究的主要目的是制定热环境中嵌入的功能梯度碳纳米管增强复合微束的线性自由振动以及静态稳定性。结合材料特性对温度的依赖性和初始热应力,结合非局部应力应变梯度理论和统一的高阶梁理论,推导了非经典的控制方程。通过使用偏微分方程的弱形式并采用Chebyshev-Ritz方法,获得了控制微梁的线性振动和静态稳定性的特征值问题。通过数值演示了该方法的快速收敛速度,并通过将极限情况下的结果与文献中的现有解决方案进行比较,验证了该方法的准确性。沿厚度方向的横向剪应力分布以及Winkler-Pasternak弹性介质的弹簧常数,碳纳米管在整个厚度方向上的不同分布方式,材料特性的温度依赖性,温度升高,边界条件,非局部应力和应变梯度的影响对频率参数和承载能力进行了研究。研究结果表明,弹性介质的Pasternak常数对固有频率以及临界屈曲载荷的影响取决于边界条件。还表明,非局部应力和应变梯度参数对刚度具有相反的影响。还确定了碳纳米管在整个厚度上更有效的分布模式,该分布模式增强了微束的静态稳定性和振动行为。

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