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Free vibration analysis of magneto-electro-thermo-elastic nanobeams resting on a Pasternak foundation

机译:基于Pasternak基础的磁电热弹性纳米梁的自由振动分析

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In this study, free vibration analysis of magneto-electro-thermo-elastic (METE) nanobeams resting on a Pasternak foundation is investigated based on nonlocal theory and Timoshenko beam theory. Coupling effects between electric, magnetic, mechanical and thermal loading are considered to derive the equations of motion and distribution of electrical potential and magnetic potential along the thickness direction of the METE nanobeam. The governing equations and boundary conditions are obtained using the Hamilton principle and discretized via the differential quadrature method (DQM). Numerical results reveal the effects of the nonlocal parameter, magneto-electro-thermo-mechanical loading, Winkler spring coefficients, Pasternak shear coefficients and height-to-length ratio on the vibration characteristics of METE nanobeams. It is observed that the natural frequency is dependent on the magnetic, electric, temperature, elastic medium, small-scale coefficient, and height-to-length ratio. These results are useful in the mechanical analysis and design of smart nanostructures constructed from magneto-electro-thermo-elastic materials.
机译:在这项研究中,基于非局部理论和Timoshenko束理论,研究了基于Pasternak基础的磁电热弹性(METE)纳米束的自由振动分析。考虑电,磁,机械和热负荷之间的耦合效应,以推导沿METE纳米束厚度方向的电势和磁势的运动和分布方程。使用汉密尔顿原理获得控制方程和边界条件,并通过微分求积法(DQM)离散化。数值结果揭示了非局部参数,磁电热机械载荷,Winkler弹簧系数,Pasternak剪切系数和高长比对METE纳米束振动特性的影响。可以看出,固有频率取决于磁,电,温度,弹性介质,小比例系数和高长比。这些结果可用于由磁电热弹性材料构成的智能纳米结构的机械分析和设计。

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