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首页> 外文期刊>Acta Mechanica >Analysis of functionally graded nanodisks under thermoelastic loading based on the strain gradient theory
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Analysis of functionally graded nanodisks under thermoelastic loading based on the strain gradient theory

机译:基于应变梯度理论的热弹性载荷下功能梯度纳米噪声分析

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摘要

In this paper, the thermoelastic behavior of a functionally graded nanodisk is studied based on the strain gradient theory. It is assumed that the nanodisk thickness is constant, and a power-law model is adopted to describe the variation of functionally graded material properties. Furthermore, the nanodisk angular acceleration is taken to be zero while it is subjected to an axisymmetric loading. Also, it is assumed that any variation in temperature occurs only in the radial direction. The equilibrium equation and the boundary conditions are deduced from Hamilton's principle. The obtained results are compared with those of classical theory. These results show that both theories predict the same trend for the variation in radial displacements. The differences between the stresses obtained from classical and strain gradient theories are clearly highlighted. Increasing the value of the material inhomogeneity parameter, n, considerably affects the magnitudes and the corresponding peak values of the high-order stress . Any rise in temperature at the outside radius has a direct effect on the total stresses and radial displacements in the nanodisk. Also, the effects of external load at the inner and outer radii on radial displacement as well as stress components are fully investigated.
机译:本文基于应变梯度论研究了功能梯度纳米磁盘的热弹性行为。假设纳米磁盘厚度是恒定的,并且采用动力法模型来描述功能梯度材料特性的变化。此外,在对轴对称加载的同时,纳米尾角度加速度被认为是零。而且,假设仅在径向方向上发生温度的任何变化。从汉密尔顿原则推断出平衡方程和边界条件。将获得的结果与古典理论进行比较。这些结果表明,两个理论都预测了径向位移变化的相同趋势。显然突出了从经典和应变梯度理论获得的应力之间的差异。增加材料不均匀性参数的值,N,显着影响大阶应力的幅度和相应的峰值。外部半径的温度上的任何升高都直接影响了纳米芯片中的总应力和径向位移。而且,完全研究了内外半径的外部负荷对径向位移的影响以及应力分量。

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