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A size-dependent Reddy-Levinson beam model based on a strain gradient elasticity theory

机译:基于应变梯度弹性理论的尺寸相关的雷迪-莱文森梁模型

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A size-dependent Reddy-Levinson beam model is developed based on a strain gradient elasticity theory. Governing equations and boundary conditions are derived by using Hamilton's principle. The model contains three material length scale parameters, which may effectively capture the size effect in micron or sub-micron. This model can degenerate into the modified couple stress model or even the classical model if two or all material length scale parameters are taken to be zero respectively. In addition, the present model recovers the micro scale Timoshenko and Bernoulli-Euler beam models based on the same strain gradient elasticity theory. To illustrate the new model, the static bending and free vibration problems of a simply supported micro scale Reddy-Levinson beam are solved respectively; the results are compared with the reduced models. Numerical results reveal that the differences in the deflection, rotation and natural frequency predicted by the present model and the other two reduced Reddy-Levinson models are getting larger as the beam thickness is comparable to the material length scale parameters. These differences, however, are decreasing or even diminishing with the increase of the beam thickness. This study may be helpful to characterize the mechanical properties of small scale beam-like structures for a wide range of potential applications.
机译:基于应变梯度弹性理论,建立了尺寸依赖的雷迪-莱文森梁模型。利用汉密尔顿原理导出控制方程和边界条件。该模型包含三个材料长度比例参数,可以有效地捕获微米或亚微米级的尺寸效应。如果将两个或所有材料长度尺度参数分别设为零,则该模型可以退化为改进的耦合应力模型,甚至可以退化为经典模型。此外,本模型基于相同的应变梯度弹性理论,恢复了微型Timoshenko和Bernoulli-Euler梁模型。为了说明新模型,分别解决了简单支撑的微型雷迪-莱文森梁的静态弯曲和自由振动问题。将结果与简化模型进行比较。数值结果表明,由于梁的厚度与材料长度尺度参数相当,因此本模型和其他两个简化的Reddy-Levinson模型所预测的挠度,旋转和固有频率之间的差异越来越大。但是,随着光束厚度的增加,这些差异正在减小甚至减小。这项研究可能有助于表征适用于广泛潜在应用的小规模梁状结构的机械性能。

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