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On torsion of nonlocal Lam strain gradient FG elastic beams

机译:关于非本体脉冲梯度FG弹性束的扭转

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The nonlocal strain gradient theory of elasticity is the focus of numerous studies in literature. Eringen's nonlocal integral convolution and Lam's strain gradient model are unified by a variational methodology which leads to well-posed structural problems of technical interest. The proposed nonlocal Lam strain gradient approach is presented for functionally graded (FG) beams under torsion. Static and dynamic responses are shown to be significantly affected by size effects that are assessed in terms of nonlocal and gradient length parameters. Analytical elastic rotations and natural frequencies are established by making recourse to a simple solution procedure which is based on equivalence between integral convolutions and differential equations supplemented with variationally consistent (but non-standard) nonlocal boundary conditions. Effects of Eringen's nonlocal parameter and stretch and rotation gradient parameters on the torsional behavior of FG nano-beams are examined and compared with outcomes in literature. The illustrated methodology is able to efficiently model both stiffening and softening torsional responses of modern composite nano-structures by suitably tuning the small-scale parameters.
机译:弹性的非局部应变梯度理论是众多文学研究的重点。 Eringen的非局部积分卷积和LAM的应变梯度模型由变分方法统一,这导致技术兴趣的良好结构问题。提出的非本体脉冲梯度方法是在扭转下的功能梯度(FG)梁的梯度。显示静态和动态响应的尺寸效应显着影响,这些尺寸效应是在非识别和梯度长度参数方面评估的。通过求助于基于整体卷积与补充性变异(但非标准)非局部边界条件的整体卷积和微分方程之间的等效来建立分析弹性旋转和自然频率。 eringen非局部参数和拉伸和旋转梯度参数对FG纳米梁扭转行为的影响,并与文献结果进行了比较。所示的方法能够通过适当调整小规模参数,有效地模拟现代复合纳米结构的加强和软化扭转响应。

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