论文标题
非局部梯度弹性梁的变异一致动力学
Variationally consistent dynamics of nonlocal gradient elastic beams
论文作者
论文摘要
[国际工程科学杂志143,73-91(2019)]在本文中概括为弹性纳米束的轴向和弯曲动态行为概括,该论文在[国际工程科学杂志143,73-91(2019)]中有助于弹性纳米束的轴向和压力梯度方法对轴向和弯曲的动态行为进行概括。检测并正确规定了适当形式的非标准边界条件。阐明并调用了差异法与积分卷积之间的等效性,以分析评估悬臂和完全夹紧光束的尺寸依赖性轴向和弯曲的基本频率,这些频率显着表征了新的生成纳米传动剂。提出的方法和随后的结果由文献中的相关结果测试。有利地,与可用的非局部梯度模型相比,开发的弹性配方会导致纳米力学的动态结构问题。在特殊的临时假设下,通过良好的应变驱动和压力驱动的非本地和梯度理论获得的结果获得的结果。本研究提供了一种简单有效的策略,可以预测高级技术设备的纳米尺度组件(例如纳米电动机械系统(NEM)和现代复合纳米结构)的纳米尺度组件的特殊动态响应。
The variational static formulation contributed in [International Journal of Engineering Science 143, 73-91 (2019)] is generalized in the present paper to model axial and flexural dynamic behaviors of elastic nano-beams by nonlocal strain and stress gradient approaches. Appropriate forms of non-standard boundary conditions are detected and properly prescribed. Equivalence between differential laws and integral convolutions is elucidated and invoked to analytically evaluate size-dependent axial and flexural fundamental frequencies of cantilever and fully-clamped beams which significantly characterize new-generation nano-actuators. The proposed methodology and ensuing results are tested by pertinent outcomes in literature. Advantageously, in comparison with available nonlocal gradient models, the developed formulation of elasticity leads to well-posed dynamic structural problems of nano-mechanics. Outcomes obtained by the well-established strain-driven and stress-driven nonlocal and gradient theories of Engineering Science are recovered under special ad hoc assumptions. The present study offers a simple and effective strategy to predict peculiar stiffening and softening dynamic responses of nano-scaled components of advanced technological devices, such as Nano-Electro-Mechanical-Systems (NEMS), and modern composite nano-structures.