Limkatanyu Suchart, Sae-Long Worathep, Mohammad-Sedighi Hamid, Rungamornrat Jaroon, Sukontasukkul Piti, Imjai Thanongsak, Zhang Hexin
Department of Civil and Environmental Engineering, Faculty of Engineering, Prince of Songkla University, Songkhla 90112, Thailand.
Civil Engineering Program, School of Engineering, University of Phayao, Phayao 56000, Thailand.
Nanomaterials (Basel). 2022 May 19;12(10):1740. doi: 10.3390/nano12101740.
This paper proposes a novel nanobar-substrate medium model for static and free vibration analyses of single-walled carbon nanotube (SWCNT) systems embedded in the elastic substrate medium. The modified strain-gradient elasticity theory is utilized to account for the material small-scale effect, while the Gurtin-Murdoch surface theory is employed to represent the surface energy effect. The Winkler foundation model is assigned to consider the interactive mechanism between the nanobar and its surrounding substrate medium. Hamilton's principle is used to consistently derive the system governing equation, initial conditions, and classical as well as non-classical boundary conditions. Two numerical simulations are employed to demonstrate the essence of the material small-scale effect, the surface energy effect, and the surrounding substrate medium on static and free vibration responses of single-walled carbon nanotube (SWCNT)-substrate medium systems. The simulation results show that the material small-scale effect, the surface energy effect, and the interaction between the substrate and the structure led to a system-stiffness enhancement both in static and free vibration analyses.
本文提出了一种新颖的纳米棒-基体介质模型,用于对嵌入弹性基体介质中的单壁碳纳米管(SWCNT)系统进行静态和自由振动分析。采用修正的应变梯度弹性理论来考虑材料的小尺度效应,同时运用古尔丁-默多克表面理论来表征表面能效应。采用文克勒地基模型来考虑纳米棒与其周围基体介质之间的相互作用机制。利用哈密顿原理一致地推导了系统控制方程、初始条件以及经典和非经典边界条件。通过两个数值模拟来展示材料小尺度效应、表面能效应以及周围基体介质对单壁碳纳米管(SWCNT)-基体介质系统静态和自由振动响应的影响本质。模拟结果表明,材料小尺度效应、表面能效应以及基体与结构之间的相互作用在静态和自由振动分析中均导致系统刚度增强。