Oyarhossein Mohammad Amin, Alizadeh As'ad, Habibi Mostafa, Makkiabadi Mahmoud, Daman Mohsen, Safarpour Hamed, Jung Dong Won
Department of Civil Engineering, University of Aveiro, Aveiro, Portugal.
Department of Mechanical Engineering, Urmia University of Technology, Urmia, Iran.
Sci Rep. 2020 Mar 27;10(1):5616. doi: 10.1038/s41598-020-61855-w.
This study presents the frequency analysis of a size-dependent laminated polymer composite microtube using a nonlocal strain-stress gradient (NSG) model. By applying energy methods (known as Hamilton's principle), the motion equations of the laminated micro tube composites are developed. The thermodynamic equations of the laminated microtube are based on first-order shear deformation theory (FSDT), and a generalized differential quadrature method (GDQM) is employed to find the model for the natural frequencies. The results show that by considering C-F boundary conditions (BCs) and every even layers' number in lower value of length scale parameter, the frequency of the structure drops by soaring this parameter. However, this matter is inverse in its higher value. Eventually, the ply angle's influences, nonlocality as well as length scale element on the vibration of the laminated composite microstructure are investigated.
本研究使用非局部应变-应力梯度(NSG)模型对尺寸依赖的层状聚合物复合微管进行频率分析。通过应用能量方法(即哈密顿原理),推导了层状微管复合材料的运动方程。层状微管的热力学方程基于一阶剪切变形理论(FSDT),并采用广义微分求积法(GDQM)来求解固有频率模型。结果表明,在较低长度尺度参数值下,考虑C-F边界条件(BCs)和偶数层数时,随着该参数增大,结构频率下降。然而,在较高参数值时情况相反。最终,研究了铺层角度、非局部性以及长度尺度元素对层状复合微结构振动的影响。