Nonlinear dynamic stability analysis of three-dimensional graphene foam-reinforced polymeric composite cylindrical shells subjected to periodic axial loading

被引:0
作者
Fei Zhang
Chun Yu Bai
Ji Zhen Wang
机构
[1] Aircraft Strength Research Institute of China,Aviation Key Laboratory of Science and Technology on Structures Impact Dynamics
来源
Archive of Applied Mechanics | 2023年 / 93卷
关键词
Three-dimensional graphene foam-reinforced polymeric composite materials; Cylindrical shell; Nonlinearity; Bolotin’s method; Galerkin method; Dynamic stability;
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学科分类号
摘要
This paper investigates the nonlinear dynamic stability of three-dimensional graphene foam (3D-GrF)-reinforced polymeric composite (RPC) cylindrical shells under the periodic axial loading. Three types of foam distribution are considered and the effective Young’s modulus, Poisson’s ratio and mass density of 3D-GrFRPC shells are obtained by using the mixing rule. Hamilton’s principle is implemented to derive the differential equations of motion on the basis of Donnell’s shell theory and von Kàrmàn geometric nonlinearity. In the framework of the Galerkin method and Airy stress function, the nonlinear transverse vibration differential equation is transformed to the Mathieu–Hill equation. Moreover, the explicit expressions of steady-state vibration amplitude of 3D-GrFRPC shells are obtained via Bolotin’s method. Finally, the effects of foam coefficient, foam distribution, dynamic load factor, static load factor and shell geometry parameters on the nonlinear dynamic stability of 3D-GrFRPC cylindrical shells are discussed.
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页码:503 / 524
页数:21
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