Zhang Yuanxiu, Teng Jingmei, Huang Jun, Zhou Kun, Huang Lixin
Key Laboratory of Disaster Prevention and Structural Safety of Ministry of Education, Guangxi University, Nanning 530004, China.
School of Civil Engineering and Architecture, Guangxi University, Nanning 530004, China.
Materials (Basel). 2022 Sep 4;15(17):6135. doi: 10.3390/ma15176135.
The finite element method (FEM) is used to investigate the free and forced vibration characteristics of functionally graded graphene-nanoplatelet-reinforced composite (FG-GPLRC) beams. The weight fraction of graphene nanoplatelets (GPLs) is assumed to vary continuously along the beam thickness according to a linear, parabolic, or uniform pattern. For the FG-GPLRC beam, the modified Halpin-Tsai micromechanics model is used to calculate the effective Young's modulus, and the rule of mixture is used to determine the effective Poisson's ratio and mass density. Based on the principle of virtual work under the assumptions of the Euler-Bernoulli beam theory, finite element formulations are derived to analyze the free and forced vibration characteristics of FG-GPLRC beams. A two-node beam element with six degrees of freedom is adopted to discretize the beam, and the corresponding stiffness matrix and mass matrix containing information on the variation of material properties can be derived. On this basis, the natural frequencies and the response amplitudes under external forces are calculated by the FEM. The performance of the proposed FEM is assessed, with some numerical results obtained by layering method and available in published literature. The comparison results show that the proposed FEM is capable of analyzing an FG-GPLRC beam. A detailed parametric investigation is carried out to study the effects of GPL weight fraction, distribution pattern, and dimensions on the free and forced vibration responses of the beam. Numerical results show that the above-mentioned effects play an important role with respect to the vibration behaviors of the beam.
采用有限元法(FEM)研究功能梯度石墨烯纳米片增强复合材料(FG-GPLRC)梁的自由振动和强迫振动特性。假设石墨烯纳米片(GPLs)的重量分数根据线性、抛物线或均匀模式沿梁厚度连续变化。对于FG-GPLRC梁,采用修正的Halpin-Tsai细观力学模型计算有效杨氏模量,采用混合法则确定有效泊松比和质量密度。基于Euler-Bernoulli梁理论假设下的虚功原理,推导有限元公式以分析FG-GPLRC梁的自由振动和强迫振动特性。采用具有六个自由度的两节点梁单元对梁进行离散化,并可推导包含材料特性变化信息的相应刚度矩阵和质量矩阵。在此基础上,通过有限元法计算梁的固有频率和外力作用下的响应幅值。对所提出的有限元法的性能进行了评估,并与分层法得到的一些数值结果进行了比较,这些结果已发表在文献中。比较结果表明,所提出的有限元法能够分析FG-GPLRC梁。进行了详细的参数研究,以研究GPL重量分数、分布模式和尺寸对梁的自由振动和强迫振动响应的影响。数值结果表明,上述影响对梁的振动行为起着重要作用。