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首页> 外文期刊>Composite Structures >Large amplitude vibration of fractionally damped viscoelastic CNTs/fiber/polymer multiscale composite beams
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Large amplitude vibration of fractionally damped viscoelastic CNTs/fiber/polymer multiscale composite beams

机译:部分阻尼粘弹性碳纳米管/纤维/聚合物多尺度复合梁的大振幅振动

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摘要

An analytical formulation combined with a fractional-order time derivative damping model has been developed to conduct a comprehensive study on the large amplitude free and forced vibration response of carbon nanotubes (CNTs)/fiber/polymer laminated multiscale composite beams. The Caputo fractional derivative of order a is employed to incorporate the viscoelastic material having nonlinear behavior. The governing equations of CNTs/fiber/polymer composite (CNTFPC) beams are coupled second order nonlinear partial FDEs (fractional differential equations) which are derived based on Euler-Bernoulli beam theory and von Karman geometric nonlinearity. Halpin-Tsai equations and fiber micromechanics are used in hierarchy to predict the bulk material properties of the multiscale nanocomposite. The carbon nanotubes are assumed to be uniformly distributed and randomly oriented through the epoxy resin matrix. Discretized by the Galerkin approximation, the perturbation method of multiple time scales is employed to obtain the nonlinear natural frequencies, amplitude-frequency equation and time history of the beams with hinged-hinged boundary conditions. The effects of the Caputo fractional derivative order, beam geometry, volume fraction of fibers and weight percentage of SWCNTs and MWCNTs on the nonlinear oscillation of the CNTFPC beams are investigated through a detailed parametric study. It is found that nonlinear natural frequencies, amplitude-frequency relationship and time history are characterized by viscoelastic damping coefficient which are connected with the natural frequency by the exponential relationship with a negative fractional exponent. (C) 2015 Elsevier Ltd. All rights reserved.
机译:已经开发了一种结合分数阶时间导数阻尼模型的分析公式,以对碳纳米管(CNT)/纤维/聚合物层压多尺度复合梁的大振幅自由振动和强迫振动进行全面研究。使用a阶的Caputo分数阶导数并入具有非线性行为的粘弹性材料。碳纳米管/纤维/聚合物复合材料(CNTFPC)梁的控制方程是耦合的二阶非线性局部FDE(分数微分方程),这些方程是基于Euler-Bernoulli束理论和von Karman几何非线性得出的。 Halpin-Tsai方程和纤维微力学被用于层次结构中,以预测多尺度纳米复合材料的整体材料性能。假定碳纳米管均匀分布并且通过环氧树脂基质无规取向。通过Galerkin近似离散化,采用多个时标的摄动方法获得了铰接铰接边界条件下梁的非线性固有频率,幅频方程和时程。通过详细的参数研究,研究了Caputo分数导数阶数,光束几何形状,纤维的体积分数以及SWCNT和MWCNT的重量百分比对CNTFPC光束非线性振荡的影响。研究发现,非线性固有频率,振幅-频率关系和时程的特征是粘弹性阻尼系数,它们通过负指数的指数关系与固有频率相关。 (C)2015 Elsevier Ltd.保留所有权利。

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