Vibration studies of an axially moving epoxy-carbon nanofiber composite beam in thermal environment—Effect of various nanofiber reinforcements

Krzysztof Marynowski
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Abstract

Free vibrations of an axially moving multiscale composite beam in thermal environment are analyzed. The beam material is epoxy resin with variously reinforced and randomly oriented or aligned in electric field carbon nanofibers (CNFs). To describe the thermomechanical properties of the beam material, published dynamic characteristic of stationary multiscale composites were taken into consideration. Using the frequency–temperature equivalence principle, the nanocomposite material of the beam is modeled using four-parameter fractional rheological model. The dynamic characteristics of the multiscale polymer beam in the frequency domain made it possible to determine the partial equation of motion of the axially moving beam. The Galerkin method is used to solve the governing partial differential equation. The effects of various nanofiber reinforcements of randomly oriented, and aligned in electric field fibers at different temperatures, on the free vibration of the axially moving beam are investigated.
热环境中轴向移动环氧树脂-碳纳米纤维复合梁的振动研究--各种纳米纤维增强材料的影响
分析了热环境中轴向移动的多尺度复合梁的自由振动。梁的材料是环氧树脂,其中含有各种增强的、在电场中随机取向或排列的碳纳米纤维(CNFs)。为了描述梁材料的热力学特性,考虑了已发表的静态多尺度复合材料的动态特性。利用频率-温度等效原理,使用四参数分数流变模型对梁的纳米复合材料进行建模。多尺度聚合物梁在频域中的动态特性使得确定轴向移动梁的部分运动方程成为可能。Galerkin 方法用于求解支配偏微分方程。研究了在不同温度下随机取向和在电场中排列的各种纳米纤维增强材料对轴向移动梁自由振动的影响。
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