Inherent resonance of carbon and graphene-based nanocomposite coupled single-span arch beams

IF 5.3 Q2 MATERIALS SCIENCE, COMPOSITES
Moein Alreza Ghandehari, Amir R. Masoodi
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Abstract

In recent decades, there has been a significant rise in the utilization of composite materials for various engineering applications. These advanced materials offer the potential to improve the mechanical properties and vibration characteristics of structural components. This particular study is dedicated to enhancing the vibration performance of coupled curved-curved beams that feature a linear elastic mid-layer, achieved through the incorporation of carbon nanotubes (CNTs), graphene nanoplates (GNPs), and graphene oxide powder (GOPs). The governing equations of the system are solved using the generalized differential quadrature (GDQ) method. While previous research primarily focused on the use of CNTs to enhance the vibration behavior of coupled-curved beams, this study delves into the utilization of multiple nanofillers for this purpose. An essential aspect of modeling composite materials lies in determining their equivalent mechanical properties. This research undertakes a comparison between the rule of mixture (RoM) and Halpin-Tsai methods for calculating these properties, revealing that frequencies derived from the RoM method are higher than those obtained through the Halpin-Tsai approach. Additionally, the study highlights that systems incorporating GNPs demonstrate higher frequencies at lower nanofiller volumes, with CNTs and GOPs following in ranking. However, this hierarchy shifts at higher nanofiller volumes. The arrangement of nanofillers within the system is influenced by its boundary conditions, with the curvature of the bottom beam playing a significant role in affecting vibration behavior. Increasing the radius of the bottom beam (R2) leads to higher system frequencies, which subsequently decrease with higher R2 values.

Abstract Image

碳基和石墨烯基纳米复合材料耦合单跨拱梁的固有共振
近几十年来,复合材料在各种工程应用中的使用显著增加。这些先进材料具有改善结构部件机械性能和振动特性的潜力。本研究致力于通过加入碳纳米管 (CNT)、石墨烯纳米板 (GNP) 和氧化石墨烯粉末 (GOP),提高具有线性弹性中层的耦合曲面梁的振动性能。系统的支配方程采用广义微分正交(GDQ)法求解。以往的研究主要集中在使用 CNTs 增强耦合曲面梁的振动行为,而本研究则深入探讨了为此目的使用多种纳米填料的问题。复合材料建模的一个重要方面在于确定其等效机械性能。本研究比较了计算这些性能的混合法则(RoM)和 Halpin-Tsai 方法,结果表明,RoM 方法得出的频率高于 Halpin-Tsai 方法得出的频率。此外,研究还强调,含有 GNPs 的体系在较低的纳米填料体积下显示出较高的频率,CNTs 和 GOPs 的频率紧随其后。然而,当纳米填料体积越大时,这种层次结构就会发生变化。纳米填料在系统中的排列受其边界条件的影响,其中底部横梁的曲率在影响振动行为方面起着重要作用。增大底梁半径(R2)会提高系统频率,而随着 R2 值的增大,系统频率也会随之降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Composites Part C Open Access
Composites Part C Open Access Engineering-Mechanical Engineering
CiteScore
8.60
自引率
2.40%
发文量
96
审稿时长
55 days
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