Vibration characteristics of a cylindrical sandwich shell with an FG auxetic honeycomb core and nanocomposite face layers subjected to supersonic fluid flow

Hossein Amirabadi, Arashk Darakhsh, M. Sarafraz, H. Afshari
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Abstract

In this paper, the flutter analysis is studied for a cylindrical sandwich shell subjected to external supersonic fluid flow. The sandwich shell consists of a re-entrant auxetic honeycomb (AH) core made of functionally graded materials (FGMs) which is covered with two polymeric face layers enriched with either carbon nanotubes (CNTs), graphene nanoplatelets (GNPs), or graphene oxide powders (GOPs). The volume fraction (percentage) of the ceramic phase in the functionally graded auxetic honeycomb (FGAH) core varies from zero at the inner surface to one at the outer one based on either power-law function (P-FGM), exponential function (E-FGM), or sigmoid function (S-FGM). It is assumed that the nanofillers are distributed uniformly inside the face layers. The first-order shear deformation theory (FSDT) and the piston theory are employed to provide the mathematical models of the shell and the aerodynamic pressure, respectively. The governing equations and boundary conditions are derived via Hamilton’s principle. An exact solution is performed in the circumferential direction via harmonic trigonometric functions (sine and cosine) and an approximate solution is performed in the axial direction utilizing the differential quadrature method (DQM). The natural frequencies and corresponding damping ratios are attained through the presented semi-analytical solution and the impacts of several factors on the natural frequencies and the critical aerodynamic pressure of the shell are examined. These factors the type of the FGM, the material index, and inclined angle of the cells in the FGAH core, the thickness of the FGAH core, the type and mass fraction of the nanofillers in the nanocomposite face layers, and boundary conditions.
带有 FG 辅助蜂窝芯和纳米复合材料面层的圆柱形夹层壳体在超音速流体流动下的振动特性
本文研究了受外部超音速流体流动影响的圆柱形夹层外壳的扑动分析。夹层壳由一个由功能分级材料(FGMs)制成的重入式辅助蜂窝(AH)芯组成,芯上覆盖着两层富含碳纳米管(CNTs)、石墨烯纳米片(GNPs)或氧化石墨烯粉末(GOPs)的聚合物面层。根据幂律函数(P-FGM)、指数函数(E-FGM)或sigmoid函数(S-FGM),功能分级辅助蜂窝(FGAH)芯中陶瓷相的体积分数(百分比)从内表面的零到外表面的一不等。假设纳米填料在面层内均匀分布。一阶剪切变形理论(FSDT)和活塞理论分别用于提供壳体和空气动力压力的数学模型。通过汉密尔顿原理推导出控制方程和边界条件。通过谐波三角函数(正弦和余弦)对圆周方向进行精确求解,利用微分正交法(DQM)对轴向方向进行近似求解。通过所提出的半解析解获得了自然频率和相应的阻尼比,并研究了几个因素对自然频率和壳体临界空气动力压力的影响。这些因素包括 FGM 的类型、材料指数、FGAH 内核单元的倾斜角度、FGAH 内核的厚度、纳米复合材料面层中纳米填料的类型和质量分数以及边界条件。
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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