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Buckling analysis and optimum design of multidirectionally stiffened composite curved panel.

机译:多向加筋复合曲面板的屈曲分析及优化设计。

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摘要

Continuous filament grid-stiffened structure is a stiffening concept that combines structural efficiency and damage tolerance. However, buckle resistant design optimization of such structures using a finite element method is expensive and time consuming due to the number of design parameters that can be varied. An analytical optimization procedure which is simple, efficient and supports the preliminary design of grid-stiffened structures for application to combined loading cases is needed.;An analytical model for a general grid-stiffened curved panel is developed using an improved smeared theory with a first-order, shear-deformation theory to account for transverse shear flexibilities and local skin-stiffener interaction effects. The local skin-stiffener interaction effects are accounted for by computing the stiffness due to the stiffener and the skin in the skin-stiffener region using the neutral surface profile of the skin-stiffener semi-infinite plate model. The neutral surface profile for the skin-stiffener semi-infinite plate model is obtained analytically using a stress function approach, minimum potential energy principle, and statics conditions.;Analysis methods for buckling of general parallelogram-shaped and general triangular-shaped curved panels are developed. These analyses are required in order to assess the local buckling of grid-stiffened curved skin segments. The buckling analysis makes use of "circulation" functions as Ritz functions which account for material anisotropy and different boundary conditions. The local buckling of stiffener segments between stiffener interaction points are also assessed.;Using these analyses and a genetic algorithm as optimizer, an optimization tool is developed for minimum weight design of composite grid-stiffened panel subjected to combined in-plane loads with a global buckling design constraint. Design variables are the axial and transverse stiffener spacings, the stiffener height and thickness, and the stiffener pattern.;Results are presented for buckling loads of composite grid-stiffened panels which are obtained using the improved smeared theory and are compared with detailed finite element analysis. Buckling loads for anisotropic skewed and triangular plates, and curved panels are presented and compared with results from finite element analysis. Finally, designs for grid-stiffened panels obtained using the design optimization process are presented.
机译:连续的长丝格栅加强结构是将结构效率和损伤容限相结合的加强概念。然而,由于可以改变的设计参数的数量,使用有限元方法对这种结构的耐弯曲设计的优化是昂贵且费时的。需要一种简单,有效的分析优化程序,以支持用于组合荷载工况的网格加劲结构的初步设计。;使用改进的拖尾理论,首先建立通用网格加劲弯板的分析模型。阶剪切变形理论考虑了横向剪切挠性和局部蒙皮与增强剂之间的相互作用。局部蒙皮与加筋板的相互作用效应是通过使用蒙皮加筋板半无限板模型的中性表面轮廓计算加筋板和蒙皮加筋板区域中的蒙皮引起的刚度来解决的。使用应力函数方法,最小势能原理和静态条件,通过解析获得蒙皮加筋半无限板模型的中性表面轮廓。普通平行四边形和普通三角形弯曲板的屈曲分析方法为:发达。这些分析是必需的,以便评估网格加强的弯曲蒙皮段的局部屈曲。屈曲分析利用“循环”函数作为Ritz函数,该函数考虑了材料的各向异性和不同的边界条件。还评估了加劲肋相互作用点之间的加劲肋节段的局部屈曲。;使用这些分析和遗传算法作为优化程序,开发了一种优化工具,用于承受组合平面内载荷和整体载荷的复合网格加筋板的最小重量设计屈曲设计约束。设计变量是轴向和横向加劲肋间距,加劲肋高度和厚度以及加劲肋样式。;给出了使用改进的拖尾理论获得的复合网格加劲肋板屈曲载荷的结果,并与详细的有限元分析进行了比较。提出了各向异性的偏斜和三角形板以及弯曲板的屈曲载荷,并将其与有限元分析的结果进行了比较。最后,介绍了使用设计优化过程获得的格栅加筋板的设计。

著录项

  • 作者

    Jaunky, Navin R. R.;

  • 作者单位

    Old Dominion University.;

  • 授予单位 Old Dominion University.;
  • 学科 Engineering Mechanical.;Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 1995
  • 页码 145 p.
  • 总页数 145
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 古生物学;
  • 关键词

  • 入库时间 2022-08-17 11:49:43

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