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An optimization method for the design of structures for maximum fundamental frequency.

机译:一种用于最大基频结构设计的优化方法。

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摘要

An optimization method to maximize the fundamental frequency of a structure is developed. The procedure uses the stresses due to the mechanical loading and the free-vibration mode shapes to determine design coefficients for the elements. Each element of the structure is assigned a design coefficient rated on a scale of zero to ten. The design coefficients are used to modify an initial design following an iterative procedure. This method of optimal structural design, referred to as the Maximum Stiffness Design (MSD), may be classified as an intuitive optimality criteria method. The MSD method is demonstrated by increasing the fundamental frequency of simple beam structures, truss structures, and complex structures. These examples include a support structure for a telescope, a support structure for a beam collapser, an airplane wing, and a truss railroad bridge. The MSD optimization method is compared to NASTRAN's Design Sensitivity Analysis to provide a benchmark comparison. It is shown that the MSD method compares well to NASTRAN's optimization method. Furthermore, the optimization technique is used to develop optimum contour shapes for single arch, double arch, and edge-supported mirrors.
机译:开发了一种最大化结构基频的优化方法。该过程使用由于机械载荷和自由振动模式形状引起的应力来确定元件的设计系数。为该结构的每个元素分配一个设计系数,额定值为0到10。设计系数用于按照迭代程序修改初始设计。这种称为最佳刚度设计(MSD)的最佳结构设计方法可以归类为直观的最佳性准则方法。通过增加简单梁结构,桁架结构和复杂结构的基频来证明MSD方法。这些示例包括用于望远镜的支撑结构,用于光束折叠器的支撑结构,飞机机翼和桁架铁路桥。将MSD优化方法与NASTRAN的设计灵敏度分析进行比较,以提供基准比较。结果表明,MSD方法与NASTRAN的优化方法具有很好的对比。此外,优化技术用于为单拱形,双拱形和边缘支撑的镜子开发最佳轮廓形状。

著录项

  • 作者

    Doyle Keith Brian.;

  • 作者单位
  • 年度 1993
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

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