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Uncertainty analysis techniques using approximation concepts in multidisciplinary structural design environment.

机译:在多学科结构设计环境中使用近似概念的不确定性分析技术。

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摘要

One of the primary goals of structural engineers is to assure proper levels of safety for the structures they design. This seemingly simple task is complicated by uncertainties that result from material data, physical modeling, finite element mesh, linear/nonlinear theories, solution algorithms, etc. Information is available either as sparse data points, intervals, expert opinions, or as probability distributions. In multidisciplinary integration, depending on the uncertain information available, uncertainty propagates from one-step or discipline to another. Structural reliability and uncertainty quantification (UQ) are tools that can be employed to quantify these uncertainties and inaccuracies to produce designs that meet the safety requirements. These issues are the focus of this research work. It was important to investigate some methods that would not necessarily require the rigorous and intense testing procedures that prototypes must typically endure. Of added advantage would be the ability to apply these methods during the preliminary design stages. These methods would not replace the prototyping and actual testing but keep the number of actual tests to a minimum. In today's competitive world, major emphases is on reducing the actual testing of prototypes and certifying the systems analytically. The techniques developed in this research provide new tools to aid the complex task of analytical certification. These techniques help build safer systems more economically and in a relatively shorter period.
机译:结构工程师的主要目标之一是确保他们设计的结构具有适当的安全等级。这个看似简单的任务由于材料数据,物理模型,有限元网格,线性/非线性理论,求解算法等带来的不确定性而变得复杂。信息可以作为稀疏数据点,区间,专家意见或概率分布来获得。在多学科整合中,取决于可获得的不确定信息,不确定性从一个步骤或纪律传播到另一个步骤。结构可靠性和不确定性量化(UQ)是可用于量化这些不确定性和不准确度的工具,以生产出符合安全要求的设计。这些问题是本研究工作的重点。重要的是要研究一些方法,这些方法不一定需要原型通常必须经过的严格而严格的测试程序。另外的优势是可以在初步设计阶段应用这些方法。这些方法不能代替原型和实际测试,但是可以使实际测试的数量保持最少。在当今竞争激烈的世界中,主要重点是减少原型的实际测试并通过分析对系统进行认证。这项研究中开发的技术提供了新的工具,以帮助进行复杂的分析认证任务。这些技术有助于在更短的时间内更经济地构建更安全的系统。

著录项

  • 作者

    Penmetsa, Ravi Chandra.;

  • 作者单位

    Wright State University.;

  • 授予单位 Wright State University.;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 125 p.
  • 总页数 125
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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