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Chord bearing capacity in long-span tubular trusses.

机译:大跨度管状桁架的弦承载能力。

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摘要

Existing design specifications used in North America and Europe do not directly treat the general limit state of local collapse of tubular truss chords at bearing supports; although these specifications do consider the very specific case related to chord wall resistance under concentrated loads applied through simple gusset plate or tubular branch connections. The lack of general and robust treatment of chord bearing strength represents an unsatisfactory situation given the fact that very large reaction forces are often applied locally to the ends of chord members with slender cross-sections in long-span overhead highway sign trusses. A number of these structures in the U.S. have been shown to be inadequate for this limit state; a situation precipitating costly retrofits, construction delays, and motorist safety concerns.; This dissertation research is aimed at quantifying the bearing strength of circular chords in long, simple-span tubular trusses. Two (2) full-scale experimental tests were conducted at the University of Pittsburgh as part of the current research effort. In addition, a parametric study based on the finite element (FE) method is also carried out. The nonlinear FE modeling techniques are first validated against the experimental testing results and then employed in a parametric study whose results are reported on herein. The current study reveals that the bearing strength is influenced by the geometry of the bearing region including any adjacent intermediate truss member(s), the nature of loading, and the material properties. Using a semi-empirical approach, general capacity equations for predicting the ultimate bearing strength are developed. Capacity equations are developed for axial loading (P), moment (M), and interaction of both (P+M).
机译:北美和欧洲使用的现有设计规范并未直接处理轴承支架上管状桁架弦杆局部塌陷的一般极限状态;尽管这些规范确实考虑了与在通过简单的角撑板或管状分支连接施加的集中载荷下弦壁阻力有关的非常特殊的情况。鉴于对大跨度高架公路标志桁架中横截面细长的弦杆构件的端部通常会施加很大的反作用力,因此缺乏对弦杆强度的一般性和鲁棒性的处理并不令人满意。在美国,许多这种结构已被证明不足以达到这种极限状态。导致成本高昂的改造,施工延误和驾车人安全问题的情况;本论文的研究旨在量化长短跨度管状桁架中圆形弦的承载强度。作为当前研究工作的一部分,在匹兹堡大学进行了两(2)个全面的实验测试。此外,还进行了基于有限元(FE)方法的参数研究。首先根据实验测试结果验证非线性有限元建模技术,然后将其用于参数研究,其结果已在此处报告。当前的研究表明,轴承强度受轴承区域(包括任何相邻的中间桁架构件)的几何形状,载荷的性质以及材料性能的影响。使用半经验方法,开发了用于预测极限轴承强度的通用能力方程。针对轴向载荷(P),力矩(M)以及两者的相互作用(P + M)开发了容量方程。

著录项

  • 作者

    Kozy, Brian M.;

  • 作者单位

    University of Pittsburgh.;

  • 授予单位 University of Pittsburgh.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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