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Modeling of bracing members and seismic behavior of concentrically braced steel structures.

机译:同心支撑钢结构的支撑构件建模和抗震性能。

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摘要

It is now commonly recognized that bracing systems can provide necessary stiffness to resist moderate earthquakes and similar dynamic excitation, and a source of energy dissipation through post-buckling hysteresis behavior of braces. Bracing systems are classified into two broad categories: concentric and eccentric. In the case of eccentric scheme, the prevention of brace buckling is required in order to force the inelastic deformation into a short segment of the girders which acts as a shear hinge. In concentric bracing systems the braces undergo cyclic deformations beyond buckling and yielding under a severe dynamic excitation. In such a situation, understanding the cyclic inelastic behavior of bracing members becomes essential for evaluation of dynamic response of concentric braced structures.; Modeling the hysteresis loops of bracing members under a dynamic loading is essential for inelastic analysis of braced multistory steel frames and similar steel structures. The accuracy of the analytical model affects significantly the computed response of such frames. Several analytical models have been developed by previous researchers to represent the cyclic behavior of steel braces. One of the purposes of this study is to formulate a refined and practical hysteresis model for the bracing members on the basis of experimental results of previous researchers.; Development of a better understanding of the behavior of concentric (chevron) braced structures subjected to severe earthquakes is an important purpose of this study. An evaluation of the consequences of using lateral design forces in accordance with the 1988 Uniform Building Code, in particular the {dollar}Rsb{lcub}w{rcub}{dollar} factors (lateral force reduction factor to account for ductility) for concentrically braced structures, is carried out. Recommendations for more rational values of {dollar}Rsb{lcub}w{rcub}{dollar} for both concentrically braced moment frames and concentrically braced non-moment resisting frames are developed.; Non-linear dynamic response of six-story concentrically braced structures designed according to different design procedures and subjected to four past earthquake records are determined. Included in the study are concentrically braced structures with and without moment resisting frames. The analysis of the computed response shows that column buckling and brace failure at small ductilities present a major problem with these structures. Bracing failure early in the time history response results in excessive story drifts. Alternative methods of design are investigated which can improve the response of these types of structures. Using ductile braces with smaller lateral design forces (compared with those used in current practice) for both moment and non-moment resisting structures showed very good behavior. Also, using moment connections at the exterior girder-to-column connections in frames without braces improved the response of non-moment resisting structures significantly. The results of this research can have direct significance in improving the methods of analysis and design of concentrically braced structures.
机译:现在通常公认的是,支撑系统可以提供必要的刚度以抵抗中等地震和类似的动态激励,并且通过支撑的屈曲后滞后行为来提供能量耗散的来源。支撑系统分为两大类:同心和偏心。在偏心方案的情况下,需要防止支撑屈曲,以迫使非弹性变形进入作为剪切铰链的梁的一小段。在同心支撑系统中,在剧烈的动力激励下,支撑承受屈曲和屈服以外的周期性变形。在这种情况下,了解支撑构件的周期性无弹性行为对于评估同心支撑结构的动力响应至关重要。在动态载荷下对支撑构件的磁滞回线进行建模对于支撑多层钢框架和类似钢结构的非弹性分析至关重要。分析模型的准确性会显着影响此类框架的计算响应。以前的研究人员已经开发了几种分析模型来表示钢牙箍的循环行为。这项研究的目的之一是在先前研究人员的实验结果的基础上,为支撑构件建立一个精巧而实用的磁滞模型。更好地理解遭受严重地震的同心(人字形)支撑结构的行为是这项研究的重要目的。评估根据1988年《统一建筑规范》使用侧向设计力的后果,特别是同心支撑的{dollar} Rsb {lcub} w {rcub} {dollar}因素(考虑延展性的横向力减小因子)结构,进行。提出了关于同心支撑的矩框架和同心支撑的无矩框架的更合理的{sr} Rsb {lcub} w {rcub} {dollar}值的建议。确定了根据不同设计程序设计的六层同心支撑结构的非线性动力响应,并经历了四次过去的地震记录。研究中包括具有和不具有抗力矩框架的同心支撑结构。对计算结果的分析表明,在小延性下,柱的屈曲和支撑失效是这些结构的主要问题。在历史记录响应的早期支撑失败会导致故事漂移过多。研究了可以改善这些类型结构响应的替代设计方法。对于抗力矩和非力矩结构,使用横向设计力较小的延性支撑(与当前实践中使用的相比)表现出非常好的性能。同样,在不使用支撑的框架中,在外梁至柱的连接处使用弯矩连接可显着改善非抗弯结构的响应。研究结果对改善同心支撑结构的分析和设计方法具有直接的意义。

著录项

  • 作者

    Hassan, Oday Flaih.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 1991
  • 页码 194 p.
  • 总页数 194
  • 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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