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Performance-based design of steel building frameworks under seismic loading.

机译:在地震荷载下基于性能的钢制建筑框架设计。

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摘要

Performance-based seismic design involves a set of procedures by which a building structure is designed in a controlled manner such that its behaviour is ensured at predefined performance levels under earthquake loading. The design process is an iterative re-analysis/re-design task, in which an initial design is modified repeatedly to meet code- and designer-specified requirements. As herein, the process when conducted in professional practice is often based on pushover analysis, a nonlinear static procedure that accounts for both geometric and material nonlinearity at multiple performance (loading) levels. The design optimization of building frameworks using pushover analysis to evaluate the seismic demand can be extremely computationally intensive. An algorithm is yet needed to efficiently incorporate pushover analysis together with optimal performance-based design.; The objective of this study is the development of a computer-automated method for the optimum performance-based design of steel building frameworks at the, so-called, operational, immediate occupancy, life safety and collapse prevention performance levels. A new computer-based pushover analysis procedure developed at the University of Waterloo is adopted to predict post-elastic seismic demands under equivalent static earthquake loading. The conventional elastic and geometric stiffness matrices of frame elements are progressively modified to reflect the progressive degradation of structure stiffness due to plastic behavior under incrementally increasing loads.; Two objective criteria are identified for the performance-based seismic design. Minimizing structure cost (interpreted as structure weight) is taken as one objective. The other objective concerns minimizing earthquake damage which, since uniform ductility demand over all stories generally avoids local weak-story collapse, is interpreted as providing a uniform inter-story drift distribution over the height of the building. That is, the overall objective for the design of a building framework is to have minimum weight and uniform ductility demand while, at the same time, meeting all four of the previously noted seismic-related performance levels under specified earthquake ground motions. Displacement and strength constraints corresponding to the various performance levels are both accounted for by the optimization model. Explicit forms of the constraints in terms of member sizing variables are derived using nonlinear pushover sensitivity analysis at the different performance levels.; A modified Dual Method is applied to solve the bi-criteria optimization problem to find the optimal design of steel building frameworks that simultaneously ensure appropriate behavior at all performance levels. A number of numerical experiments and several framework examples are conducted to illustrate the scope, applicability and practicality of the developed design methodology.
机译:基于性能的抗震设计涉及一组程序,通过这些程序可控地设计建筑结构,以确保其在地震荷载下的性能达到预定义的性能水平。设计过程是一个反复的重新分析/重新设计任务,其中反复修改初始设计,以满足代码和设计人员指定的要求。如本文所述,当在专业实践中进行时,该过程通常基于推倒分析,即考虑多个性能(载荷)水平下的几何和材料非线性的非线性静态过程。使用推覆分析评估地震需求的建筑框架的设计优化可能需要大量计算。还需要一种算法来有效地将推覆分析与基于最佳性能的设计结合在一起。这项研究的目的是开发一种计算机自动化的方法,用于在所谓的操作,即时入住,生命安全和防塌性能等级下,以最佳性能为基础的钢结构建筑设计。滑铁卢大学开发了一种新的基于计算机的推覆分析程序,用于在等效静地震荷载下预测弹性后的地震需求。框架构件的常规弹性刚度和几何刚度矩阵被逐渐修改,以反映由于载荷逐渐增加引起的塑性行为而导致的结构刚度的逐渐降低。为基于性能的抗震设计确定了两个客观标准。最小化结构成本(解释为结构重量)是一个目标。另一个目标涉及最大程度地减少地震破坏,因为所有楼层的延性要求一致,通常可以避免局部的弱楼层倒塌,因此可以解释为在建筑物的整个高度上提供均匀的楼层间漂移分布。也就是说,建筑框架设计的总体目标是要具有最小的重量和均匀的延性要求,同时要在指定的地震地面运动下满足之前提到的所有四个与地震相关的性能水平。优化模型考虑了与各种性能水平相对应的位移和强度约束。根据成员大小变量的约束的显式形式是在不同性能水平下使用非线性推覆灵敏度分析得出的。修改后的对偶方法用于解决双标准优化问题,以找到可同时确保在所有性能级别上均具有适当行为的钢结构框架的最佳设计。进行了许多数值实验和几个框架示例,以说明所开发设计方法的范围,适用性和实用性。

著录项

  • 作者

    Gong, Yanglin.;

  • 作者单位

    University of Waterloo (Canada).;

  • 授予单位 University of Waterloo (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 245 p.
  • 总页数 245
  • 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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