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Performance-based plastic design of earthquake resistant reinforced concrete moment frames.

机译:基于性能的抗震钢筋混凝土弯矩框架的塑料设计。

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摘要

Performance-Based Plastic Design (PBPD) method has been recently developed to achieve enhanced performance of earthquake resistant structures. The design concept uses pre-selected target drift and yield mechanism as performance criteria. The design base shear for selected hazard level is determined by equating the work needed to push the structure monotonically up to the target drift to the corresponding energy demand of an equivalent SDOF oscillator.;This study presents development of the PBPD approach as applied to reinforced concrete special moment frame (RC SMF) structures. RC structures present special challenge because of their complex and degrading ("pinched") hysteretic behavior. In order to account for the degrading hysteretic behavior the 1-EMA 440 C2 factor approach was used in the process of determining the design base shear.;Four baseline RC SMF (4, 8, 12 and 20-story) as used in the FEMA P695 were selected for this study. Those frames were redesigned by the PBPD approach. The baseline frames and the PBPD frames were subjected to extensive inelastic pushover and time-history analyses. The PBPD frames showed much improved response meeting all desired performance objectives, including the intended yield mechanisms and the target drifts. On the contrary, the baseline frames experienced large story drifts due to flexural yielding of the columns.;The work-energy equation to determine design base shear can also be used to estimate seismic demands, called the energy spectrum method. In this approach the skeleton force-displacement (capacity) curve of the structure is converted into energy-displacement plot (Ec) which is superimposed over the corresponding energy demand plot ( Ed) for the specified hazard level to determine the expected peak displacement demands.;In summary, this study shows that the PBPD approach can be successfully applied to RC moment frame structures as well, and that the responses of the example moment frames were much improved over those of the corresponding baseline frames. In addition, the drift demands of all study frames as computed by the energy spectrum method were in excellent agreement with those obtained from detailed inelastic dynamic analyses.
机译:最近开发了基于性能的塑料设计(PBPD)方法,以提高抗震结构的性能。设计概念使用预先选择的目标漂移和屈服机制作为性能标准。通过将单调推动结构达到目标漂移所需的功等同于等效SDOF振荡器的相应能量需求,来确定选定危险等级的设计基本剪力。;本研究提出了应用于钢筋混凝土的PBPD方法的发展特殊力矩框架(RC SMF)结构。 RC结构由于其复杂且退化的(“收缩”)滞后行为而面临特殊挑战。为了解决退化的滞后行为,在确定设计基础剪力的过程中使用了1-EMA 440 C2因子方法。FEMA中使用了四个基线RC SMF(4、8、12和20层)选择P695进行这项研究。这些框架通过PBPD方法进行了重新设计。对基线框架和PBPD框架进行了广泛的非弹性推覆和时程分析。 PBPD框架显示出改善的响应,可以满足所有所需的性能目标,包括预期的屈服机理和目标漂移。相反,由于柱的挠曲屈服,基线框架经历了较大的楼层偏移。确定设计基础剪力的工作-能量方程也可以用来估计地震需求,称为能谱方法。在这种方法中,将结构的骨架力-位移(容量)曲线转换为能量-位移图(Ec),将其叠加到指定危险等级的相应能量需求图(Ed)上,以确定预期的峰值位移需求。总而言之,这项研究表明PBPD方法也可以成功地应用于RC矩框架结构,并且示例矩框架的响应比相应的基线框架要大得多。另外,通过能量谱方法计算的所有研究框架的漂移需求与从详细的非弹性动力分析获得的漂移需求非常一致。

著录项

  • 作者

    Liao, Wen-Cheng.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Geophysical.;Engineering Civil.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 184 p.
  • 总页数 184
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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