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Period and damping selection for the design and analysis of building structures.

机译:用于建筑结构设计和分析的周期和阻尼选择。

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摘要

Fundamental period and damping ratio are two of the most important parameters involved in dynamic analyses of buildings. These parameters are usually assigned constant values typically through the use of simplified models or by using engineering judgment. The variability associated with these values is frequently ignored. Measurements of these parameters in the completed structure may or may not match those assumed at the design stage and the effects and implications of such differences are usually not fully explored or understood.; To develop models that reliably estimate the values of period and damping expected in actual structures, a comprehensive database of full-scale measurements was compiled and rigorously analyzed. An analysis of variance (ANOVA) identifies the number of stories for the period data and the number of stories and level of vibration for the damping data as key factors that potentially affect each parameter. Estimation models are developed for different combinations of factors and model performance, which is measured through the standard error, is observed to improve with additional factors. Models are greatly simplified through constrained variations in model coefficients and are considered to appreciably improve the state-of-the-art in period and damping estimation.; The large quantity of data allows for a proper and careful analysis of the variability in each estimation model. Model variability is quantified through two functions: a scalar value that represents the variability among measurements made on the same building and in the same lateral direction, and a function that represents the variability observed from building to building. A rigorous form representing the model variability is provided along with a much simpler form developed for possible inclusion into standards.; The effect of parameter variability on seismic response estimates was investigated. A proposed, performance-driven design procedure identifies period and damping values that achieve a specified level of performance. For a general seismic design spectrum, the engineer can apply a level of conservatism to the performance level or to period and damping selection from regions of practical values, which are defined through the parameter distributions. The effects of variability reduction are observed and possible direction for future development is discussed.
机译:基础周期和阻尼比是建筑物动力分析中最重要的两个参数。通常通过使用简化模型或通过使用工程判断为这些参数分配恒定值。与这些值相关的可变性经常被忽略。在完成的结构中,这些参数的测量结果可能与设计阶段所假设的结果相匹配,也可能与之不符,并且通常不会完全探索或理解这种差异的影响和含义。为了开发能够可靠地估计实际结构中预期的周期和阻尼值的模型,编译并严格分析了全面的满量程测量数据库。方差分析(ANOVA)将周期数据的层数,阻尼数据的层数和振动级别确定为可能影响每个参数的关键因素。针对不同因素组合开发了估算模型,并通过标准误差衡量了模型性能,并观察到随着其他因素的改善。通过限制模型系数的变化极大地简化了模型,并认为它们可以显着改善周期和阻尼估计方面的最新技术。大量数据可以对每个估计模型中的变异性进行适当而仔细的分析。模型的可变性通过两个函数进行量化:一个标量值表示在同一建筑物上同一横向方向上进行的测量之间的可变性,另一个函数表示在建筑物之间观察到的可变性。提供了表示模型​​可变性的严格形式,并提供了一种更为简单的形式,可以将其纳入标准中。研究了参数变化对地震响应估计的影响。一项以性能为导向的拟议设计程序可以确定达到指定性能水平的周期和阻尼值。对于一般的抗震设计频谱,工程师可以将保守性级别应用于性能级别,或者应用于通过参数分布定义的实际值区域中的周期和阻尼选择。观察到了减少变异性的影响,并讨论了未来发展的可能方向。

著录项

  • 作者

    Fritz, William P.;

  • 作者单位

    The Johns Hopkins University.;

  • 授予单位 The Johns Hopkins University.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 271 p.
  • 总页数 271
  • 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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