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Selection and scaling of ground motions for nonlinear response history analysis of buildings in performance-based earthquake engineering.

机译:基于性能的地震工程中建筑物的非线性响应历史分析的地震动的选择和缩放。

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摘要

This dissertation investigates the issue of selecting and scaling ground motions as input excitations for response history analyses of buildings in performance-based earthquake engineering. Many ground motion selection and modification (GMSM) procedures have been developed to select ground motions for a wide variety of objectives. In this research, we focus on the selection and scaling of single, horizontal components of ground motion for estimating seismic demand hazard curves (SDHCs) of multistory frames at a given site.;In Chapter 2, a framework is developed for evaluating GMSM procedures in their ability to provide accurate estimates of the SDHC. The notion of a benchmark SDHC is introduced, enabling biases caused by GMSM procedures to be isolated from other sources of bias. More importantly, the ability to quantify bias facilitates the identification of intensity measures (IMs) that are sufficient. However, this approach is limited by the availability of recorded ground motions and of prediction models for engineering demand parameters (EDPs) of structures.;The framework developed in Chapter 2 is applied to synthetic ground motions in Chapter 3, where biases in estimates of SDHCs caused by GMSM procedures can be estimated for any structural system and any EDP. However, the use of synthetic ground motions gives rise to the issue of developing benchmark-consistent ground motion prediction models. Based on the results from Chapters 2-3, it is hypothesised that the potential bias in any SDHC estimate is caused directly by two important properties of the particular selection of ground motions: (i) hazard consistency, and (ii) IM sufficiency.;A novel ground motion selection procedure, rooted in the theory of Importance Sampling, is developed in Chapter 4 that allows: (i) hazard consistency of the selected motions to be directly enforced for a user-specified collection of IMs, and (ii) SDHCs of a structure to be estimated from a single ensemble of ground motions, with the option of avoiding record scaling altogether. This procedure, together with two other contemporary GMSM procedures -- (i) "exact" Conditional Spectrum and (ii) Generalized Conditional Intensity Measure -- are evaluated in Chapters 5-6 for a variety of structural systems and EDPs at a specified site. In these chapters, the amount of effort involved in implementing these procedures for estimating SDHCs is summarized in a step-by-step form, and the magnitude of biases caused by these procedures are documented.
机译:本文研究了基于性能地震工程中建筑物响应历史分析中选择和缩放地震动作为输入激励的问题。已经开发了许多地面运动选择和修改(GMSM)程序来为各种目标选择地面运动。在这项研究中,我们专注于地面运动的单个水平分量的选择和缩放,以估计给定地点的多层框架的地震需求危险曲线(SDHCs).;在第二章中,开发了一个框架来评估GMSM程序。他们提供SDHC准确估算的能力。引入了基准SDHC的概念,从而可以将GMSM程序导致的偏差与其他偏差源隔离开来。更重要的是,量化偏差的能力有助于确定足够的强度度量(IM)。但是,这种方法受到记录的地面运动和结构的工程需求参数(EDP)预测模型的可用性的限制;;第2章中开发的框架在第3章中应用于合成地面运动,其中SDHC的估算存在偏差对于任何结构系统和任何EDP,都可以估算出GMSM程序造成的损坏。然而,合成地面运动的使用引起了开发基准一致的地面运动预测模型的问题。根据第2-3章的结果,假设在任何SDHC估算中的潜在偏差都是由地面运动的特定选择的两个重要属性直接引起的:(i)危险一致性,以及(ii)IM足够。第4章开发了一种基于重要性采样理论的新颖的地面运动选择程序,该程序允许:(i)对用户指定的IM集合直接实施所选运动的危险一致性,以及(ii)SDHC根据单个地面运动的整体来估计结构的位置,并且可以选择完全避免记录缩放。在第5-6章中,针对指定站点上的各种结构系统和EDP,对该程序以及其他两个现代GMSM程序-(i)“精确”条件谱和(ii)广义条件强度测度)进行了评估。在这些章节中,以逐步的形式总结了实施这些程序估计SDHC所涉及的工作量,并记录了由这些程序引起的偏差的程度。

著录项

  • 作者

    Kwong, Neal Simon.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Civil engineering.;Statistics.;Engineering.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 195 p.
  • 总页数 195
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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