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Engineering characterization of earthquake ground motions.

机译:地震地震动的工程表征。

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摘要

In recent years, geologic and paleoseismic evidence has raised the awareness about the seismic hazard of the stable continental region of central-eastern U.S. (CEUS). The relevance of this topic increased due to the Nation's renewed interest in the construction of new nuclear power plants in the CEUS and due to the occurrence of the M5.2 earthquake in southern Illinois in 2008. However, few ground motion predictive relations suitable for use in engineering design are available for stable continental regions, due to the paucity of strong ground motion recordings in the region. In this regard, McGuire et al. (2001) generated a database of scaled ground motions for stable continental regions for use in detailed engineering analyses. McGuire et al. developed the motions using a state-of-the-art scaling technique.;Using McGuire et al.'s strong ground motion database, this study has developed empirical ground motion predictive relations for stable continental regions. To develop these relations, an advanced regression technique (i.e., non-linear mixed effects modeling) was used to correlate various ground motion characteristics used in engineering design to earthquake magnitude, site-to-source distance, and local site conditions (i.e., rock vs. soil). Similar predictive relations were developed in this study for active shallow crustal regions (e.g., western U.S.: WUS) using recorded motions, which allowed the ground motion characteristics of the two different tectonic regions to be compared.;The comparison showed that the CEUS motions have distinct characteristics from WUS motions. Firstly, the characteristic period of CEUS motions are systematically shorter than those of WUS motions. However, the strong ground motion duration in CEUS tends to be longer than in WUS. Also, CEUS motions had consistently larger intensities than WUS motions. Finally, the number of equivalent stress cycles (Green, 2001) for CEUS motions is larger and varies more as a function of depth than WUS motions; this trend is consistent with the identified trends in the number of equivalent strain cycles (Green and Lee, 2006).
机译:近年来,地质和古地震证据提高了人们对美国中东部(CEUS)稳定大陆区域地震危险的认识。由于国家重新对在CEUS中兴建新核电厂的兴趣以及2008年在伊利诺伊州南部发生的M5.2地震,该主题的相关性增加了。但是,很少有适合使用的地面运动预测关系由于该地区缺乏强大的地面运动记录,因此可以在稳定的大陆地区进行工程设计。在这方面,McGuire等。 (2001年)生成了稳定大陆区域的按比例缩放地面运动的数据库,用于详细的工程分析。 McGuire等。利用最先进的缩放技术开发了运动。利用McGuire等人的强大地震动数据库,本研究开发了稳定大陆区域的经验地震动预测关系。为了发展这些关系,使用了先进的回归技术(即非线性混合效应建模)来将工程设计中使用的各种地面运动特征与地震震级,站点到源头的距离以及局部站点条件(例如岩石)相关联。与土壤)。在这项研究中,利用记录的运动对活动的浅地壳区域(例如,美国西部:WUS)也建立了类似的预测关系,这使得可以比较两个不同构造区域的地震动特征。 WUS动作的鲜明特征。首先,CEUS运动的特征周期在系统上比WUS运动的特征周期短。但是,CEUS的强地面运动持续时间往往比WUS更长。而且,CEUS运动的强度始终比WUS运动大。最后,CEUS运动的等效应力循环数(Green,2001)比WUS运动更大,并且随深度的变化更大。这种趋势与确定的等效应变循环数趋势一致(Green和Lee,2006)。

著录项

  • 作者

    Lee, Jongwon.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 246 p.
  • 总页数 246
  • 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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