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Nonlinear effects in ground motion simulations: modeling variability, parametric uncertainty and implications in structural performance predictions .

机译:地面运动模拟中的非线性影响:建模变异性,参数不确定性及其对结构性能预测的影响。

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摘要

While site effects are accounted for in most modern U.S. seismic design codes for building structures, there exist no standardized procedures for the computationally efficient integration of nonlinear ground response analyses in broadband ground motion simulations. In turn, the lack of a unified methodology affects the prediction accuracy of site-specific ground motion intensity measures, the evaluation of site amplification factors when broad-band simulations are used for the development of hybrid attenuation relations, and the estimation of inelastic structural performance when strong motion records are used as input in aseismic structural design procedures.;In this study, a set of criteria is established, which quantifies how strong nonlinear effects are anticipated to manifest at a site by investigating the empirical relation between nonlinear soil response, soil properties, and ground motion characteristics. More specifically, the modeling variability and parametric uncertainty of nonlinear soil response predictions are studied, along with the uncertainty propagation of site response analyses to the estimation of inelastic structural performance. Due to the scarcity of design level ground motion recording, the geotechnical information at 24 downhole arrays is used and the profiles are subjected to broadband ground motion synthetics.;For the modeling variability study, the site response models are validated against available downhole array observations. The site and ground motion parameters that govern the intensity of nonlinear effects are next identified, and an empirical relationship is established, which may be used to estimate to a first approximation the error introduced in ground motion predictions if nonlinear effects are not accounted for.;The soil parameter uncertainty in site response predictions is next evaluated as a function of the same measures of soil properties and ground motion characteristics. It is shown that the effects of nonlinear soil property uncertainties on the ground-motion variability strongly depend on the seismic motion intensity, and this dependency is more pronounced for soft soil profiles. By contrast, the effects of velocity profile uncertainties are less intensity dependent and more sensitive to the velocity impedance in the near surface that governs the maximum site amplification.;Finally, a series of bilinear single degree of freedom oscillators are subjected to the synthetic ground motions computed using the alternative soil models, and evaluate the consequent variability in structural response. Results show high bias and uncertainty of the inelastic structural displacement ratio predicted using the linear site response model for periods close to the fundamental period of the soil profile. The amount of bias and the period range where the structural performance uncertainty manifests are shown to be a function of both input motion and site parameters.
机译:尽管在大多数现代美国建筑结构抗震设计规范中都考虑了场地效应,但在宽带地面运动模拟中还没有标准化的程序可以对非线性地面响应分析进行有效的计算集成。反过来,缺乏统一的方法会影响特定地点地面运动强度测度的预测准确性,使用宽带模拟发展混合衰减关系时评估地点放大因子以及评估非弹性结构性能当将强运动记录用作抗震结构设计程序的输入时;在本研究中,建立了一组标准,该标准通过研究非线性土壤响应与土壤之间的经验关系,量化了预计在现场将表现出什么样的强烈非线性效应属性和地震动特性。更具体地说,研究了非线性土壤响应预测的建模变异性和参数不确定性,以及场地响应分析的不确定性传播,以评估非弹性结构性能。由于缺乏设计水平的地面运动记录,因此使用了24个井下阵列的岩土信息,并且对剖面进行了宽带地面运动合成。;对于模型变异性研究,根据可用的井下阵列观测值对现场响应模型进行了验证。接下来,确定控制非线性效应强度的位置和地面运动参数,并建立经验关系,如果不考虑非线性效应,则可以将其用于近似估算地面运动预测中引入的误差。接下来,根据土壤特性和地面运动特征的相同度量来评估场地响应预测中的土壤参数不确定性。结果表明,非线性土属性不确定性对地震动变化的影响很大程度上取决于地震运动强度,这种依赖性在软土剖面中更为明显。相比之下,速度分布不确定性的影响对强度的依赖性较小,并且对控制最大位点放大的近表面速度阻抗更敏感。最后,一系列双线性单自由度振荡器经历了合成地震动使用替代土壤模型进行计算,并评估结构响应的结果变异性。结果表明,在接近土壤剖面基本周期的时期内,使用线性场地响应模型预测的非弹性结构位移比具有很高的偏差和不确定性。偏置量和结构性能不确定性所表现出的周期范围显示为输入运动和场地参数的函数。

著录项

  • 作者

    Li, Wei.;

  • 作者单位

    Georgia Institute of Technology.;

  • 授予单位 Georgia Institute of Technology.;
  • 学科 Geophysics.;Engineering Civil.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 139 p.
  • 总页数 139
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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