首页> 外文期刊>Earthquake Engineering & Structural Dynamics >Seismic fragilities of single-column highway bridges with rocking column-footing
【24h】

Seismic fragilities of single-column highway bridges with rocking column-footing

机译:立柱摇摆式单柱公路桥梁的地震脆弱性

获取原文
获取原文并翻译 | 示例

摘要

Rocking isolation has been increasingly studied as a promising design concept to limit the earthquake damage of civil structures. Despite the difficulties and uncertainties of predicting the rocking response under individual earthquake excitations (due to negative rotational stiffness and complex impact energy loss), in a statistical sense, the seismic performance of rocking structures has been shown to be generally consistent with the experimental outcomes. To this end, this study assesses, in a probabilistic manner, the effectiveness of using rocking isolation as a retrofit strategy for single-column concrete box-girder highway bridges in California. Under earthquake excitation, the rocking bridge could experience multi-class responses (eg, full contacted or uplifting foundation) and multi-mode damage (eg, overturning, uplift impact, and column nonlinearity). A multi-step machine learning framework is developed to estimate the damage probability associated with each damage scenario. The framework consists of the dimensionally consistent generalized linear model for regression of seismic demand, the logistic regression for classification of distinct response classes, and the stepwise regression for feature selection of significant ground motion and structural parameters. Fragility curves are derived to predict the response class probabilities of rocking uplift and overturning, and the conditional damage probabilities such as column vibrational damage and rocking uplift impact damage. The fragility estimates of rocking bridges are compared with those for as-built bridges, indicating that rocking isolation is capable of reducing column damage potential. Additionally, there exists an optimal slenderness angle range that enables the studied bridges to experience much lower overturning tendencies and significantly reduced column damage probabilities at the same time.
机译:越来越多地研究了隔震作为一种有希望的设计概念,以限制民用建筑的地震破坏。尽管在单个地震激励下预测摇摆响应存在困难和不确定性(由于负的旋转刚度和复杂的冲击能量损失),但从统计学意义上讲,摇摆结构的地震性能已被证明与实验结果基本一致。为此,本研究以概率方式评估了在加利福尼亚州将摇摆隔离作为单柱混凝土箱梁公路桥梁的改造策略的有效性。在地震激励下,摇摆桥可能会经历多级响应(例如,完全接触或抬升的基础)和多模式破坏(例如,倾覆,抬升冲击和柱非线性)。开发了一个多步骤机器学习框架来估计与每种损坏情况相关的损坏概率。该框架由尺寸一致的广义线性模型(用于地震需求回归),逻辑回归(用于不同响应类别的分类)以及逐步回归(用于重大地面运动和结构参数的特征选择)组成。推导了易碎性曲线,以预测晃动隆起和倾覆的响应类别概率,以及条件破坏概率,例如圆柱振动破坏和晃动隆起冲击破坏。将摇摆桥的易损性估计值与竣工桥的易损性估计值进行了比较,这表明摇摆隔离可以减少潜在的柱损坏。另外,存在一个最佳的细长角度范围,该范围使所研究的桥梁能够同时经历更低的倾覆趋势并同时显着降低柱损坏的可能性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号