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Seismic behavior of reinforced concrete bridges with skew-angled seat-type abutments

机译:斜角座式基台钢筋混凝土桥梁的抗震性能

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摘要

This study focuses on identifying trends in seismic behavior of reinforced concrete bridges with seat-type abutments under earthquake loading, especially with respect to abutment skew angle. To that end, a detailed approach for modeling skew-angled seat-type abutments is proposed; and a comprehensive variety of bridge configurations are considered. Specifically, three short bridges located in California are selected as seed bridges, from which different models are spawned by varying key bridge structural parameters such as column-bent height, symmetry of span arrangement, and abutment skew angle. Through extensive nonlinear time-history analyses conducted using three suites of ground motions, it is demonstrated that demand parameters for skew-abutment bridges, such as deck rotation and column drift ratio, are higher than those for straight bridges. By investigating the sensitivity of various response parameters to variations in bridge geometry and ground motion characteristics, it is shown that bridges with larger abutment skew angles bear a higher probability of collapse due to excessive rotations, and that the shear keys can play a major role in reducing deck rotations and thus the probability of collapse.
机译:这项研究的重点是确定地震作用下带座式基台的钢筋混凝土桥梁的抗震性能趋势,特别是基台偏斜角。为此,提出了一种用于建模斜角座椅型基台的详细方法。并且考虑了各种桥配置。具体而言,选择了位于加利福尼亚的三座短桥作为种子桥,通过改变关键的桥梁结构参数(例如,弯曲的柱高,跨距的对称性和桥基偏斜角)来生成不同的模型。通过使用三组地面运动进行的广泛的非线性时程分析,表明斜基桥的需求参数(如桥面旋转和立柱漂移比)要比直桥的参数高。通过研究各种响应参数对桥梁几何形状和地面运动特征变化的敏感性,可以看出具有较大基台偏斜角的桥梁因过度旋转而倒塌的可能性更高,并且剪力键可以在其中发挥主要作用。减少甲板旋转,从而减少倒塌的可能性。

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