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Effects of seismic isolation on the seismic response of a California high-speed rail prototype bridge with soil-structure and track-structure interactions

机译:地震隔离对加利福尼亚高铁原型桥在土-结构和轨道-结构相互作用下的地震响应的影响

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With the launch of the high-speed train project in California, the seismic risk is a crucial concern to the stakeholders. To investigate the seismic behavior of future California High-Speed Rail (CHSR) bridge structures, a 3D nonlinear finite-element model of a CHSR prototype bridge is developed. Soil-structure and track-structure interactions are accounted for in this comprehensive numerical model used to simulate the seismic response of the bridge and track system. This paper focuses on examining potential benefits and possible drawbacks of the a priori promising application of seismic isolation in CHSR bridges. Nonlinear time history analyses are performed for this prototype bridge subjected to two bidirectional horizontal historical earthquake ground motions each scaled to two different seismic hazard levels. The effect of seismic isolation on the seismic performance of the bridge is investigated through a detailed comparison of the seismic response of the bridge with and without seismic isolation. It is found that seismic isolation significantly reduces the deck acceleration and the force demand in the bridge substructure (i.e., piers and foundations), especially for high-intensity earthquakes. However, seismic isolation increases the deck displacement (relative to the pile cap) and the stresses in the rails. These findings imply that seismic isolation can be promisingly applied to CHSR bridges with due consideration of balancing its beneficial and detrimental effects through using appropriate isolators design. The optimum seismic isolator properties can be sought by solving a performance-based optimum seismic design problem using the nonlinear finite-element model presented herein. Copyright (c) 2016 John Wiley & Sons, Ltd.
机译:随着加利福尼亚州高速火车项目的启动,地震风险已成为利益相关者关注的关键问题。为了研究未来的加利福尼亚高铁(CHSR)桥梁结构的抗震性能,开发了CHSR原型桥梁的3D非线性有限元模型。在这种用于模拟桥梁和轨道系统地震响应的综合数值模型中,考虑了土壤-结构和轨道-结构的相互作用。本文重点研究了地震隔离在CHSR桥梁中的先验应用的潜在好处和潜在弊端。对于此原型桥梁,进行了两次双向水平历史地震地震动,分别进行了非线性时程分析,每种地震地标都缩放为两种不同的地震危险等级。通过详细比较有无隔震桥梁的地震响应,研究了隔震对桥梁抗震性能的影响。发现地震隔离显着降低了甲板加速度和桥梁子结构(即墩和基础)中的力需求,特别是对于高强度地震。但是,地震隔离会增加甲板位移(相对于桩帽)和铁轨中的应力。这些发现表明,通过适当地考虑通过使用适当的隔离器设计平衡其有益和有害影响,可以将地震隔离有望应用于CHSR桥梁。可以通过使用本文介绍的非线性有限元模型解决基于性能的最佳地震设计问题来寻求最佳地震隔离器性能。版权所有(c)2016 John Wiley&Sons,Ltd.

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