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Preliminary Seismic Analysis and Design of Reinforced Concrete Bridge Columns for Curved Bridge Experiments.

机译:曲线桥试验中钢筋混凝土桥柱的初步地震分析与设计。

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摘要

As part of a Federal Highway Administration (FHWA) sponsored research project to study highway system resilience, a 40 percent scale curved steel plate girder bridge is to be constructed and subjected to earthquake simulation at the Large Scale Structures Laboratory on the University of Nevada, Reno (UNR) campus. The 145 foot long bridge model is to have three-spans, supported on two single-column bents with hammer-head pier caps, and have a subtended angle of 104°. The purpose of the shake table testing is to study the seismic system behavior of the bridge as well as additional bridge components including; conventional columns, isolation, ductile-cross frames, abutment behavior, and the seismic behavior of bridges including the effects of live load. Ultimately design recommendations will be developed from this research.;The research presented in this document is the results of preliminary analysis and design of conventional reinforced concrete bridge columns and substructure elements as part of the larger project to examine global seismic behavior of the scaled bridge model. In order to prepare for seismic testing of the scaled bridge model, extensive pre-experimental numerical analysis was performed. Finite element models were developed using SAP2000 and non-linear time-history analysis was performed to investigate the seismic response of the bridge model. Analytical bridge models were analyzed using both 16-inch and 20-inch column diameters and various abutment support conditions. The models were subjected to two levels of horizontal bidirectional earthquake excitation representing a design level earthquake and a large amplitude earthquake intended to cause column failure. Using the results from the analysis, preliminary construction plans were prepared for one set of columns and the adjacent substructure components using the provisions from the AASHTO Guide Specifications for LRFD Seismic Bridge Design. In addition to the investigation into column performance, a parametric study was performed to determine axial response of the bearings at both the abutments and piers when subjected to seismic loading.;The numerical analysis showed that system effects due to superstructure-substructure interaction can cause column flexural response that is typically not observed with stand-alone column tests. The effects of bridge horizontal curvature was shown to have a significant impact on the axial performance of the bearings in which the response was not uniform for all bearing at one support location. As a component of the analysis and design, two strut-and-tie models were developed to provide adequate joint detailing in order to ensure capacity protection of the column-to-bentcap connection under multiple cycles of seismic loading.
机译:作为联邦公路管理局(FHWA)资助的研究项目的一部分,研究公路系统的弹性,将建造一座40%比例的弯曲钢板梁桥,并在内华达大学里诺分校的大型结构实验室进行地震模拟(UNR)校园。 145英尺长的桥梁模型将具有三跨度,用锤头墩盖支撑在两个单柱弯头上,对向角为104°。振动台测试的目的是研究桥梁的地震系统性能以及其他桥梁构件,包括:常规柱,隔离,延性十字框架,桥台行为以及桥梁的地震行为,包括活荷载的影响。最终,将根据该研究结果提出设计建议。本文件中的研究是常规钢筋混凝土桥柱和下部结构元素的初步分析和设计的结果,这是一个较大的项目的一部分,以检查比例尺桥梁模型的整体地震行为。为了准备伸缩桥模型的地震测试,进行了广泛的实验前数值分析。使用SAP2000开发了有限元模型,并进行了非线性时程分析以研究桥梁模型的地震响应。使用16英寸和20英寸圆柱直径以及各种桥台支撑条件对分析桥模型进行了分析。这些模型经受了水平双向地震激励的两个水平,分别代表设计水平的地震和旨在引起柱破坏的大振幅地震。根据分析结果,使用AASHTO LRFD地震桥设计指南规范中的规定,为一组柱子和相邻的子结构组件准备了初步的施工计划。除了对柱的性能进行调查外,还进行了参数研究,以确定承受地震荷载时支座和桥墩处轴承的轴向响应。数值分析表明,由于上部结构与下部结构的相互作用而引起的系统影响会导致柱独立柱测试通常不会观察到弯曲响应。结果表明,桥梁水平曲率的影响对轴承的轴向性能有重大影响,在这种情况下,对于一个支撑位置上的所有轴承,响应都不均匀。作为分析和设计的一部分,开发了两个压杆和拉杆模型以提供足够的接头详图,以确保在多次地震荷载作用下保护柱到弯管连接的能力。

著录项

  • 作者

    Harrison, Nathan W.;

  • 作者单位

    University of Nevada, Reno.;

  • 授予单位 University of Nevada, Reno.;
  • 学科 Engineering Civil.
  • 学位 M.S.
  • 年度 2011
  • 页码 570 p.
  • 总页数 570
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:44:54

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