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Large-scale experimental and analytical seismic studies of a two-span reinforced concrete bridge system.

机译:两跨钢筋混凝土桥梁系统的大规模实验和分析地震研究。

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摘要

A quarter-scale, 67 ft (20.5 m) long asymmetric reinforced concrete bridge model with two-spans supported on three, two-column piers was tested using the shake table system at the University of Nevada Reno. In addition, extensive analytical studies were conducted. The shake table testing was part of a multi-university research project utilizing the Network for Earthquake Engineering Simulation (NEES) to investigate the effects of soil foundation structure interaction. The shake table testing objective was to study the response of a reinforced concrete bridge model subjected to mostly transverse earthquake excitations. This included the effects of in-plane rotation irregularities on distribution of forces among different piers and the interaction of different components of the bridge.; Upon completion of testing, in depth analytical modeling was conducted to evaluate the accuracy of conventional methods in reproducing the bridge model response and to develop a model for further study. Three aspects of bridge system response were studied utilizing the analytical model. (1) Performance of the bridge compared to the design performance objectives. (2) The effect of differences between the target and achieved shake table motions on the progression of damage in the bridge. (3) Investigation of the system effect, comparing the system and response of individual bents as well as the response of several other bridge models.; Contemporary analytical methods were accurate in determining the response of the flexurally dominated system up to bent failure. The NCHRP 12-49 design methodology was shown to satisfy earthquake performance requirements. Incoherency of achieved table motions did not affect failure progression of the bridge; however, it was affected by acceleration inconsistencies.; The introduction of higher modes and interaction among the bents (system effect) changed the amount of damage the bents underwent compared to the damage they would have experienced had they been individually tested. A simple irregularity index was found to be a good indicator to identify whether the system will have an effect on the bents. The failure progression of the bridge model and the analytical comparisons suggested that the reserve capacity from varied column heights could provide a beneficial substructure redundancy.
机译:使用内华达州里诺大学的振动台系统对四分之一比例尺,长67英尺(20.5 m)的不对称钢筋混凝土桥梁模型进行了测试,该桥梁的两跨跨在三个两列墩上。另外,进行了广泛的分析研究。振动台测试是一个多大学研究项目的一部分,该项目利用地震工程仿真网络(NEES)来研究土壤基础结构相互作用的影响。振动台测试的目的是研究钢筋混凝土桥梁模型在大多数横向地震激励下的响应。这包括平面内旋转不规则对不同墩之间力分布以及桥梁不同组成部分相互作用的影响。测试完成后,进行了深入的分析建模,以评估常规方法在重现桥梁模型响应中的准确性,并开发模型以供进一步研究。利用解析模型研究了桥梁系统响应的三个方面。 (1)与设计性能目标相比的桥梁性能。 (2)目标和已实现的振动台运动之间的差异对桥梁损伤进程的影响。 (3)研究系统效果,比较系统和单个弯头的响应以及其他几种桥梁模型的响应;当代的分析方法可以准确地确定挠曲支配系统对弯曲破坏的响应。 NCHRP 12-49设计方法论证明可以满足地震性能要求。台面运动的不连贯性不影响桥梁的破坏进程;但是,它受到加速度不一致的影响。更高的模式的引入以及弯头之间的相互作用(系统效应)改变了弯头遭受的损坏程度,与之相比,如果对其进行单独测试,则可能遭受的伤害更大。发现简单的不规则指数是确定系统是否会对弯头产生影响的良好指标。桥梁模型的破坏进程和分析比较表明,不同柱高的储备能力可以提供有益的下部结构冗余。

著录项

  • 作者

    Johnson, Nathan.;

  • 作者单位

    University of Nevada, Reno.;

  • 授予单位 University of Nevada, Reno.;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 850 p.
  • 总页数 850
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 建筑科学;
  • 关键词

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