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Precast Column-Footing Connections for Accelerated Bridge Construction in Seismic Zones.

机译:用于地震区中加速桥梁施工的预制柱脚连接。

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摘要

Accelerated bridge construction (ABC) has become increasingly popular in the eyes of state and federal transportation agencies because of its numerous advantages. To effectively execute ABC projects, designers utilize prefabricated structural elements that can be quickly assembled to form functional structural systems. It is advantageous to the bridge designer if these systems emulate the design and behavior of conventional cast-in-place systems. If this can be achieved, typical analysis and design procedures can be used. The difficulty with developing emulative systems is usually encountered in the design and detailing of connections. Substructure connections are particularly critical in seismic zones because they must dissipate energy through significant cyclic nonlinear deformations while maintaining their capacity and the integrity of the structural system.;The research presented in this dissertation focused on developing and evaluating earthquake resistant connections for use in accelerated bridge construction. The project was comprised of three main components; testing of five large-scale precast reinforced concrete column models, a series of individual component tests on mechanical reinforcing bar splices, and extensive analytical studies.;Column studies included the design and construction of five half-scale bridge column models that were tested under reversed slow cyclic loading. Four new moment connections for precast column-footing joints were developed each utilizing mechanical reinforcing bar splices to create connectivity with reinforcing bars in a cast-in-place footing. Two different mechanical splices were studied: an upset headed coupler and grout-filled sleeve coupler. Along with the splice type, the location of splices within the plastic hinge zone was also a test variable. All column models were designed to emulate conventional cast-in-place construction thus were compared to a conventional cast-in-place test model. Results indicate that the new connections are promising and duplicate the behavior of conventional cast-in-place construction with respect to key response parameters. However, it was discovered that the plastic hinge mechanism can be significantly affected by the presence of splices and result in reduced displacement ductility capacity.;In order to better understand the behavior of mechanical splices, a series of uniaxial tests were completed on mechanically-spliced reinforcing bars under different loading configurations: monotonic static tension, dynamic tension, and slow cyclic loading. Results from this portion of the project also aided the development of analytical models for the half- and prototype-scale column models. Results indicated that, regardless of loading configuration, specimens failed by bar rupture without damage to the splice itself.;The analytical studies conducted using OpenSEES included development of microscope models for the two mechanical reinforcing bars splices and full analytical models of the five half-scale columns, which were both compared with respective experimental results to validate the modeling procedures and assumptions. Prototype-scale analytical models were also developed to conduct parametric studies investigating the sensitivity of the newly developed ABC connections to changes in design details.;In general, the results of this study indicate that the newly develop ABC connections, which utilize mechanically-spliced connections, are suitable for moderate and high seismic regions. However, emulative design approaches are not suitable for all of the connections develop. A set of design recommendations are provided to guide bridge engineers in the analysis and design of these new connections.
机译:加速桥梁建设(ABC)由于其众多优势而在州和联邦运输机构的眼中变得越来越受欢迎。为了有效执行ABC项目,设计人员利用预制的结构元素,这些元素可以快速组装以形成功能性结构系统。如果这些系统模仿传统的现浇系统的设计和性能,则对桥梁设计者来说是有利的。如果可以实现,则可以使用典型的分析和设计程序。开发仿真系统的困难通常是在连接的设计和细节设计中遇到的。子结构连接在地震带中尤为关键,因为它们必须通过显着的周期性非线性变形耗散能量,同时保持其能力和结构系统的完整性。本论文的研究重点在于开发和评估用于加速桥的抗震连接施工。该项目包括三个主要部分;五个大型预制钢筋混凝土柱模型的测试,机械钢筋接头的一系列单个组件测试以及广泛的分析研究。柱研究包括五个结构的半比例桥梁模型的设计和建造,这些模型在反向条件下进行了测试缓慢的循环加载。开发了四个新的预制柱脚连接节点的弯矩连接,每个连接都使用机械钢筋接头,以与现浇基础中的钢筋建立连接。研究了两种不同的机械接头:an头连接器和灌浆套筒连接器。除接头类型外,塑料铰链区内的接头位置也是一个测试变量。所有色谱柱模型均设计为模仿常规的现浇结构,因此与常规的现浇试验模型进行了比较。结果表明,新的连接是有前途的,并且在关键响应参数方面,可以复制常规的现浇结构。但是,发现塑料铰链机构会受到接头的影响,并导致位移延展性降低。为了更好地了解机械接头的性能,对机械接头进行了一系列单轴测试钢筋在不同的载荷配置下:单调的静态张力,动态张力和缓慢的循环载荷。该项目这一部分的结果还有助于开发半规模和原型规模的色谱柱模型的分析模型。结果表明,无论加载配置如何,试样均会因钢筋断裂而断裂而不会损坏接头本身。使用OpenSEES进行的分析研究包括开发了两个机械钢筋接头的显微镜模型以及五个半比例的完整分析模型分别与各自的实验结果进行比较以验证建模程序和假设。还开发了原型规模的分析模型,以进行参数研究,研究新开发的ABC连接对设计细节变化的敏感性。总体而言,这项研究的结果表明,新开发的ABC连接是利用机械拼接连接,适用于中高地震地区。但是,累积性设计方法不适用于所有开发的连接。提供了一组设计建议,以指导桥梁工程师进行这些新连接的分析和设计。

著录项

  • 作者

    Haber, Zachary B.;

  • 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 2013
  • 页码 660 p.
  • 总页数 660
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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