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Application of Compact, Geometrically Complex Shape Memory Alloy Devices for Seismic Enhancement of Highway Bridge Expansion Joints.

机译:紧凑,几何形状复杂的形状记忆合金装置在公路桥梁伸缩缝抗震加固中的应用。

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摘要

Highway bridges are an important part of transportation networks. They provide connectivity across waterways, ravines and other roadways, reducing commuting times and facilitating social community. The disruption of their effective operation caused by earthquake damage has lasting effects based on repair costs, road closure times, traffic rerouting causing extended commute times and additional CO2 emissions, and the potential prevention of emergency responders being able to reach affected regions.;Bridge expansion joints have historically been recognized as the most vulnerable component in the bridge system during these seismic events, causing dramatic disruption to bridge functionality because of their location in bridges (points of discontinuity in deck systems). Expansion joint systems are placed in these locations of discontinuity and accommodate bridge movements from thermal effects while facilitating safe driving surfaces across large gaps in the roadway. Commonly installed systems are not designed to survive seismic events, instead failure is assumed and replacement necessary to return the bridge to its functional state. When damaged, the large gaps they span can be un-crossable without external intervention, resulting in non-functioning bridges even when the structural system remains sound. Expensive and complex expansion systems exist, which prevent seismic damage, however they are used mostly in highly seismic regions and limitedly elsewhere.;This dissertation provides an expansion joint design that is economical and superior in seismic performance to the commonly installed service level expansion joints so that more bridges in moderate seismic regions can be equipped with expansion systems able to accommodate large longitudinal displacement demands from earthquakes. The use of innovative shape memory alloy (SMA) springs enables a single support bar modular bridge expansion joint (one type of large capacity expansion joint) to accommodate seismic level longitudinal displacements while maintaining existing performance behavior for service level thermal expansion demands. Through limited alteration of the existing configuration, costs are minimized. The resulting design is experimentally and analytically shown to be superior in performance and able to prevent expansion joint system failure during dynamic loading. The use of fragility curves, which are probabilistic statements of demand exceeding capacity, offers a means of measuring performance over a range of earthquake intensities. Convolution with seismic hazard curves for some moderate seismic zones in the US over a range of time intervals provide information on lifetime seismic risk, valuable information for a cost benefit analysis that concludes investment in SMA springs for enhancement of modular bridge expansion joints is worthwhile for the cost reduction they offer over the life of the bridge.
机译:公路桥梁是交通网络的重要组成部分。它们提供了跨水路,沟壑和其他道路的连通性,减少了通勤时间并促进了社会社区。由地震破坏造成的有效运行中断具有持久影响,其基础是维修成本,道路封闭时间,交通路线变更导致通勤时间延长和额外的CO2排放,并有可能阻止应急人员到达受影响地区。在这些地震事件中,关节一直被认为是桥梁系统中最脆弱的部分,由于它们在桥梁中的位置(甲板系统中的不连续点),导致桥梁功能的急剧破坏。伸缩缝系统放置在这些不连续的位置,可适应桥梁因热效应而产生的运动,同时还可以在行车道的大间隙中提供安全的行驶表面。普通安装的系统并非旨在承受地震事件,而是假定会发生故障,需要进行更换才能使桥梁恢复其功能状态。当损坏时,它们之间跨越的大间隙在没有外部干预的情况下是无法跨越的,即使结构系统保持良好状态,桥梁也无法正常工作。存在昂贵且复杂的膨胀系统,可以防止地震破坏,但是它们通常用于高地震区域,而在其他地方却很少使用。本论文提供了一种膨胀接头设计,其抗震性能比通常安装的服务水平膨胀接头优越,因此可以在中等地震区域的更多桥梁上配备扩展系统,以适应地震引起的大的纵向位移需求。创新的形状记忆合金(SMA)弹簧的使用使单个支撑杆模块化桥式伸缩缝(一种大容量伸缩缝)能够适应地震级的纵向位移,同时保持现有的性能水平,以满足服务级别的热膨胀需求。通过对现有配置的有限更改,可以将成本降至最低。实验和分析表明,所得的设计具有卓越的性能,并能够防止动态加载期间伸缩缝系统发生故障。脆性曲线的使用是需求超出容量的概率陈述,它提供了一种在一系列地震烈度范围内测量性能的方法。在一定的时间间隔内,对美国某些中等地震带的地震危险曲线进行卷积,可提供有关终身地震风险的信息,对于成本效益分析而言,有价值的信息可得出结论,即对SMA弹簧进行投资以增强模块化桥梁伸缩缝是值得的。他们在桥梁的整个生命周期内降低了成本。

著录项

  • 作者

    McCarthy, Emily Ruth.;

  • 作者单位

    Rice University.;

  • 授予单位 Rice University.;
  • 学科 Civil engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 265 p.
  • 总页数 265
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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