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Preliminary Experimental Study on the Effect of Live Load on the Seismic Response of Highway Bridges.

机译:活荷载对公路桥梁地震响应影响的初步实验研究。

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The objective of this research was to conduct a preliminary study of the effect of live load on the seismic response of highway bridges using a large-scale model of a 3-span bridge supported on multiple shake tables. This objective was achieved in two stages. The first included selecting and characterizing a test vehicle, as well as developing a numerical model of the test vehicle to be used in future bridge modeling. The second stage involved the development of a test plan for placement and instrumentation of a set of trucks on a large-scale bridge model, conducting shake table experiments of the vehicle-bridge system, and making preliminary observations of the effects of live load on the behavior of the model bridge.;A Ford F250 truck was selected to be the test vehicle for these experiments due to its availability and high weight-to-length ratio. A set of system identification experiments was performed on a single test vehicle using the 6-degree-of-freedom shake table in the Large Scale Structures Lab at the University of Nevada, Reno. The system identification included a series of snap test motions in the vertical and lateral directions of the truck, as well as earthquake motions using the Sylmar record from the 1994 Northridge Earthquake. The truck was tested both with and without wheels, as well as empty and loaded (with sand in the truck bed).;Both a single and two-axle model were developed in order to characterize the suspension system of the truck using MATLAB and SAP2000, respectively. The single-axle model was used to determine the vertical properties (stiffness and damping) of the suspension system and tires while the double-axle model was used to characterize the lateral properties of the suspension system and tires of the vehicle. The final suspension system and tire properties were verified against the experimental earthquake acceleration and displacement data using the two-axle model. Since the three main modes of vibration of the vehicle model mimicked realistic movements of the truck, and the model demonstrated displacements and accelerations of the same order of magnitude as the experimental data, the model was determined to be suitable for use in future bridge-vehicle interaction modeling.;For the bridge experiment, six of the test trucks were placed on a 2/5 th scale model bridge that was part of a larger FHWA study on the resilience of curved highway bridges. The data from the experiment with the vehicle loading was compared with previous data from experiments without trucks on the bridge. Results from the bridge with the vehicle loading showed a decrease in lateral displacements, accelerations, and visible column damage (column spalling and exposed reinforcement) when compared against the bridge without live loading. Adverse effects found in this study were generally within 10% of the no-live load case. Until further studies are complete, it appears generally conservative to ignore the dynamic effect of live load on the seismic response of ordinary bridges.
机译:这项研究的目的是使用支撑在多个振动台上的3跨桥的大型模型,对活荷载对公路桥梁地震响应的影响进行初步研究。该目标分两个阶段实现。首先包括选择和表征测试车辆,以及开发将在未来的桥梁建模中使用的测试车辆的数值模型。第二阶段包括制定测试计划,以在大型桥梁模型上放置和安装一组卡车,对车桥系统进行振动台实验,并对活载对车辆的影响进行初步观察。模型桥的性能。福特F250卡车因其可用性和高长宽比而被选择为这些实验的测试车辆。在内华达大学里诺分校的大型结构实验室中,使用6自由度振动台在单个测试车辆上进行了一组系统识别实验。系统识别包括卡车垂直和横向的一系列快速测试运动,以及使用1994年Northridge地震的Sylmar记录进行的地震运动。对该卡车进行了带轮和不带轮的测试,以及空车和装载车的测试(卡车底座上有沙子)。;开发了单轴和两轴模型,以使用MATLAB和SAP2000表征卡车的悬架系统。 , 分别。单轴模型用于确定悬架系统和轮胎的垂直特性(刚度和阻尼),而双轴模型用于确定悬架系统和车辆轮胎的横向特性。使用两轴模型,根据实验地震加速度和位移数据验证了最终的悬架系统和轮胎性能。由于车辆模型的三种主要振动模式模仿了卡车的实际运动,并且该模型显示出与实验数据相同数量级的位移和加速度,因此该模型被确定适合于未来的桥梁车辆。对于桥梁实验,将六辆测试卡车放在2/5比例模型桥上,该模型是FHWA关于弯曲公路桥梁弹性的较大研究的一部分。将带有车辆负载的实验数据与之前没有卡车在桥上的实验数据进行比较。与没有载重的桥梁相比,承受车辆荷载的桥梁的结果表明,侧向位移,加速度和可见的立柱损坏(柱散裂和裸露的钢筋)有所减少。在这项研究中发现的不良反应通常在无负荷情况下的10%以内。在完成进一步研究之前,通常忽略保守荷载对普通桥梁地震响应的动力影响通常是保守的。

著录项

  • 作者

    Sanford, Danielle M.;

  • 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 2013
  • 页码 460 p.
  • 总页数 460
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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