首页> 外文期刊>Mechanical systems and signal processing >Experimental analysis of vehicle-bridge interaction using a wireless monitoring system and a two-stage system identification technique
【24h】

Experimental analysis of vehicle-bridge interaction using a wireless monitoring system and a two-stage system identification technique

机译:使用无线监控系统和两阶段系统识别技术进行车桥相互作用的实验分析

获取原文
获取原文并翻译 | 示例

摘要

Deterioration of bridges under repeated traffic loading has called attention to the need for improvements in the understanding of vehicle-bridge interaction. While analytical and numerical models have been previously explored to describe the interaction that exists between a sprung mass (i.e., a moving vehicle) and an elastic beam (i.e., bridge), comparatively less research has been focused on the experimental observation of vehicle-bridge interaction. A wireless monitoring system with wireless sensors installed on both the bridge and moving vehicle is proposed to record the dynamic interaction between the bridge and vehicle. Time-synchronized vehicle-bridge response data is used within a two-stage system identification methodology. In the first stage, the free-vibration response of the bridge is used to identify the dynamic characteristics of the bridge. In the second stage, the vehicle-bridge response data is used to identify the time varying load imposed on the bridge from the vehicle. To test the proposed monitoring and system identification strategy, the 180 m long Yeondae Bridge (Icheon, Korea) was selected. A dense network of wireless sensors was installed on the bridge while wireless sensors were installed on a multi-axle truck. The truck was driven across the bridge at constant velocity with bridge and vehicle responses measured. Excellent agreement between the measured Yeondae Bridge response and that predicted by an estimated vehicle-bridge interaction model validates the proposed strategy.
机译:在反复的交通负荷下桥梁的恶化已经引起人们对改善对车桥相互作用的理解的注意。虽然先前已经探索了分析和数值模型来描述弹簧支撑的质量(即运动的车辆)和弹性梁(即桥梁)之间存在的相互作用,但是相对较少的研究集中在车桥的实验观察上相互作用。提出了一种在桥梁和行驶中的车辆上均装有无线传感器的无线监控系统,以记录桥梁和行驶中的车辆之间的动态相互作用。在两阶段系统识别方法中使用了时间同步的车桥响应数据。在第一阶段,桥梁的自由振动响应用于识别桥梁的动态特性。在第二阶段,车辆桥梁响应数据用于识别车辆施加在桥梁上的时变负载。为了测试建议的监视和系统识别策略,选择了180 m长的延田大桥(韩国利川)。在桥上安装了密集的无线传感器网络,而在多轴卡车上安装了无线传感器。卡车以恒定的速度驶过桥梁,并测量了桥梁和车辆的响应。测得的Yeondae桥响应与估计的车桥相互作用模型所预测的一致,验证了所提出的策略。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号