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Design and Implementation of a Structural Health Monitoring System for a Large Sea-Crossing Project with Bridges and Tunnel

机译:用桥梁和隧道进行大型海关工程结构健康监测系统的设计与实现

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摘要

Even though large-scale projects, such as sea-crossing bridges and tunnels, have complex structures and service conditions, the structural health monitoring (SHM) system can comprehensively monitor the stress situation and damage evolution law in the entire construction and service process of such structures. Based on the background of the Hong Kong–Zhuhai–Macao Bridge, this study systematically introduces the overall goal and framework of the SHM system, monitoring content, and sensor information. Moreover, the structural health condition evaluation methods and data analysis methods are presented in detail. Then, on the basis of a multilayer data storage system, a fault-tolerant data center platform design, an open integrated supervision platform design, and other measures, a set of reliable and advanced large-scale software systems are built to achieve the SHM system for the Hong Kong–Zhuhai–Macao Bridge. Finally, the wind characteristics around the Hong Kong–Zhuhai–Macao Bridge and some of the monitored structural responses from the Super Typhoon Mangkhut in 2018 are shown, which verified that the SHM system can accurately and reliably monitor and feedback the environmental load and structural response of the principal parts of the Hong Kong–Zhuhai–Macao Bridge under complicated service environment.
机译:尽管大型项目,如海上桥梁和隧道,具有复杂的结构和服务条件,但结构健康监测(SHM)系统可以全面监测在整个建筑和服务过程中的压力情况和损害进化法结构。基于港珠 - 澳门大桥的背景,本研究系统地介绍了SHM系统,监测内容和传感器信息的整体目标和框架。此外,详细介绍了结构健康状况评估方法和数据分析方法。然后,在多层数据存储系统的基础上,容错数据中心平台设计,开放的集成监控平台设计等措施,建立了一套可靠和先进的大型软件系统来实现SHM系统为香港 - 珠海 - 澳门大桥。最后,显示了2018年港珠澳桥及超级台风曼戈特的一些受监控结构反应的风特点,这证实了SHM系统可以准确可靠地监测和反馈环境负荷和结构反应复杂服务环境下的港珠 - 澳桥主要部分。

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