校正用于结构位移监测的全球导航卫星系统和加速度计集成系统中的失准误差

IF 4.6 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY
Xuanyu Qu, Xiaoli Ding, You-Lin Xu, Wenkun Yu
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引用次数: 0

摘要

结构健康监测(SHM)系统被广泛用于监测桥梁和高层建筑等大型民用基础设施的动态行为。考虑到全球导航卫星系统在确定实时位移方面的独特能力,基于全球导航卫星系统(GNSS)的技术通常是此类 SHM 系统的关键组成部分。GNSS 通常与加速度计集成,以实现优势互补。然而,由于 GNSS 测量和加速度计存在各种误差源,GNSS 和加速度计融合结果的精度往往无法满足 SHM 的要求。我们建议将多天线 GNSS 和加速度计与无cented 多速率卡尔曼滤波器(UMRKF-MA)相结合,以纠正传感器之间的系统失调误差,从而为大型民用基础设施的监测提供更精确的实时位移测量技术。利用振动台收集的数据集进行的大量实验表明,与现有的一些方法相比,所提出的方法能够将实时位移测量的精确度提高约 40-65%,并可实现 1 毫米级别的位移实时监测。该方法还被用于处理真实世界中一座大跨度桥梁的数据集,当重型车辆在加载测试中通过桥梁时,结果得到了显著改善。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Correction of Misalignment Errors in the Integrated GNSS and Accelerometer System for Structural Displacement Monitoring

Correction of Misalignment Errors in the Integrated GNSS and Accelerometer System for Structural Displacement Monitoring

Structural health monitoring (SHM) systems are widely deployed to monitor the dynamic behaviors of large civil infrastructures such as bridges and tall buildings. Global Navigation Satellite System- (GNSS-) based technologies are often a key component in such an SHM system considering the unique capability of GNSS in determining real-time displacements. GNSS often integrates with an accelerometer to achieve complementary advantages. However, due to the various error sources in GNSS measurements and accelerometer, accuracies of GNSS and accelerometer fusion results often cannot meet the requirements of SHM. We propose to integrate a multi-antenna GNSS and an accelerometer with an unscented multi-rate Kalman filter (UMRKF-MA) to correct the system misalignment errors between the sensors, aiming to produce a much more accurate real-time displacement measurement technology for monitoring large civil infrastructures. Extensive experiments with datasets gathered using a shaking table have indicated that the proposed method was able to improve the accuracy of real-time displacement measurements by up to about 40–65% compared to some existing approaches, and that a 1 mm level of real-time monitoring of displacements could be achieved with the method. The method has also been applied to process a dataset from a real-world long-span bridge when heavy vehicles passed through the bridge in a loading test and significantly improved results were obtained.

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来源期刊
Structural Control & Health Monitoring
Structural Control & Health Monitoring 工程技术-工程:土木
CiteScore
9.50
自引率
13.00%
发文量
234
审稿时长
8 months
期刊介绍: The Journal Structural Control and Health Monitoring encompasses all theoretical and technological aspects of structural control, structural health monitoring theory and smart materials and structures. The journal focuses on aerospace, civil, infrastructure and mechanical engineering applications. Original contributions based on analytical, computational and experimental methods are solicited in three main areas: monitoring, control, and smart materials and structures, covering subjects such as system identification, health monitoring, health diagnostics, multi-functional materials, signal processing, sensor technology, passive, active and semi active control schemes and implementations, shape memory alloys, piezoelectrics and mechatronics. Also of interest are actuator design, dynamic systems, dynamic stability, artificial intelligence tools, data acquisition, wireless communications, measurements, MEMS/NEMS sensors for local damage detection, optical fibre sensors for health monitoring, remote control of monitoring systems, sensor-logger combinations for mobile applications, corrosion sensors, scour indicators and experimental techniques.
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