Optical-Inertial System for Railway Track Diagnostics

被引:0
|
作者
Bokhman, E. D. [2 ]
Boronachin, A. M. [2 ]
Filatov, Yu. V. [2 ]
Larionov, D. Yu. [2 ]
Podgornaya, L. N. [2 ]
Shalymov, R. V. [2 ]
Zuzev, G. N. [1 ]
机构
[1] ZG Opt SA, CH-2024 St Aubin, Switzerland
[2] St Petersburg State Electrotech Univ, Dept Laser Measurement & Nav Syst LINS, Pr Popova Str 5, St Petersburg 197376, Russia
关键词
D O I
暂无
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
The paper presents the results of development of the Optical-Inertial System for Railway Track Diagnostics. It is demonstrated that in order to implement the solution at a speed of up to 430 kmph (used for example in South Korean high-speed train HEMU-430X, standing for High-Speed Electric Multiple Unit 430 km/h experimental) while satisfying the accuracy of 0.1 ... 0.5 mm during measurement of longitudinal level, cross level, twist, curvature, rail profile, etc., it is needed to combine the optical scanners of the inner profile of the rail line with the strapdown inertial navigation system (SINS) in a single block. Supplying of odometer and Global navigation satellite system receiver (GNSS) into the system structure allows to determine measurement point position. Thanks to our a priori knowledge of the semipermanent nature of the railway track, and also to the fusion of the odometer data and satellite navigation system reception equipment data, it is possible to use fiber-optic gyros as the sensitive units of the SINS (both open-loop and closed-loop configurations of FOG can be used). The distinctive feature of the system's algorithm is that it solves both the navigation/orientation task (i.e. it fuses odometer data, satellite navigation system data and inertial navigation system data), and the task of measuring the inner surface profile of the rail line. The use of a sole odometer to localize the found rail flaws does not provide satisfactory results because of its errors. Integration of the odometer, SINS and GNSS receiver data offers highly accurate referencing of diagnostic results to the traversed track coordinate. Odometer readings are updated using the navigation system data. The system provides measuring of the track geometry and accurate localization of the measurement point using the geographical coordinates (latitude and longitude) and orientation parameters (roll, pitch and course angle). The possibility of using SINS based on fiber-optic gyros (FOG) for railway applications is considered in the article. Some practical results are given.
引用
收藏
页数:17
相关论文
共 50 条
  • [21] Optical Profilometers for Rail Track Diagnostics
    Boronahin, A. M.
    Kukaev, A. S.
    Larionov, D. Yu.
    Podgornaya, L. N.
    Shalymov, R. V.
    Bokhman, E. D.
    PROCEEDINGS OF THE 2016 IEEE NORTH WEST RUSSIA SECTION YOUNG RESEARCHERS IN ELECTRICAL AND ELECTRONIC ENGINEERING CONFERENCE (ELCONRUSNW), 2016, : 404 - 407
  • [22] Identification of railway track quality and safety through the dynamic inertial response of railway carbody and truck
    Barbosa, Roberto Spinola
    INTERNATIONAL JOURNAL OF HEAVY VEHICLE SYSTEMS, 2021, 28 (04) : 542 - 562
  • [23] Magnetically Anchored Pan-Tilt Stereoscopic Robot with Optical-Inertial Stabilization for Minimally Invasive Surgery
    Karimi, Mojtaba
    Ghidary, Saeed Shiry
    Shekhar, Raj
    Kane, Timothy D.
    Monfaredi, Reza
    MEDICAL IMAGING 2019: IMAGE-GUIDED PROCEDURES, ROBOTIC INTERVENTIONS, AND MODELING, 2019, 10951
  • [24] Measurement and Analysis of Train Motion and Railway Track Characteristics with Inertial Sensors
    Heirich, Oliver
    Lehner, Andreas
    Robertson, Patrick
    Strang, Thomas
    2011 14TH INTERNATIONAL IEEE CONFERENCE ON INTELLIGENT TRANSPORTATION SYSTEMS (ITSC), 2011, : 1995 - 2000
  • [25] System dynamics of railway vehicles and track
    K. Popp
    I. Kaiser
    H. Kruse
    Archive of Applied Mechanics, 2003, 72 : 949 - 961
  • [26] Railway track dynamical measurement system
    Jin, BQ
    Yang, TM
    Xiong, SB
    ISTM/2005: 6th International Symposium on Test and Measurement, Vols 1-9, Conference Proceedings, 2005, : 7549 - 7552
  • [27] DEVELOPMENT OF A PAVED RAILWAY TRACK SYSTEM
    LUCAS, JC
    DIXON, JF
    CONCRETE, 1970, 4 (05): : 201 - &
  • [28] System dynamics of railway vehicles and track
    Popp, K
    Kaiser, I
    Kruse, H
    ARCHIVE OF APPLIED MECHANICS, 2003, 72 (11-12) : 949 - 961
  • [29] Determination of railway track longitudinal profile using measured inertial response of an in-service railway vehicle
    OBrien, Eugene J.
    Quirke, Paraic
    Bowe, Cathal
    Cantero, Daniel
    STRUCTURAL HEALTH MONITORING-AN INTERNATIONAL JOURNAL, 2018, 17 (06): : 1425 - 1440
  • [30] Autonomous track geometry diagnostics system
    Madejski, J
    JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2004, 157 : 194 - 202