Experiment Evaluation of Rapid Error Compensation for Magnetic Compass in Underwater Vehicle

被引:0
|
作者
Ye, Ping [1 ]
Zhai, Chuanrun [1 ]
Du, Gang [1 ]
Zhan, Xingqun [1 ]
机构
[1] Shanghai Jiao Tong Univ, Inst Aerosp Sci & Technol, Shanghai 200030, Peoples R China
关键词
Magnetic compass; error compensation; soft magnetic interference; hard magnetic interference;
D O I
暂无
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This paper puts emphasis on the following three main areas. First, it highlights the measurement error forms of magnetic compass and analyzes soft magnetic interference and hard magnetic interference which influence the precision of magnetic compass. Second, the paper proposes a rapid error compensation method based on ellipse hypothesis which uses direct least square to estimate the parameters of an ellipse quickly. Third, in this paper land experiment is conducted in order to evaluate the effect of compensation method. The result of experiment verifies that the method is efficient and can be utilized in underwater vehicle's navigation. According to the statistic analysis of compensated heading error, the ranging improves 63 percent on straight route and 82 percent on curve route referring to a higher accuracy GPS attitude determining system.
引用
收藏
页码:4880 / 4884
页数:5
相关论文
共 50 条
  • [21] Enhanced tilt compensation method for biaxial magnetic compass
    Cho, SY
    ELECTRONICS LETTERS, 2005, 41 (24) : 1323 - 1325
  • [22] Compensation of Magnetic Compass Deviation at Single Any Course
    Lushnikov, E. M.
    TRANSNAV-INTERNATIONAL JOURNAL ON MARINE NAVIGATION AND SAFETY OF SEA TRANSPORTATION, 2011, 5 (03) : 303 - 307
  • [23] System Design and Experiment of the Hybrid Underwater Vehicle
    Ai, Xiaojie
    Kang, Song
    Chou, Wusheng
    2018 INTERNATIONAL CONFERENCE ON CONTROL AND ROBOTS (ICCR), 2018, : 68 - 72
  • [24] Error-separation method for the calibration of magnetic compass
    Chu, Zhiwei
    Lin, Xinhua
    Gao, Ke
    Chen, Chilai
    SENSORS AND ACTUATORS A-PHYSICAL, 2016, 250 : 195 - 201
  • [25] Centroid Variability Compensation Control of Underwater Welding Vehicle
    Luo Y.
    Tao J.
    Deng L.
    Deng Z.
    Jiqiren/Robot, 2020, 42 (03): : 289 - 300
  • [26] Parametric error modeling and software error compensation for rapid prototyping
    Tong, K
    Lehtihet, EA
    Joshi, S
    RAPID PROTOTYPING JOURNAL, 2003, 9 (05) : 301 - 313
  • [27] Tilt compensation algorithm for 2-axis magnetic compass
    Cho, SY
    Park, CG
    ELECTRONICS LETTERS, 2003, 39 (22) : 1589 - 1590
  • [28] A methodology for the compensation of compass heading estimation for the effect of magnetic influences
    Ando, B.
    Baglio, S.
    Frisenna, S.
    Lombardo, C. O.
    Marletta, V.
    2016 IEEE INTERNATIONAL INSTRUMENTATION AND MEASUREMENT TECHNOLOGY CONFERENCE PROCEEDINGS, 2016, : 303 - 307
  • [29] Study on magnetic deviation compensation for digital magnetic compass in combined heading system
    Qiu, Dan
    Huang, Shengguo
    Yi Qi Yi Biao Xue Bao/Chinese Journal of Scientific Instrument, 2006, 27 (SUPPL.): : 1369 - 1371
  • [30] Automatic compensation of the deviation of magnetic compass Fluxgate on any heading
    Lushnikov, Evgeniy M.
    SCIENTIFIC JOURNALS OF THE MARITIME UNIVERSITY OF SZCZECIN-ZESZYTY NAUKOWE AKADEMII MORSKIEJ W SZCZECINIE, 2010, 21 (93): : 52 - 56