Navigation for Fixed-wing Unmanned Aerial Vehicles in the Presence of GNSS Outages

被引:0
|
作者
Zhao, Wenjie [1 ]
Fang, Zhou [1 ]
Li, Ping [1 ]
机构
[1] Zhejiang Univ, Dept Control Sci & Engn, Hangzhou 310003, Zhejiang, Peoples R China
关键词
fixed-wing unmanned aerial vehicle; INS; GNSS outages; motion planning; motion acceleration compensation; extended Kalman filters; GPS OUTAGES;
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 accuracy of the most commonly used integrated navigation system of inertial navigation system (INS) and global navigation satellite system (GNSS) is greatly influenced by the quality of satellite signals. Based on the most commonly used navigation system that is equipped with barometer and airspeedometer, a new navigation algorithm is proposed for fixed-wing unmanned aerial vehicles (UAVs) to bridge GNSS outages. We estimate the constant component of wind and subtract it from the airspeed to obtain the ground velocity in the presence of GNSS outages. Then, a centripetal force model is introduced to estimate the motion acceleration. Compensated by this acceleration, the gravity vector can be extracted from the accelerometer measurement. Finally, an extended Kalman filter (EKF) is used to integrate the reconstructed system. The presented algorithm is implemented and the hardware-in-loop simulation results illustrate that the new method significantly improves the accuracy for dynamic navigation relative to INS-only solutions during GNSS outages.
引用
收藏
页数:5
相关论文
共 50 条
  • [1] Bridging GPS Outages for Fixed-wing Unmanned Aerial Vehicles
    Zhao, Wenjie
    Fang, Zhou
    Li, Ping
    [J]. JOURNAL OF NAVIGATION, 2015, 68 (02): : 308 - 326
  • [2] On the Coordination of Constrained Fixed-Wing Unmanned Aerial Vehicles
    Jesus, Tales Argolo
    de Araujo Pimenta, Luciano Cunha
    Borges Torres, Leonardo Antonio
    Andrade Marcal Mendes, Eduardo Mazoni
    [J]. JOURNAL OF CONTROL AUTOMATION AND ELECTRICAL SYSTEMS, 2013, 24 (05) : 585 - 600
  • [3] Control and navigation system for a fixed-wing unmanned aerial vehicle
    Zhai, Ruiyong
    Zhou, Zhaoying
    Zhang, Wendong
    Sang, Shengbo
    Li, Pengwei
    [J]. AIP ADVANCES, 2014, 4 (03)
  • [4] Formation Flight of Multiple Fixed-wing Unmanned Aerial Vehicles
    Zhang, Mingfeng
    Liu, Hugh H. T.
    [J]. 2013 AMERICAN CONTROL CONFERENCE (ACC), 2013, : 1614 - 1619
  • [5] Experimental cooperative control of fixed-wing unmanned aerial vehicles
    Bayraktar, S
    Fainekos, GE
    Pappas, GJ
    [J]. 2004 43RD IEEE CONFERENCE ON DECISION AND CONTROL (CDC), VOLS 1-5, 2004, : 4292 - 4298
  • [6] Aerobatic Flight for Robotic Fixed-Wing Unmanned Aerial Vehicles
    Basescu, Max R.
    Moore, Joseph L.
    [J]. Johns Hopkins APL Technical Digest (Applied Physics Laboratory), 2021, 35 (04): : 453 - 456
  • [7] Towards adaptive autopilots for fixed-wing unmanned aerial vehicles
    Baldi, Simone
    Roy, Spandan
    Yang, Kang
    [J]. 2020 59TH IEEE CONFERENCE ON DECISION AND CONTROL (CDC), 2020, : 4724 - 4729
  • [8] Autonomous obstacle avoidance for fixed-wing unmanned aerial vehicles
    de Ruiter, A. H. J.
    Owlia, S.
    [J]. AERONAUTICAL JOURNAL, 2015, 119 (1221): : 1415 - 1436
  • [9] Robust Control for Underactuated Fixed-Wing Unmanned Aerial Vehicles
    Wang, Tianyi
    Zhang, Luxin
    Chen, Zhihua
    [J]. MATHEMATICS, 2024, 12 (07)
  • [10] Aerobatic Flight for Robotic Fixed-Wing Unmanned Aerial Vehicles
    Basescu, Max R.
    Moore, Joseph L.
    [J]. JOHNS HOPKINS APL TECHNICAL DIGEST, 2021, 35 (04): : 453 - 456