Nanosatellite Attitude Stabilization Based on Decentralized Anti-windup Fault Tolerant Control

被引:0
|
作者
Ofodile, Ikechukwu [1 ]
Adebomehin, Akeem [1 ]
Jemitola, Paul [1 ]
Slavinskis, Andris [2 ]
Anbarjafari, Gholamreza [2 ]
机构
[1] Air Force Inst Technol, Fac Ground & Commun Engn, PMB 2104, Kaduna, Nigeria
[2] Univ Tartu, Inst Technol, Narva Mnt 18, Tartu, Estonia
关键词
SPACECRAFT; SYSTEMS;
D O I
10.1109/AERO55745.2023.10115995
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
In this paper, a decentralized anti-windup (AW) fault tolerant control (FTC) scheme is presented to deal with a precise attitude stabilization and address the problem of spacecraft model uncertainties, external disturbances, actuator faults and saturation. To accomplish the desired mission requirement of attitude stabilization and fine pointing, the design will feature a nominal controller based on the classical Proportional Derivative (PD) control law. Additionally, the design of the decentralized FTC scheme will involve the design of an individual AW compensator for each channel representing each principal axis of the spacecraft attitude. The nominal controller is expected to attain stability of the system in an ideal condition while the AW compensator is formulated using Linear Matrix Inequality (LMI) and appended to the linearized control system for each individual loop. The design is inspired by ESTCube-2 nanosatellite model for attitude stabilization with reaction wheels (RW) momentum as control input to the FTC scheme with controller gain scheduling. Simulations are reported with reaction wheels momentum limit set as 1.5 x 10(3) Nms to show the effectiveness of the developed FTC scheme.
引用
收藏
页数:7
相关论文
共 50 条
  • [21] An anti-windup compensator for a rigid-body NDI-based manual attitude control system
    Soltani, Ali
    Turner, Matthew C.
    Richards, Christopher M.
    [J]. 2024 UKACC 14TH INTERNATIONAL CONFERENCE ON CONTROL, CONTROL, 2024, : 317 - 318
  • [22] Decentralized Fault-Tolerant Control for Satellite Attitude Synchronization
    Li, Junquan
    Kumar, Krishna Dev
    [J]. IEEE TRANSACTIONS ON FUZZY SYSTEMS, 2012, 20 (03) : 572 - 586
  • [23] Anti-Windup Speed Regulator Based on Model Predictive Control
    Wang, Shuang
    Zhu, Wenju
    Huang, Surong
    Hou, Fei
    [J]. 2014 17TH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS), 2014, : 544 - 548
  • [24] Simple Adaptive Control With an Adaptive Anti-Windup Compensator for the Unmanned Aerial Vehicle Attitude Control
    Gai, Wendong
    Zhou, Yecheng
    Zhong, Maiying
    Sheng, Chunyang
    Zhang, Jing
    [J]. IEEE ACCESS, 2020, 8 : 52323 - 52332
  • [25] An aplication of fault tolerance for the implementation of compensation anti-windup
    Acuña-Bravo, Wilber
    Ríos-Bolívar, Addison
    [J]. RIAI - Revista Iberoamericana de Automatica e Informatica Industrial, 2008, 5 (03): : 21 - 28
  • [26] Observer-based Anti-windup Design of Flexible Satellite Attitude System
    Zhao Zuozhen
    Zheng Danfeng
    Fu Rong
    Zeng Jianping
    [J]. PROCEEDINGS OF THE 35TH CHINESE CONTROL CONFERENCE 2016, 2016, : 268 - 272
  • [27] An aplication of Fault Tolerance for the implementation of compensation Anti-Windup
    Acuna-Bravo, Wilber
    Rios-Bolivar, Addison
    [J]. REVISTA IBEROAMERICANA DE AUTOMATICA E INFORMATICA INDUSTRIAL, 2008, 5 (03): : 21 - +
  • [28] Anti-windup strategy for reset control systems
    Tarbouriech, Sophie
    Loquen, Thomas
    Prieur, Christophe
    [J]. INTERNATIONAL JOURNAL OF ROBUST AND NONLINEAR CONTROL, 2011, 21 (10) : 1159 - 1177
  • [29] Anti-Windup Switched Control of Hypersonic Vehicle
    Liu T.-H.
    An H.
    Wang C.-H.
    [J]. Wang, Chang-Hong (cwang@hit.edu.cn), 1600, China Spaceflight Society (41): : 329 - 336
  • [30] Anti-windup in mid-ranging control
    Haugwitz, Staffan
    Karlsson, Maria
    Velut, Stephane
    Hagander, Per
    [J]. 2005 44th IEEE Conference on Decision and Control & European Control Conference, Vols 1-8, 2005, : 7570 - 7575