• DocumentCode
    3137871
  • Title

    Advanced fuzzy PID composite control for stabilized platform system

  • Author

    Yu, Zhi ; Cao, JianZhong ; Yang, HongTao ; Guo, HuiNan ; Gao, Bo ; Yang, Lei

  • Author_Institution
    Xi An Inst. of Opt. & Precision Mech., Xi´´an, China
  • fYear
    2012
  • fDate
    5-8 Aug. 2012
  • Firstpage
    2536
  • Lastpage
    2540
  • Abstract
    The Stabilized platform is used for isolating the vibration and disturbance of carrier and ensuring the stability of the line of sight (LOS). Proportional-integral-derivative (PID) control provides an efficient solution to control problems and make good performance in static precision. The fuzzy controller has good robust and is effective for the nonlinear time-varying system. Based on Advanced Scale Factor and Smooth Handover, this paper presents an Advanced Fuzzy PID Composite controller (A-FPID) to achieve high performance in static precision and dynamic characteristic for stabilized platform. Through the study on the A-FPID, the Scale Factor of defuzzification is adjusted by self-adaptive parameters to improve the control effects of fuzzy rules. A fuzzy switch is proposed when controller switches between fuzzy and PID to reduce non-smooth and jitter problems. The simulation results indicate that the A-FPID can obviously improve the system´s dynamical performance and enhance its static precision for stabilized platform.
  • Keywords
    fuzzy control; nonlinear control systems; precision engineering; robust control; self-adjusting systems; three-term control; time-varying systems; vibration isolation; A-FPID; LOS; PID control; advanced fuzzy PID composite control; avanced scale factor; carrier disturbance; controller switch; defuzzification scale factor; fuzzy rule; fuzzy switch; jitter problem; line of sight; nonlinear time-varying system; nonsmooth problem; proportional-integral-derivative control; robust; self-adaptive parameter; smooth handover; stability; stabilized platform system; static precision; system dynamical performance; vibration isolation; Angular velocity; Fuzzy control; Mathematical model; Niobium; PD control; Switches; A-FPID; Fuzzy; Scale Factor; Stabilized Platform;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Mechatronics and Automation (ICMA), 2012 International Conference on
  • Conference_Location
    Chengdu
  • Print_ISBN
    978-1-4673-1275-2
  • Type

    conf

  • DOI
    10.1109/ICMA.2012.6285746
  • Filename
    6285746