Adaptive controller for a strength testbed for aircraft structures

被引:3
|
作者
Laperdin A.I. [1 ]
Yurkevich V.D. [2 ]
机构
[1] Chaplygin Siberian Scientific Research Institute of Aviation, ul. Polzunova 21, Novosibirsk
[2] Novosibirsk State Technical University, pr. Karla Marksa 20, Novosibirsk
基金
俄罗斯基础研究基金会;
关键词
adaptive controller; aircraft structures; control system; PI controller; strength tests; structural loading; time-scale separation method;
D O I
10.3103/S8756699017040069
中图分类号
学科分类号
摘要
The problem of control system design for a strength testbed of aircraft structures is considered. A method for calculating the parameters of a proportional-integral controller (control algorithm) using the time-scale separation method for the testbed taking into account the dead time effect in the control loop is presented. An adaptive control algorithm structure is proposed which limits the amplitude of high-frequency oscillations in the control system with a change in the direction of motion of the rod of the hydraulic cylinders and provides the desired accuracy and quality of transients at all stages of structural loading history. The results of tests of the developed control system with the adaptive control algorithm on an experimental strength testbed for aircraft structures are given. © 2017, Allerton Press, Inc.
引用
收藏
页码:351 / 357
页数:6
相关论文
共 50 条
  • [41] Longitudinal Controller Design for a Fighter Aircraft Using L1 Adaptive Backstepping
    Liu, Kai
    Zhu, Jihong
    Yu, Bo
    2011 9TH WORLD CONGRESS ON INTELLIGENT CONTROL AND AUTOMATION (WCICA 2011), 2011, : 341 - 346
  • [42] A Neural Network Parallel Adaptive Controller for Fighter Aircraft Pitch-Rate Tracking
    Kamalasadan, S.
    Ghandakly, Adel A.
    IEEE TRANSACTIONS ON INSTRUMENTATION AND MEASUREMENT, 2011, 60 (01) : 258 - 267
  • [43] An adaptive nonlinear output feedback controller using dynamic bounding with an aircraft control application
    Tangi, Xidong
    Tao, Gang
    INTERNATIONAL JOURNAL OF ADAPTIVE CONTROL AND SIGNAL PROCESSING, 2009, 23 (07) : 609 - 639
  • [44] Performance Improvement of Aircraft pitch angle using the Fractional Order Adaptive PID Controller
    Bensafia, Yassine
    Idir, Abdelhakim
    Zemmit, Abderrahim
    Khettab, Khatir
    PRZEGLAD ELEKTROTECHNICZNY, 2023, 99 (05): : 98 - 101
  • [45] L1 Adaptive Output Feedback Controller for Tilt-rotor Aircraft
    Lu, K.
    Liu, Chunsheng
    Wang, Zhengzhong
    Wang, Weihong
    2016 IEEE CHINESE GUIDANCE, NAVIGATION AND CONTROL CONFERENCE (CGNCC), 2016, : 2488 - 2491
  • [46] Robust and Adaptive Nonlinear Model Predictive Controller for Unsteady and Highly Nonlinear Unmanned Aircraft
    Garcia, Gonzalo Andres
    Keshmiri, Shawn Shahriar
    Stastny, Thomas
    IEEE TRANSACTIONS ON CONTROL SYSTEMS TECHNOLOGY, 2015, 23 (04) : 1620 - 1627
  • [47] Adaptive Backstepping Controller to Improve Handling Stability of Tractor-Aircraft System on Deck
    Liu, Hongbo
    Yang, Xiaodong
    Li, Yuefeng
    Guo, Hua
    2018 15TH INTERNATIONAL CONFERENCE ON UBIQUITOUS ROBOTS (UR), 2018, : 839 - 846
  • [48] Composite adaptive posicast controller for the wing rock phenomenon in a delta-wing aircraft
    Yousefimanesh, Amir
    Khosravi, Alireza
    Sarhadi, Pouria
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART G-JOURNAL OF AEROSPACE ENGINEERING, 2019, 233 (15) : 5579 - 5591
  • [49] The investigation on health monitoring and strength of adaptive composite structures
    Degang, C
    Xinmao, G
    Baoqi, T
    Hongdong, H
    Huaiqiang, X
    STRUCTURAL HEALTH MONTORING 2000, 1999, : 921 - 925
  • [50] Adaptive structural systems and compliant skin technology of morphing aircraft structures
    Manzo, J
    Garcia, E
    Wickenheiser, A
    Horner, GC
    SMART STRUCTURES AND MATERIALS 2004: SMART STRUCTURES AND INTEGRATED SYSTEMS, 2004, 5390 : 225 - 234