COMPARISON OF 2 METHODS FOR THE DESIGN OF ACTIVE SUSPENSION SYSTEMS

被引:14
|
作者
DEJAGER, AG
机构
[1] Department of Mechanical Engineering, WH 2.137, Eindhoven University of Technology, Eindhoven, 5600 MB
来源
关键词
ACTIVE SUSPENSION; LINEAR QUADRATIC CONTROL; H-INFINITY CONTROL; AUTOMOBILE DYNAMICS;
D O I
10.1002/oca.4660120305
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The design of controllers for active suspension systems can be formulated as an optimal control problem. The main objective of the controller is to isolate parts of the system from vibrations in other parts. Additional constraints are limited suspension travel, limited actuator force and good track-holding capability. The objective and the constraints can be used in the formulation of an optimality criterion. Two criteria are examined, with the corresponding LQ and H-infinity control design methods. The methods are compared with respect to their ability to generate a controller that achieves the best performance. For the LQ method three controllers with different structures were generated. To illustrate the use of the design methods, controllers have been designed for a simple but typical suspension system. For this system the controllers based on a quadratic norm perform comparably but the controllers based on output feedback are less robust. The H-infinity controller did not perform well for this problem when the same weighting functions were used to generate the controller as for the LQ method. Use of the H-infinity design method therefore requires careful tuning of the weighting functions. Use of the standard functions is inappropriate.
引用
收藏
页码:173 / 188
页数:16
相关论文
共 50 条
  • [21] Design and performance comparison of interconnection and damping assignment passivity-based control for vibration suppression in active suspension systems
    Sistla, Pramod
    Figarado, Sheron
    Chemmangat, Krishnan
    Manjarekar, Narayan Suresh
    Valappil, Gangadharan Kallu
    JOURNAL OF VIBRATION AND CONTROL, 2021, 27 (7-8) : 893 - 911
  • [22] Optimal design of discrete time preview controllers for semi-active and active suspension systems
    Youn, I
    KSME INTERNATIONAL JOURNAL, 2000, 14 (08): : 807 - 815
  • [23] Towards a Fair Comparison between the Nested and Simultaneous Control Co-Design Methods using an Active Suspension Case Study
    Sundarrajan, Athul K.
    Herber, Daniel R.
    2021 AMERICAN CONTROL CONFERENCE (ACC), 2021, : 358 - 365
  • [24] Comparison of the suspension design philosophies of low-speed MAGLEV systems
    Paddison, JE
    Ohsaki, H
    Masada, E
    INTERNATIONAL RAILWAY CONFERENCE ON BETTER JOURNEY TIME - BETTER BUSINESS: SELECTED PAPERS PRESENTED AT S TECH '96, 1996, 1996 (08): : 229 - 238
  • [25] Consumption in automobile active suspension systems .1. Predictor design issues
    BenMrad, R
    Fassois, SD
    Levitt, JA
    Bachrach, BI
    MECHANICAL SYSTEMS AND SIGNAL PROCESSING, 1996, 10 (02) : 135 - 154
  • [26] A robust controller design for performance improvement of a semi-active suspension systems
    Son, HY
    Heong, SG
    Choi, JY
    Kim, JK
    Cheon, YS
    Paek, YI
    Kwon, SH
    Lee, MH
    ISIE 2001: IEEE INTERNATIONAL SYMPOSIUM ON INDUSTRIAL ELECTRONICS PROCEEDINGS, VOLS I-III, 2001, : 1458 - 1461
  • [27] Modelling of continuously variable damper for design of semi-active suspension systems
    Heo, SJ
    Park, K
    Son, SH
    INTERNATIONAL JOURNAL OF VEHICLE DESIGN, 2003, 31 (01) : 41 - 57
  • [28] Nonlinear backstepping control design of half-car active suspension systems
    Lin, JS
    Huang, CJ
    INTERNATIONAL JOURNAL OF VEHICLE DESIGN, 2003, 33 (04) : 332 - 350
  • [29] Application of fuzzy logic control to the design of semi-active suspension systems
    Nicolas, CF
    Landaluze, J
    Castrillo, E
    Gaston, M
    Reyero, R
    PROCEEDINGS OF THE SIXTH IEEE INTERNATIONAL CONFERENCE ON FUZZY SYSTEMS, VOLS I - III, 1997, : 987 - 993
  • [30] Performance and design consideration for continuously controlled semi-active suspension systems
    Heo, SJ
    Park, K
    Hwang, SH
    INTERNATIONAL JOURNAL OF VEHICLE DESIGN, 2000, 23 (3-4) : 376 - 389