Air-fuel ratio control of lean-burn SI engines using the LPV-based fuzzy technique

被引:13
|
作者
Wu, Hsiu-Ming [1 ]
Tafreshi, Reza [2 ]
机构
[1] Natl Chin Yi Univ Technol, Dept Mech Engn, Taichung, Taiwan
[2] Texas A&M Univ Qatar, Mech Engn Program, Doha 23874, Qatar
来源
IET CONTROL THEORY AND APPLICATIONS | 2018年 / 12卷 / 10期
关键词
ignition; Lyapunov methods; time-varying systems; fuel economy; fuzzy control; nonlinear control systems; multivariable control systems; internal combustion engines; robust control; fuzzy systems; stability criteria; fuzzy set theory; air pollution control; delay systems; linear parameter varying systems; uncertain systems; sparks; air-fuel ratio control; AFR control; unstable internal dynamics; parameter dependent system; parameter dependent problem; fuzzy system theory; robust control algorithm; nonlinear mapping; AFR system; LPV dynamic error; unstable state; AFR tracking error; fuzzy control algorithm; system stability; baseline controller; proportional-integral controller; linear parameter varying technique; system parameter uncertainty; error dynamics; pollutant emission minimization; carbon dioxide minimization; fuel economy maximization; inherent time-varying delay; lean-burn SI engines; lean-burn spark ignition engines; gain-scheduled multivariable controller; systematic strategy; linguistic rules; LPV-based fuzzy control technique; look-up table; Lyapunov stability criteria; Smith predictor; SPARK-IGNITION ENGINE; 2ND-ORDER SLIDING MODE;
D O I
10.1049/iet-cta.2017.0063
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Control of air-fuel ratio (AFR) plays a key role in the minimisation of the carbon dioxide and harmful pollutant emissions and maximisation of fuel economy. An inherent time-varying delay existing in lean-burn spark ignition (SI) engines is a major challenge for the AFR control. Herein an unstable internal dynamics with a parameter dependent system caused by time delay is established to represent a dominating feature of AFR. The proposed control scheme, LPV-based fuzzy control technique, combines the features of LPV and fuzzy control to deal with the unstable internal dynamics of an AFR system with external disturbances and a high level of uncertainty in system parameters. Based on the desired error dynamics, an LPV dynamic error consisting of the unstable state and the AFR tracking error is determined. Subsequently, the proposed fuzzy control algorithm through a look-up table is used to stabilise the LPV dynamic error. Then, the tracking error moves along the desired error dynamics towards zero. The system stability is assured via Lyapunov stability criteria. Finally, the simulation results demonstrate the effectiveness and robustness of the proposed control scheme under different operating conditions. Also, compared with the baseline controller, i.e. proportional-integral controller with Smith predictor, demonstrates its superiority.
引用
收藏
页码:1414 / 1420
页数:7
相关论文
共 50 条
  • [41] Adaptive Controller with Delay Compensation for Air-Fuel Ratio Regulation in SI Engines
    Kahveci, Nazli E.
    Jankovic, Mrdjan J.
    [J]. 2010 AMERICAN CONTROL CONFERENCE, 2010, : 2236 - 2241
  • [42] Nonlinear Observer-Based Air-Fuel Ratio Control for Port Fuel Injected Wankel Engines
    Chen, Anthony Siming
    Herrmann, Guido
    Na, Jing
    Turner, Matthew
    Vorraro, Giovanni
    Brace, Chris
    [J]. 2018 UKACC 12TH INTERNATIONAL CONFERENCE ON CONTROL (CONTROL), 2018, : 224 - 229
  • [43] Stochastic Air-Fuel Ratio Control of Compressed Natural Gas Engines Using State Observer
    Yang, Jun
    Wang, Jian
    Zhou, Xuesheng
    Li, Yanxiao
    [J]. MATHEMATICAL PROBLEMS IN ENGINEERING, 2020, 2020
  • [44] Disturbance rejection control of air-fuel ratio with transport-delay in engines
    Song, Kang
    Hao, Tianyuan
    Xie, Hui
    [J]. CONTROL ENGINEERING PRACTICE, 2018, 79 : 36 - 49
  • [45] Adaptive sliding mode control of air-fuel ratio in internal combustion engines
    Souder, JS
    Hedrick, JK
    [J]. INTERNATIONAL JOURNAL OF ROBUST AND NONLINEAR CONTROL, 2004, 14 (06) : 525 - 541
  • [46] Observer-based air-fuel ratio control
    Powell, JD
    Fekete, NP
    Chang, CF
    [J]. IEEE CONTROL SYSTEMS MAGAZINE, 1998, 18 (05): : 72 - 83
  • [47] Iterative Learning Air-Fuel Ratio Control with Adaptation in Spark Ignition Engines
    Efimov, Denis V.
    Javaherian, Hosein
    Nikiforov, Vladimir O.
    [J]. 2010 AMERICAN CONTROL CONFERENCE, 2010, : 2063 - 2068
  • [48] Robust model-based switching MIMO air handling control of turbocharged lean-burn SI natural gas variable speed engines
    Rayasam, Sree Harsha
    Qiu, Weijin
    Rimstidt, Ted
    Shaver, Gregory M.
    Van Alstine, Daniel G.
    [J]. INTERNATIONAL JOURNAL OF ENGINE RESEARCH, 2023, 24 (06) : 2783 - 2804
  • [49] Transient Air-Fuel Ratio Control in a CNG Engine Using Fuzzy Neural Networks
    李国岫
    张欣
    [J]. Journal of Beijing Institute of Technology, 2005, (01) : 100 - 103
  • [50] Online linearization-based neural predictive control of air-fuel ratio in SI engines with PID feedback correction scheme
    Saraswati, Samir
    Chand, Satish
    [J]. NEURAL COMPUTING & APPLICATIONS, 2010, 19 (06): : 919 - 933