Robust Nonlinear Control of Air-to-Fuel Ratio in Spark Ignition Engines

  • Myoungho Sunwoo (Associate Professor from the Department of Automotive Engineering, Hanyang University) ;
  • Paljoo Yoon (Mando Corporation) ;
  • Park, Seungbum (Graduate Student from the Department of Automotive Engineering, Hanyang University) ;
  • Lee, Wootaik (Graduate Student from the Department of Automotive Engineering, Hanyang University)
  • Published : 2001.06.01

Abstract

This paper presents a new approach to the AFR (Air-to-Fuel Ratio) control problem, which is based on the wide-band oxygen sensor output. The dedicated nonlinear controller is based on the feedback lineaization technique. It is well known that the feedback linearizing control technique requires an exact model of the plant for the cancellation of plant nonlinearities. A sliding mode control scheme is applied which can effectively compensate the modeling uncertainties. The measurement time delay of an oxygen sensor limits the gain of the feedback controller. Hence, time delay compensation procedure is necessary for the improvement of control performance. The Smith predictor is adopted to compensate the effects of time delay. The simulation and experimental results show that the proposed controllers can effectively reduce the transient peaks of AFR in spite of fast tip-in and tip-out maneuvers of the throttle.

Keywords

References

  1. Aquino, C. F., 1981, 'Transient A/F Control Characteristics of the 5 Liter Central Fuel Injection Engine,' SAE Paper No. 810494
  2. Cho, D. and Hedrick, J. K., 1988, 'A Nonlinear Controller Design Method for Fuel-Injected Automotive Engines,' Transactions of ASME Journal of Engineering for Gas Turbines and Power, Vol. 110, No. 3, pp. 313-320
  3. Guzzella, L., Simons, M. and Geering, H. P., 1997, 'Feedback Linearizing Air/Fuel Ratio Controller,' Control Engineering Practive, Vol. 5, No. 8, pp. 1101-1105 https://doi.org/10.1016/S0967-0661(97)00102-0
  4. Hendricks, E., Chevalier, A., Jensen, A. and Sorenson, S. C., 1996, 'Modeling of Intake Manifold Filling Dynamics,' SAE Paper No. 960037
  5. Isidori, A., 1995, Nonlinear Control Systems, Springer, pp. 137-218
  6. Kravaris, C. and Wright, R. A., 1989,' Dead Time Compensation for Nonlinear Processes,' AIChE Journal, Vol. 35, No. 9, pp. 1535-1542 https://doi.org/10.1002/aic.690350914
  7. Lewis, F. L., 1992, Applied Optimal Control and Estimation, Prentice-Hall, pp. 270-278
  8. Moraal, P. E., 1995, 'Adaptive Compensation of Fuel Dynamics in SI Engine Using a Switching EGO Sensor,' Proceedings of the 34th IEEE Conference on Decision and Control, pp. 661-666 https://doi.org/10.1109/CDC.1995.478988
  9. Park, S., Yoon, P. and Sunwoo, M., 2000, 'SI Engine Closed-loop Spark Advance Control Using Cylinder Pressure,' Transactions of KSME Part A, Vol. 24, No. 9, pp. 2361-2370 (in Korean)
  10. Slotine, J.-J. E. and Li, W., 1991, Applied Nonlinear Control, Prentice-Hall, Englewood Cliffs, pp. 276-310
  11. Yoon, P., Kim, M. and Sunwoo, M., 1998, 'A Study on Design and Development of an Engine Control System based on Crank Angle,' Transactions of KSAE, Vol. 6, No. 4, pp. 198-210(in Korean)
  12. Yoon, P., Park, S. and Sunwoo, M., 2000, 'A Nonlinear Dynamic Model of SI Engines for Designing Controller,' FISITA world automotive congress, F2000A177
  13. Zhang, D. Q. and Panda, S. K., 1999, 'Chattering-Free and Fast Response Sliding Mode Controller,' IEEE Proc. -Control Theory Appl., Vol. 146, No. 2, pp. 171-177 https://doi.org/10.1049/ip-cta:19990518