DOI QR코드

DOI QR Code

Development and Evaluation of ESP Systems for Enhancement of Vehicle Stability during Cornering (II)

차량의 선회시 주행 안정성 강화를 위한 ESP 시스템 개발 및 성능 평가 (II)

  • 송정훈 (인제대학교 기계자동차공학부)
  • Published : 2006.12.01

Abstract

Two yaw motion control systems that improve a vehicle lateral stability are proposed in this study: a rear wheel steering yaw motion controller (SESP) and an enhanced rear wheel steering yaw motion controller (ESESP). A SESP controls the rear wheels, while an ESESP steers the rear wheels and front outer wheel to allow the yaw rate to track the reference yaw rate. A 15 degree-of-freedom vehicle model, simplified steering system model, and driver model are used to evaluate the proposed SESP and ESESP. A robust anti-lock braking system (ABS) controller is also designed and developed. The performance of the SESP and ESESP are evaluated under various road conditions and driving inputs. They reduce the slip angle when braking and steering inputs are applied simultaneously, thereby increasing the controllability and stability of the vehicle on slippery roads.

Keywords

References

  1. Fennel, R., and Ding, E. L., 2000, 'A Model-Based ?Failsafe System for the Continental TEVES Electronic-Stability-Program (ESP),' SAE Transaction, SAE 2000-01-1635
  2. Van Zanten, A. T., 2001, 'Bosch ESP Systems: 5 Years of Experience,' SAE Transaction, SAE 2000-011633
  3. Lee, C. R., Yang, H. S. and Park, Y. P., 2003, 'Control of Vehicle Yaw Moment using Sliding Mode with Time-Varying Switching Surface,' Trans. of the KSME (A), Vol. 27, No.5, pp. 666-672 https://doi.org/10.3795/KSME-A.2003.27.5.666
  4. Song, J., and Boo, K., 2004, 'Development and Performance Evaluation of ESP Systems for Enhancing the Lateral Stability during Cornering,' Trans. of the KSME (A), Vol. 30, No. 10 https://doi.org/10.3795/KSME-A.2006.30.10.1276
  5. Song, J., Boo, K. and Lee, J., 2004, 'Using an ABS Controller and Rear Wheel Controller for Stability Improvement of a Vehicle,' Trans. of the KSME (A), Vol. 28, No.8, pp. 1125-1134 https://doi.org/10.3795/KSME-A.2004.28.8.1125
  6. Song, J., 2005, 'Performance Evaluation of a Hybrid Electric Brake System with a Sliding Mode Controller,' Mechatronics, Vol. 15, pp. 339-358 https://doi.org/10.1016/j.mechatronics.2004.09.005
  7. Song, J. and Boo, K., 2004, 'Performance Evaluation of Traction Control Systems Using a Vehicle Dynamic Model,' Proceedings of the Institute of Mechanical Engineers Part D, Journal of Automobile Engineering, Vol. 218, No. 7, pp. 685-696 https://doi.org/10.1243/0954407041580094
  8. Song, J., Boo, K., Kim, H. S., Lee, J., and Hong, S., 2004, 'Model Development and Control Methodology of a New Electric' Power Steering System,' Proceedings of the Institute of Mechanical Engineers Part D, Journal of Automobile Engineering, Vol. 218, No. 9, pp. 967-976 https://doi.org/10.1243/0954407041856836
  9. Siotine, J. and Li, W., 1991, Applied Nonlinear Control, Prentice-Hall International Editions, USA, pp. 276-310
  10. Kiencke, U., and Nielsen, L., 2000, Automotive Control Systems, Society of Automotive Engineers
  11. Bang, M. S., Lee, S. H., Han, C. S., Maciuca, D. B. and Hedrick, J. K., 2001, 'Performance Enhancement of a Sliding Mode Wheel Slip Controller by the Yaw Motion Control,' Proceedings of the Institute of Mechanical Engineers Part D, Journal of Automobile Engineering, Vol. 215, No. 4, pp. 455-468 https://doi.org/10.1243/0954407011528077