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Vehicle Longitudinal Brake Control with Wheel Slip and Antilock Control

바퀴 슬립과 잠김 방지 제어를 고려한 차량의 종렬 브레이크 제어

  • 양홍 (전북대학교 전자공학과) ;
  • 최용호 ((주) 세아S.A 기술연구소) ;
  • 정길도 (전북대학교 전자정보공학부)
  • Published : 2005.06.01

Abstract

In this paper, a 4-wheel vehicle model including the effects of tire slip was considered, along with variable parameter sliding control, in order to improve the performance of the vehicle longitudinal response. The variable sliding parameter is made to be proportional to the square root of the pressure derivative at the wheel, in order to compensate for large pressure changes in the brake cylinder. A typical tire force-relative slip curve for dry road conditions was used to generate an analytical tire force-relative slip function, and an antilock sliding control process based on the analytical tire force-relative slip function was used. A retrofitted brake system, with the pushrod force as the end control parameter, was employed, and an average decay function was used to suppress the simulation oscillations. The simulation results indicate that the velocity and spacing errors were slightly larger than those obtained when the wheel slip effect was not considered, that the spacing errors of the lead and follower were insensitive to the adhesion coefficient up to the critical wheel slip value, and that the limit for the antilock control under non-constant adhesion road conditions was determined by the minimum value of the equivalent adhesion coefficient.

Keywords

References

  1. L. Austin and D. Morrey, 'Recent advances in antilock braking systems and traction control systems,' Proc. of the I MECH E Part D Journal of Automobile Engineering, vol. 214, pp. 625-638, 2000 https://doi.org/10.1243/0954407001527493
  2. Chien, C. C, Ioannou, P. and Lai, M. C, 1994, 'Entrainment and Vehicle Following Controllers Design for Autonomous Intelligent Vehicles,' Proceedings of the 1994 American Control Conference, pp. 6-10, Baltimore, Maryland https://doi.org/10.1109/ACC.1994.751682
  3. S. B. Choi and J. K. Hedrick, 'Robust throttle control of automotive engines,' Trans. of the ASME Journal of Dynamic Systems, Measurement, and Control, vol. 118, no. 1, pp 92-, Mar., 1996 https://doi.org/10.1115/1.2801156
  4. J. C. Gerdes and J. K. Hedrick, 'Brake system requirements for platooning on an automated highway,' Proc. of American Control Conference, vol. 1, pp.165-169, Jun., 1995 https://doi.org/10.1109/ACC.1995.529229
  5. J. C. Gerdes and J. K. Hedrick, 'Vehicle speed and spacing control via coordinated throttle and brake actuation,' Control Eng. Practice, vol. 5, issue 11, pp. 1607-1614, 1997 https://doi.org/10.1016/S0967-0661(97)10016-8
  6. J. C. Gerdes (1996). 'Decoupled design of robust controllers for nonlinear systmes: as motivated by and applied to coordinated throttle and brake control for automated highways,' PhD dissertation of Mechanical Eng. in Univ. of California. 1996
  7. I. Haskara, O. Ozguner, and J. Winkelman, 'Wheel slip control for antispin acceleration via dynamic spark advance,' Control Eng. Practice, vol.8, issue 10,pp. 1135-1148, Oct. 2000 https://doi.org/10.1016/S0967-0661(00)00047-2
  8. S. N. Huang and W. Ren, 'Vehicle longitudinal control using throttles and brakes,' Robotics and Automous Systems, vol. 26, no. 4, pp. 241-245, 1999 https://doi.org/10.1016/S0921-8890(98)00056-6
  9. L. R. Ray, :Nonlinear Tire Force Estimation and Road Friction Identification: Simulation and Experiments,' Automatica, vol. 33, no. 10, pp. 1819-1833, 1997 https://doi.org/10.1016/S0005-1098(97)00093-9
  10. J. K. Lee and K. H. Park (1999). 'Optimal robust control of a contactless brake system using an eddy current,' Mechatronics, vol. 9, no. 6, pp. 615-631, 1999 https://doi.org/10.1016/S0957-4158(99)00008-2
  11. J. Li, F. Yu, J. W. Zhang, J. Z. Feng and H. P. Zhao, 'The rapid development of a vehicle electronic control system and its application to an antilock braking system based on hardware-in-the-loop simulation,' Proceedings of the I MECH E Part D Journal of Automobile Engineering, vol. 216, no. 2, pp. 95-105, 2002 https://doi.org/10.1243/0954407021528940
  12. H. Liang, K. T. Chong, T. S. No, and S.Y. Yi, 'Vehicle longitudinal brake control using variable parameter sliding control,' Control Engineering Practice, vol. 11, issue 4, pp. 403-411,2003 https://doi.org/10.1016/S0967-0661(02)00176-4
  13. D. B. Maciuca and J. K. Hedrick, 'Brake dynamics effect on AHS lane capacity,' Systems and Issues in ITS (SP-l106), SAE Paper 951929, Future Transportation Technology Conference. Costa Mesa, CA. (1995a)
  14. D. B. Maciuca, J. C. Gerdes and J. K. Hedrick, 'Automatic braking control for IVHS,' Proc. of the International Symposium on Advanced Vehicle Control (AVEC), Tsukuba, Japan, 1994
  15. D. B. Maciuca, 'Nonlinear robust and adaptive control with application to brake control for automated highway systems,' PhD dissertation, 1997
  16. D. B. Maciuca and J. K. Hedrick, 'Advanced nonlinear brake system control for vehicle platooning,' Proc. of the third European Control Conference (ECC), Rome, Italy, 1995b
  17. E. Ono, K. Asano, M. Sugai, S. Ito, M. Yamamoto M. Sawada & Y. Yasui, 'Estimation of automotive tire force characteristics using wheel velocity,' Control Engineering Practice, vol. 11, issue 12, pp. 1361-1370, Dec. 2003 https://doi.org/10.1016/S0967-0661(03)00073-X
  18. J. P. Pauwelussen, L. Gootjes, C. Schroder, K. -U. Kohne, S. Jansen and A. Schmeitz, 'Full vehicle ABS braking using the SWIFT rigid ring tyre model,' Control Engineering Practice, vol. 1, issue 2, Feb. 2003 https://doi.org/10.1016/S0967-0661(02)00185-5
  19. M. W. Suh, Y. K. Park and S. J. Kwon, 'Braking performance simulation for a tractor-semitrailer vehicle with an air brake system,' Proceedings of the I MECH E Part D Journal of Automobile Engineering, vol. 26, pp. 43-54, 2002 https://doi.org/10.1243/0954407021528896