Distributed Control of DC Servo Motor on LonWorks-IP Virtual Device Network for Predictive and Preventive Maintenance

LonWorks-IP 가상 디바이스 네트워크상에서 예지 및 예방보전을 위한 DC 서보모터의 분산제어

  • Song, Ki-Won (Division of Electronics & Information Engineering, Cheongju University)
  • 송기원 (청주대학교 전자정보공학부)
  • Published : 2006.08.31

Abstract

LonWorks over IP(LonWorks-IP) virtual device network(VDN) is an integrated form of LonWorks device network and IP data network. In especially real-time distributed servo applications on the factory floor, timely response is essential for predictive and preventive maintenance. The time delay in servo control on LonWorks-IP based VDN has highly stochastic nature. LonWorks-IP based VDN induced transmission delay deteriorates the performance and stability of the real-time distributed control system and can't give an effective preventive and predictive maintenance. In order to guarantee the stability and performance of the system, and give an effective preventive and predictive maintenance, LonWorks-IP based VDN induced time-varying uncertain time delay needs to be predicted and compensated. In this paper new Pill control scheme based on Smith predictor, disturbance observer and band pass filter is proposed and tested through computer simulation about position control of DC servo motor. It is shown that how can the proposed control scheme be designed to minimize the effects of uncertain varying time delay and model uncertainties. The validity of the proposed control scheme is compared and demonstrated with the comparison of internal model controllers(IMC) based on Smith predictor with and without disturbance observer.

Keywords

References

  1. Gi Heung Choi, 'Transmission Characteristics in LonWorks/IP-hased Virtual Device Network for Predictive Maintenance', Journal of the KIIS, Vol. 17, No.4, pp. 196-201, 2002
  2. Ki Won Song, Gi-Heung Choi, 'Real-time Distributed Control in Virtual Device Network With Uncertain Time Delay for Predictive Maintenance(PM)', Journal of the KIIS, Vol. 18, No.3, pp. 154-159, 2003
  3. Clifford G. Carter and E. Richard Robinson, 'Ocean Effects on Time Delay Estimation Requiring Adaptation', IEEE J. Oceanic Eng., Vol. 18, No.4, pp. 367-378, 1993 https://doi.org/10.1109/48.262289
  4. Roy E. Bethel and Robert G. Rahikka, 'Optimun Time Delay Detection and Tracking', IEEE Trans. Aerospace and Electronic Systems, Vol. 26, No.5, pp. 700-712, 1990 https://doi.org/10.1109/7.102705
  5. Edited by William S. Levine, 'Control System Fundamentals', CRC Press, pp. 215 -237, 2000
  6. Ki Won Song, Gi Sang Choi, Gi Heung Choi and Jung Soo Kim, 'Integration of Distributed Control Networks with IP Networks for Remote Control and Monitoring', in Proc. of ICMIT, pp. 377-380, Yamaguchi, Japan, 2001
  7. Silviu-Iulian Niculescu, Carlos E. de Souza, Luc Dugard, and Jean-Michel Dion, 'Robust Exponential Stability of Uncertain Systems with Time-Varying Delays', IEEE Trans. Automatic Control, Vol. 43, No.5, pp. 743 -748, 1998 https://doi.org/10.1109/9.668851
  8. M. S. Branicky, S. M. Phillips, and Wei Zhang, 'Stability of Networked Control Systems: Explicit Analysis of Delay', in Proc. of ACC, pp. 23522357, Chicargo, Illinois, 2000
  9. Gregory C. Walsh, Octavian Beldiman, and Linda G. Bushnell, 'Asymptotic Behavior of Nonlinear Networked Control Systems', IEEE Trans. Automatic Control, Vol. 46, No.7, pp. 1093 -1097, 2001 https://doi.org/10.1109/9.935062
  10. Gregory C. Walsh, Hong Ye, and Linda G. Bushnell, 'Stability Analysis of Networked Control Systems', IEEE Control Systems Technology, Vol. 10, No.3, pp. 438 -446, 2002 https://doi.org/10.1109/87.998034