DocumentCode :
1549951
Title :
Computationally Inexpensive Tracking Control of High-Speed Trains With Traction/Braking Saturation
Author :
Song, Qi ; Song, Yong-duan ; Tang, Tao ; Ning, Bin
Author_Institution :
State Key Lab. of Rail Traffic Control & Safety, Beijing Jiaotong Univ., Beijing, China
Volume :
12
Issue :
4
fYear :
2011
Firstpage :
1116
Lastpage :
1125
Abstract :
The problem of the position and velocity tracking control of high-speed trains becomes interesting yet challenging when simultaneously considering inevitable factors such as the resistive friction and aerodynamic drag forces, the interactive impacts among the vehicles, and the nonlinear traction/braking notches inherent in train systems. In this paper, a multiple point mass with a single-coordinate dynamic model that reflects resistive and transient impacts is derived, and based on this, computationally inexpensive robust adaptive control designs with optimal task distribution for speed and position tracking are proposed under traction/braking nonlinearities and saturation limitations. It is shown that the proposed method is not only robust to external disturbances, aerodynamic resistance, mechanical resistance, and transient impacts but adaptive to unknown system parameters as well. The effectiveness of the proposed approach is also confirmed through numerical simulations.
Keywords :
adaptive control; aerodynamics; braking; control system synthesis; impact (mechanical); numerical analysis; position control; railways; robust control; tracking; traction; vehicle dynamics; velocity control; aerodynamic drag forces; aerodynamic resistance; computationally inexpensive robust adaptive control design; computationally inexpensive tracking control; high-speed trains; interactive impacts; mechanical resistance; multiple point mass; nonlinear traction-braking notche; numerical simulation; optimal task distribution; position control; resistive friction; resistive impacts; single coordinate dynamic model; transient impacts; velocity tracking control; Adaptive control; Aerodynamics; Control design; Position control; Rail transportation; Input saturation; optimal distribution; robust adaptive control; transient impacts;
fLanguage :
English
Journal_Title :
Intelligent Transportation Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1524-9050
Type :
jour
DOI :
10.1109/TITS.2011.2143409
Filename :
5871322
Link To Document :
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