An innovative control approach for a Maglev system, including a new structure of the Maglev line and a novel levitation control method, is proposed in order to solve the problem of vehicle–guideway coupling vibration. Compared with a traditional Maglev line, the magnetic tracks in the new line are divided into smaller pieces to allow decoupling of the levitation magnets from the flexible supporting beams (steel or concrete beams). The vibration states of the magnetic tracks are introduced into the control system by the state observer, and a controller is designed using the full state feedback method. The effects of various parameters on the stability of the system are investigated. Also, a hardware-in-loop test rig is built to verify the feasibility of the scheme. The following conclusions are drawn based on the obtained results: in the new system, the magnet is dual-decoupled from the carbody and the supporting beam; the relative position between the magnet and the supporting beam exerts a negligible effect on the responses of the track and magnet, this makes it feasible to obtain all the vibration states of the track and the magnet using a state observer; an increase in the mass of the track is conducive to the stability of the system and a low pad stiffness value produces a faster decay ratio of the vibration of the supporting beam; the system’s stability margin is improved as the damping ratio of the supporting beam increases.
[1]
Hui Wang,et al.
Analysis and experimental study on the MAGLEV vehicle-guideway interaction based on the full-state feedback theory
,
2015
.
[2]
Zhou Fu-min,et al.
Maglev Vehicle and Guideway Coupling Vibration Analysis
,
2010
.
[3]
Ju Lee,et al.
Review of maglev train technologies
,
2006
.
[4]
Colin H. Hansen,et al.
Suppression of maglev vehicle–girder self-excited vibration using a virtual tuned mass damper
,
2011
.
[5]
Luo Shihui.
Stability research and simulation of a single magnetic system
,
2005
.
[6]
Francis C. Moon,et al.
Dynamic instabilities in magnetically levitated models
,
1983
.
[7]
S G Meisenholder,et al.
DYNAMIC ANALYSIS OF AN ELECTROMAGNETIC SUSPENSION SYSTEM FOR A SUSPENDED VEHICLE SYSTEM
,
1972
.
[8]
Wanming Zhai,et al.
DYNAMICS OF MAGLEV VEHICLE/ GUIDEWAY SYSTEMS(I)--MAGNET/RAIL INTERACTION AND SYSTEM STABILITY
,
2005
.
[9]
Liu Gui-dong,et al.
Research on dynamics characteristic of single magnetic levitation control system
,
2006
.
[10]
Jiang Qi-long.
Self-adaptive control method for maglev system
,
2005
.
[11]
Tong Lai-sheng.
Technology research of medium and low speed maglev train
,
2011
.
[12]
J. D. Yau,et al.
Vibration control of maglev vehicles traveling over a flexible guideway
,
2009
.