Abstract
This study presents steady turning motion and roll-angle tracking controls for an unmanned bicycle. The equations of motion describing the dynamics of a bicycle are developed using Lagrange's equations for quasi-coordinates. Pure rolling without slipping constraints between the ground and two wheels are also considered in this model. These constraints introduce four holonomic and four non-holonomic constraint equations to the model. For the developed bicycle dynamics, one PID and one fuzzy controller that create steering torque are derived to recover the balance of the bicycle from a near-fall state. Furthermore, another fuzzy controller is added for controlling the bicycle to a desired roll angle which leads to its steady circular motion. The bicycle can track a given roll angle while maintaining its balance. The effectiveness of the control schemes is proved by simulation results.
| Original language | English |
|---|---|
| Pages (from-to) | 321-346 |
| Number of pages | 26 |
| Journal | Multibody System Dynamics |
| Volume | 15 |
| Issue number | 4 |
| DOIs | |
| State | Published - May 2006 |
Bibliographical note
Funding Information:Acknowledgements The authors would like to thank the National Science Council of the Republic of China, Taiwan, for financially supporting this research under project number NSC 93-2213-E-212-037. The authors also wish to express appreciations to the valuable comments and suggestions from the reviewers.
Keywords
- Bicycle balancing
- Bicycle dynamics
- Fuzzy control
- Multibody
- Non-holonomic constraint
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