抄録
The inherent uncertainties of vehicle suspension systems challenge not only the capability of ride comfort and handling performance, but also the reliability requirement. In this research, a dynamic-reliable multiple model adaptive(MMA) controller is developed to overcome the difficulty of suspension uncertainties while considering performance and reliability at the same time. The MMA system consists of a finite number of optimal sub-controllers and employs a continuous-time based Markov chain to guide the jumping among the sub-controllers. The failure mode considered is the bottoming and topping of suspension components. A limitation on the failure probability is imposed to penalize the performance of the sub-controllers and a gradient-based genetic algorithm yields their optimal feedback gains. Finally, the dynamic reliability of the MMA controller is approximated by using the integration of state covariances and a judging condition is induced to assert that the MMA system is dynamic-reliable. In numerical simulation, a long scheme with piecewise time-invariant parameters is employed to examine the performance and reliability under the uncertainties of sprung mass, road condition and driving velocity. It is shown that the dynamic-reliable MMA controller is able to trade a small amount of model performance for extra reliability.
| 本文言語 | English |
|---|---|
| 論文番号 | 045007 |
| ジャーナル | Smart Materials and Structures |
| 巻 | 19 |
| 号 | 4 |
| DOI | |
| 出版ステータス | Published - 2010 |
| 外部発表 | はい |
ASJC Scopus subject areas
- 信号処理
- 土木構造工学
- 原子分子物理学および光学
- 材料科学一般
- 凝縮系物理学
- 材料力学
- 電子工学および電気工学
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