Robust and two-level (nonlinear) predictive control of switched dynamical systems with unknown references for optimal wet-clutch engagement

Author:

Dutta Abhishek12,Ionescu Clara M1,De Keyser Robin1,Wyns Bart1,Stoev Julian3,Pinte Gregory3,Symens Wim3

Affiliation:

1. Department of Electrical Energy, Systems and Automation, Ghent University, Ghent, Belgium

2. Wolfson College Cambridge, UK

3. Flanders’ Mechatronics Technology Center, Leuven, Belgium

Abstract

Modeling and control of clutch engagement has been recognized as a challenging control problem, due to nonlinear and time-varying dynamics, that is, switching between two discontinuous dynamic phases: the fill and the slip. Furthermore, the reference trajectories for obtaining an optimal clutch engagement are not a priori known and may require adaptation to varying operating conditions. Two (nonlinear) model predictive control strategies are proposed based on the partial or full (non)linear identification of these two phases. First, a local linear model of the fill phase is identified and a robust model predictive control is designed to account for the consequent uncertainty in the slip phase. Second, (non)linear models of both the fill and the slip phases are identified and a two-level (nonlinear) model predictive control controller is proposed, where two (nonlinear) model predictive control controllers are designed for the two phases tracking references generated and continuously adapted by high-level iterative learning controllers. The robust and two-level (nonlinear) model predictive controls are validated on a real clutch. The results obtained from the real setup show that the proposed control strategies lead to an optimal engagement of the wet-clutch system.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Control and Systems Engineering

Reference19 articles.

1. Engagement control for automotive dry clutch

2. Hybrid optimal control of dry clutch engagement

3. Dolcini PJ. Contribution to the clutch comfort. PhD Thesis, Institute National Polytechnique de Grenoble, Grenoble, 2007.

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