Title :
Robust stabilizer design for Linear time varying internal model based control
Author :
Xingyong Song ; Yu Wang ; Zongxuan Sun
Author_Institution :
R&D Center, Gen. Motors LLC, Warren, MI, USA
Abstract :
This paper focuses on the design of a low order robust stabilizer for the tracking/disturbance rejection problem based on the internal model principle in the time varying setting. The existing stabilization approaches are either lack of robustness or results in a high order design, which limits the potential for broad application. The method proposed in this paper overcomes this bottleneck by taking advantage of the unique structure of the time varying internal model based control system. Instead of using a dynamic stabilizer with high order, this approach uses a sequence of time varying gains that are injected into the internal model unit. A critical issue addressed is how to avoid the non-convex optimization associated with the time varying gain synthesis and then convert the stabilizer design into a series of convex Linear Matrix Inequality (LMI) constraints. The approach is then validated on an experimental system and demonstrated to be robust and computationally efficient.
Keywords :
control system synthesis; linear matrix inequalities; linear systems; optimisation; stability; time-varying systems; LMI constraint; disturbance rejection problem; linear matrix inequality; linear time varying internal model based control; nonconvex optimization; robust stabilizer design; stabilization approach; time varying gain synthesis; tracking problem; Linear matrix inequalities; Optimization; Output feedback; Robustness; Time varying systems; Uncertainty; Vectors;
Conference_Titel :
American Control Conference (ACC), 2012
Conference_Location :
Montreal, QC
Print_ISBN :
978-1-4577-1095-7
Electronic_ISBN :
0743-1619
DOI :
10.1109/ACC.2012.6315382