Simultaneous stabilization of a set of nonlinear port-controlled Hamiltonian systems
Authors
Yuzhen Wang, Gang Feng, Daizhan Cheng
Abstract
This paper investigates simultaneous stabilization of a set of nonlinear port-controlled Hamiltonian (PCH) systems and proposes a number of results on the design of simultaneous stabilization controllers for the PCH systems. Firstly, the case of two PCH systems is studied. Using the dissipative Hamiltonian structural properties, the two systems are combined to generate an augmented PCH system, with which some results on the control design are then obtained. For the case that there exist parametric uncertainties in the two systems’ Hamiltonian structures, an adaptive simultaneous stabilization controller is proposed. When there are external disturbances and parametric uncertainties in the two systems, two simultaneous stabilization controllers are designed for the systems: one is a robust controller and the other is a robust adaptive one. Secondly, the case of more than two PCH systems is investigated, and a new result is proposed for the simultaneous stabilization of the systems. Finally, two illustrative examples are studied by using the results proposed in this paper. Simulations show that the simultaneous stabilization controllers obtained in this paper work very well.
Keywords
PCH System; Simultaneous stabilization; Augmented PCH structure; Zero-state detectability; \( L^2 \)-disturbance attenuation; Adaptive/robust simultaneous stabilization controller
Citation
- Journal: Automatica
- Year: 2007
- Volume: 43
- Issue: 3
- Pages: 403–415
- Publisher: Elsevier BV
- DOI: 10.1016/j.automatica.2006.09.008
BibTeX
@article{Wang_2007,
title={{Simultaneous stabilization of a set of nonlinear port-controlled Hamiltonian systems}},
volume={43},
ISSN={0005-1098},
DOI={10.1016/j.automatica.2006.09.008},
number={3},
journal={Automatica},
publisher={Elsevier BV},
author={Wang, Yuzhen and Feng, Gang and Cheng, Daizhan},
year={2007},
pages={403--415}
}
References
- Blondel, (1994)
- Brambilla, A. & D’Amore, D. Energy-based control of numerical errors in time-domain simulation of dynamic circuits. IEEE Trans. Circuits Syst. I 48, 543–551 (2001) – 10.1109/81.922457
- Yong-Yan Cao, You-Xian Sun & Lam, J. Simultaneous stabilization via static output feedback and state feedback. IEEE Trans. Automat. Contr. 44, 1277–1282 (1999) – 10.1109/9.769390
- Dalsmo, M. & van der Schaft, A. On Representations and Integrability of Mathematical Structures in Energy-Conserving Physical Systems. SIAM J. Control Optim. 37, 54–91 (1998) – 10.1137/s0363012996312039
- Escobar, G., van der Schaft, A. J. & Ortega, R. A Hamiltonian viewpoint in the modeling of switching power converters. Automatica 35, 445–452 (1999) – 10.1016/s0005-1098(98)00196-4
- Fujimoto, K., Sakurama, K. & Sugie, T. Trajectory tracking control of port-controlled Hamiltonian systems via generalized canonical transformations. Automatica 39, 2059–2069 (2003) – 10.1016/j.automatica.2003.07.005
- Fujimoto, K. & Sugie, T. Canonical transformation and stabilization of generalized Hamiltonian systems. Systems & Control Letters 42, 217–227 (2001) – 10.1016/s0167-6911(00)00091-8
- Galaz, M., Ortega, R., Bazanella, A. S. & Stankovic, A. M. An energy-shaping approach to the design of excitation control of synchronous generators. Automatica 39, 111–119 (2003) – 10.1016/s0005-1098(02)00177-2
- Ho-Mock-Qai, B. & Dayawansa, W. P. Simultaneous Stabilization of Linear and Nonlinear Systems by Means of Nonlinear State Feedback. SIAM J. Control Optim. 37, 1701–1725 (1999) – 10.1137/s0363012997315610
- HOWITT, G. D. & LUUS, R. Simultaneous stabilization of linear single-input systems by linear state feedback control. International Journal of Control 54, 1015–1030 (1991) – 10.1080/00207179108934197
- Khalil, (1996)
- Macchelli, A. & Melchiorri, C. Modeling and Control of the Timoshenko Beam. The Distributed Port Hamiltonian Approach. SIAM J. Control Optim. 43, 743–767 (2004) – 10.1137/s0363012903429530
- Maschke, B., Ortega, R. & Van Der Schaft, A. J. Energy-based Lyapunov functions for forced Hamiltonian systems with dissipation. IEEE Trans. Automat. Contr. 45, 1498–1502 (2000) – 10.1109/9.871758
- Miller, D. E. & Tongwen Chen. Simultaneous stabilization with near-optimal H∞ performance. IEEE Trans. Automat. Contr. 47, 1986–1998 (2002) – 10.1109/tac.2002.805687
- Miller, D. E. & Rossi, M. Simultaneous stabilization with near optimal LQR performance. IEEE Trans. Automat. Contr. 46, 1543–1555 (2001) – 10.1109/9.956050
- Nijmeijer, (1990)
- Transient stabilization of multimachine power systems with nontrivial transfer conductances. IEEE Trans. Automat. Contr. 50, 60–75 (2005) – 10.1109/tac.2004.840477
- Ortega, R., van der Schaft, A., Maschke, B. & Escobar, G. Interconnection and damping assignment passivity-based control of port-controlled Hamiltonian systems. Automatica 38, 585–596 (2002) – 10.1016/s0005-1098(01)00278-3
- Schmitendorf, W. E. & Hollot, C. V. Simultaneous stabilization via linear state feedback control. IEEE Trans. Automat. Contr. 34, 1001–1005 (1989) – 10.1109/9.35818
- van der Schaft, (1999)
- van der Schaft, The Hamiltonian formulation of energy conserving physical systems with external ports. Archive für Elektronik und Übertragungstechnik (1995)
- Wang, Y., Cheng, D. & Hu, X. Problems on time-varying port-controlled Hamiltonian systems: geometric structure and dissipative realization. Automatica 41, 717–723 (2005) – 10.1016/j.automatica.2004.11.006
- Yuzhen Wang, Daizhan Cheng, Chunwen Li & You Ge. Dissipative hamiltonian realization and energy-based L/sub 2/-disturbance attenuation control of multimachine power systems. IEEE Trans. Automat. Contr. 48, 1428–1433 (2003) – 10.1109/tac.2003.815037
- Wang, Y., Li, C. & Cheng, D. Generalized Hamiltonian realization of time-invariant nonlinear systems. Automatica 39, 1437–1443 (2003) – 10.1016/s0005-1098(03)00132-8
- Wu, J.-L. Simultaneous stabilization for a collection of single-input nonlinear systems. IEEE Trans. Automat. Contr. 50, 328–337 (2005) – 10.1109/tac.2005.843877
- Xi, Z., Cheng, D., Lu, Q. & Mei, S. Nonlinear decentralized controller design for multimachine power systems using Hamiltonian function method. Automatica 38, 527–534 (2002) – 10.1016/s0005-1098(01)00233-3