PWM-Based Current-Sensorless Adaptive Sliding-Mode Control for the Boost Converter with Constant Power Load
- 1 Department of Engineering Technology, Northern Illinois University, DeKalb, IL, USA
- 2 Department of Engineering Technology, Northern Illinois University, DeKalb, IL, USA
Abstract
The boost converter feeding a constant power load (CPL) is a non-minimum phase system that is prone to the destabilizing effects of the negative incremental resistance of the CPL and presents a major challenge in the design of stabilizing controllers. Numerous studies in the design of stabilizing controllers have been proposed with the overwhelming majority of them requiring measurements of the inductor current for their implementation. To the best knowledge of the authors, very few studies in the literature have dealt with current-sensorless control of the DC-DC boost converters with CPL. In this work, a simple adaptive controller that relies only on the output voltage measurements for its design and implementation is introduced. A Luenberger-type observer is developed to estimate the inductor current and the output load power. A linear sliding surface is used to derive the controller that is simple in its design and yet exhibits excellent features in terms of robustness to external disturbances, parameter uncertainties, and parasitics. Also, a simple procedure to select the controller gains is outlined. The robustness of the controller is validated by computer simulations.
- Singh, S., Rathore, N. and Fulwani, D. (2016) Mitigation of Negative Impedance Instabilities in a DC/DC Buck-Boost Converter with Composite Load. Journal of Power Electronics , 16, 1046-1055. https://doi.org/10.6113/jpe.2016.16.3.1046
- He, W., Ortega, R., Machado, J.E. and Li, S. (2018) An Adaptive Passivity-Based Controller of a Buck-Boost Converter with a Constant Power Load. Asian Journal of Control , 21, 581-595. https://doi.org/10.1002/asjc.1751
- He, W., Soriano-Rangel, C.A., Ortega, R., Astolfi, A., Mancilla-David, F. and Li, S. (2018) Energy Shaping Control for Buck-Boost Converters with Unknown Constant Power Load. Control Engineering Practice , 74, 33-43. https://doi.org/10.1016/j.conengprac.2018.02.006
- Martinez-Trevino, B.A., El Aroudi, A., Vidal-Idiarte, E., Cid-Pastor, A. and Mar-tinez-Salamero, L. (2019) Sliding-Mode Control of a Boost Converter under Constant Power Loading Conditions. IET Power Electronics , 12, 521-529.
- Soriano-Rangel, C.A., He, W., Mancilla-David, F. and Ortega, R. (2021) Voltage Regulation in Buck-Boost Converters Feeding an Unknown Constant Power Load: An Adaptive Passivity-Based Control. IEEE Transactions on Control Systems Technology , 29, 395-402. https://doi.org/10.1109/tcst.2019.2959535
- Martinez-Trevino, B.A., Aroudi, A.E., Valderrama-Blavi, H., Cid-Pastor, A., Vidal-Idiarte, E. and Martinez-Salamero, L. (2021) PWM Nonlinear Control with Load Power Estimation for Output Voltage Regulation of a Boost Converter with Constant Power Load. IEEE Transactions on Power Electronics , 36, 2143-2153. https://doi.org/10.1109/tpel.2020.3008013
- Riffo, S., Gil-González, W., Montoya, O.D., Restrepo, C. and Muñoz, J. (2022) Adaptive Sensorless Pi+Passivity-Based Control of a Boost Converter Supplying an Unknown CPL. Mathematics , 10, Article No. 4321. https://doi.org/10.3390/math10224321
- He, W. and Shang, Y. (2022) Finite-Time Parameter Observer-Based Sliding Mode Control for a DC/DC Boost Converter with Constant Power Loads. Electronics , 11, Article No. 819. https://doi.org/10.3390/electronics11050819
- Oucheriah, S. (2022) Nonlinear Control of the Boost Converter Subject to Unknown Constant Power Load and Parasitics. International Journal of Electronics Letters , 11, 30-40. https://doi.org/10.1080/21681724.2021.2025438
- Gil-González, W., Riffo, S., Montoya, O.D., Restrepo, C. and Hernández, J.C. (2023) Adaptive Voltage Control for Second-Order DC-DC Converters Supplying an Unknown Constant Power Load: A Generalized PBC Plus Damping Injection Design. IEEE Access , 11, 47390-47409. https://doi.org/10.1109/access.2023.3275083