Nonlinear Voltage Regulation of an Auxiliary Energy Storage of a Multiport Interconnection (2403.19901v1)
Abstract: In this article, we propose a nonlinear voltage control to ensure power exchange in a multiport interconnected system, which consists of a bidirectional DC-DC converter and generating-storing devices. The converter topology under consideration is two-stage, composed of an interconnection of a buck with a boost converter. The motivation for this work is the explosive increase in the use of DC-DC converters due to the massification of renewable energies, electric vehicles powertrains, and energy storage systems, where fuel cells or batteries can be used as power backup or high-power support during transient phenomena. The converter's voltage step-up and step-down capabilities allow the use of supercapacitors with voltage limits that exceed those required by the load, thus enabling its use in a broader range of applications. The control design for this system does not correspond to that in standard applications involving power converters. As it is known, the latter consists of finding a control law such that the closed-loop system has an asymptotically stable equilibrium point fulfilling the voltage regulation objectives. Instead, in this application, the state does not tend to an equilibrium value in order for the system to be regulated. The converter voltage is regulated at desired some setpoint whereas the other variables are only required to be bounded. To achieve a dynamic response that best adapts to changes in system demand and ensure stability over the defined wide operating range we propose a novel control strategy that exploits the partially cascaded structure of the system. Numerical and experimental results validate our approach.
- C. A. Desoer and M. Vidyasagar. Feedback systems: Input-Output Properties. SIAM, 1 edition, 2009.
- A hamiltonian viewpoint in the modeling of switching power converters. Automatica, 35(9):445–452, 1999.
- H. Khalil. L2subscript𝐿2L_{2}italic_L start_POSTSUBSCRIPT 2 end_POSTSUBSCRIPT–Gain and Passivity Techniques in Nonlinear Control. Springer, 2 edition, 2016.
- Hybrid battery/supercapacitor energy storage system for the electric vehicles. Journal of Power Sources, 374, 2018.
- M. G. Molina. Energy storage and power electronics technologies: A strong combination to empower the transformation to the smart grid. Proceedings of the IEEE, 105(11):2191–2219, 2017.
- Control of energy storage system integrating electrochemical batteries and supercapacitors for grid-connected applications. IEEE Transactions on Industry Applications, 55(2):1853–1862, 2019.
- The battery-supercapacitor hybrid energy storage system in electric vehicle applications: A case study. Automatica, 154, 2018.
- Comparative study of fuel-cell vehicle hybridization with battery or supercapacitor storage device. IEEE Transactions on Vehicular Technology, 8(58):3892 – 3904, 2009.
- Control strategy of fuel cell/supercapacitors hybrid power sources for electric vehicle. Journal of Power Sources, 158(1):806–814, 2006.
- A methodology for sizing backup fuel-cell/battery hybrid power systems. IEEE Transactions on Industrial Electronics, 57(6):1964–1975, 2010.
- Photovoltaic power system with battery backup with grid-connection and islanded operation capabilities. IEEE Transactions on Industrial Electronics, 60(4):1571–1581, 2013.
- A review of power electronics for grid connection of utility-scale battery energy storage systems. IEEE Transactions on Sustainable Energy, 7(4):1778 – 1790, 2016.
- Energy storage system: Current studies on batteries and power condition system. Renewable and Sustainable Energy Reviews, 82, 2018.
- Hybrid battery/supercapacitor energy storage system for the electric vehicles. Renewable and Sustainable Energy Reviews, 81, 2018.