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Article

Charger/Discharger with a Limited Current Derivative and Regulated Bus Voltage: A Simultaneous Converter-Controller Design

by
Carlos Andrés Ramos-Paja
1,
Elkin Edilberto Henao-Bravo
2 and
Sergio Ignacio Serna-Garcés
3,*
1
Facultad de Minas, Universidad Nacional de Colombia, Medellín 050041, Colombia
2
Departamento de Mecatrónica y Electromecánica, Institución Universitaria ITM, Medellín 050013, Colombia
3
Departamento de Electrónica y Telecomunicaciones, Institución Universitaria ITM, Medellín 050013, Colombia
*
Author to whom correspondence should be addressed.
Technologies 2026, 14(5), 257; https://doi.org/10.3390/technologies14050257
Submission received: 20 March 2026 / Revised: 19 April 2026 / Accepted: 22 April 2026 / Published: 25 April 2026
(This article belongs to the Special Issue Modeling, Design, and Control of Power Converters)

Abstract

This paper proposes a co-design methodology for the power and control stages of a bidirectional battery charger/discharger based on a boost converter topology. The approach ensures safe operation by limiting the battery current derivative, preventing abrupt transients that could degrade battery lifespan. The control strategy combines a cascade structure with an inner sliding mode current controller (for robustness and fast response) and an outer adaptive PI voltage loop (to regulate the DC-link voltage under varying load conditions). Additionally, the design constrains the switching frequency to reduce power losses. Experimental validation on a prototype converter demonstrates the effectiveness of the co-design framework, showing precise current/voltage regulation, adherence to switching frequency limits, and compliance with battery charging/discharging requirements. The results highlight the methodology’s potential to enhance efficiency and reliability in energy storage systems. The dynamic restrictions, overshoot lower than 5%, settling time shorter than 5 ms, and a battery current limitation less than 50 A/ms were always met with SMC and, in some cases, with the PI controller, but the results with SMC were always better: lower overshoot, shorter settling time, and greater restriction on the derivative of the battery current. In addition, the SMC system was 2.5–5.0% more efficient than the PI controller.
Keywords: adaptive control; bidirectional charger; boost converter; co-design; current derivative limitation; sliding mode control; switching frequency constraint adaptive control; bidirectional charger; boost converter; co-design; current derivative limitation; sliding mode control; switching frequency constraint

Share and Cite

MDPI and ACS Style

Ramos-Paja, C.A.; Henao-Bravo, E.E.; Serna-Garcés, S.I. Charger/Discharger with a Limited Current Derivative and Regulated Bus Voltage: A Simultaneous Converter-Controller Design. Technologies 2026, 14, 257. https://doi.org/10.3390/technologies14050257

AMA Style

Ramos-Paja CA, Henao-Bravo EE, Serna-Garcés SI. Charger/Discharger with a Limited Current Derivative and Regulated Bus Voltage: A Simultaneous Converter-Controller Design. Technologies. 2026; 14(5):257. https://doi.org/10.3390/technologies14050257

Chicago/Turabian Style

Ramos-Paja, Carlos Andrés, Elkin Edilberto Henao-Bravo, and Sergio Ignacio Serna-Garcés. 2026. "Charger/Discharger with a Limited Current Derivative and Regulated Bus Voltage: A Simultaneous Converter-Controller Design" Technologies 14, no. 5: 257. https://doi.org/10.3390/technologies14050257

APA Style

Ramos-Paja, C. A., Henao-Bravo, E. E., & Serna-Garcés, S. I. (2026). Charger/Discharger with a Limited Current Derivative and Regulated Bus Voltage: A Simultaneous Converter-Controller Design. Technologies, 14(5), 257. https://doi.org/10.3390/technologies14050257

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