TY - JOUR
T1 - Design of a Three-Input, Single-Output DC–DC Converter for Electric Charging Station
AU - Vijayanathan, Sivaram Natarajan
AU - Anbazhagan, Lavanya
AU - Ali, Jagabar Sathik Mohamed
AU - Jayachandran, Divya Navamani
AU - Vishnuram, Pradeep
AU - Kalyan, CH. Naga Sai
AU - Abdullah, Mustafa
AU - Rathore, Rajkumar Singh
N1 - Publisher Copyright:
© 2025 by the authors.
PY - 2025/2/19
Y1 - 2025/2/19
N2 - This article presents a novel four-port DC–DC converter designed to integrate photovoltaics, fuel cells, and supercapacitors with one DC charging single-output port with a reduced component count. The proposed converter ensures an efficient power management strategy to manage the load power demand and optimize the power flow from the sources. The power management controller helps enhance the performance of the system by dynamically prioritizing the sources based on their availability and the demand of the load. A comprehensive reliability analysis is conducted to measure the converter’s robustness under varying load conditions, proving its suitability for real-world applications. The proposed topology’s performance was validated in three different scenarios for 1 kW using a simulation tool, and experiments in the laboratory were conducted. The failure rate and efficiency of the system are analyzed, and the converter promises a 96.5% efficiency for 1 kW and a failure rate of 4.6216 × 106 failures per hour. The simulation and experimental results validate the converter’s performance, highlighting its superior efficiency, reliability, and scalability.
AB - This article presents a novel four-port DC–DC converter designed to integrate photovoltaics, fuel cells, and supercapacitors with one DC charging single-output port with a reduced component count. The proposed converter ensures an efficient power management strategy to manage the load power demand and optimize the power flow from the sources. The power management controller helps enhance the performance of the system by dynamically prioritizing the sources based on their availability and the demand of the load. A comprehensive reliability analysis is conducted to measure the converter’s robustness under varying load conditions, proving its suitability for real-world applications. The proposed topology’s performance was validated in three different scenarios for 1 kW using a simulation tool, and experiments in the laboratory were conducted. The failure rate and efficiency of the system are analyzed, and the converter promises a 96.5% efficiency for 1 kW and a failure rate of 4.6216 × 106 failures per hour. The simulation and experimental results validate the converter’s performance, highlighting its superior efficiency, reliability, and scalability.
KW - energy management
KW - multiport converter
KW - reliability
UR - http://www.scopus.com/inward/record.url?scp=85218624254&partnerID=8YFLogxK
U2 - 10.3390/en18041005
DO - 10.3390/en18041005
M3 - Article
SN - 1996-1073
VL - 18
SP - 1005
JO - Energies
JF - Energies
IS - 4
M1 - 1005
ER -