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Research Articles

Sliding Mode Controller with Disturbance Rejection for Bidirectional Transformerless AC/DC Converter in EV Onboard Charger

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Pages 1367-1384 | Received 03 Mar 2022, Accepted 01 Apr 2023, Published online: 25 Apr 2023
 

Abstract

Transformerless power converters are trending in automotive sector as the demand for onboard chargers rises. The high efficiency and leakage current mitigating property of highly efficient and reliable inverter concept (HERIC) converter make it an excellent choice among transformerless topologies. By using appropriate modulation technique, the HERIC converter can transmit bidirectional power. This article presents design of sliding mode controller (SMC) for bidirectional HERIC converter to enhance the tracking performance. The SMC parameters are selected utilizing Harris hawks optimization (HHO) algorithm. During vehicle-to-grid (V2G) operation, sliding mode controller is developed for reactive power regulation of the grid connected HERIC converter and for grid-to-vehicle (G2V) operation, the converter is operated with very low voltage ripples in the DC side. The stability analysis is done by considering model uncertainties to guarantee sinusoidal grid current, low THD, and unity power factor even in the presence of grid disturbances and parametric variations. The Typhoon Hardware in the Loop (HIL) 402 device is used to execute the real-time testing. The results confirmed the efficacy and robustness of the designed controller under different scenarios for both modes of operation.

Additional information

Funding

This study was supported by All India Council for Technical Education.

Notes on contributors

Kanthi Mathew K

Kanthi Mathew K received B.Tech (2006) degree in Electrical Engineering from Amal Jyothi College of Engineering, Kottayam, India and M.Tech (2009) degree from Rajiv Gandhi Institute of Technology, Kottayam, India. She is currently pursuing her Ph.D. degree in Electrical Engineering at Rajiv Gandhi Institute of Technology, India. Her research areas include power electronics, control system and optimization algorithms.

Dolly Mary Abraham

Dolly Mary Abraham received B.E (1996) degree in Electrical Engineering from Thiagarajar College of Engineering, Madurai, India, M.Tech (2007) and Ph.D (2014) degrees from National Institute of Technology, Calicut, India. She is currently a Professor in Electrical Engineering Department of Rajiv Gandhi Institute of Technology, Kottayam, India. Her research areas include control system, power electronics and optimization algorithms.

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