Novel QUASC–CI converter with HEO-PI controller for hybrid renewable microgrid application

The changeover towards resilient and sustainable energy infrastructures has emphasized the integration of Renewable Energy Sources (RESs) into the hybrid microgrids. Still, the non-linear and intermittent behavior of RESs poses issues, in maintaining a stabilized DC bus voltage and grid support. In this research, a hybrid microgrid system is proposed with a novel Quadratic Ultra-Gain Switched-Capacitor Coupled Inductor (QUASC CI) and an optimized controller to address the instabilities. The Photovoltaic (PV) system is incorporated with a QUASC CI converter, offering extended gain in voltage at reduced duty ratios, with minimized stress and losses. On the other hand, for regulation of converter, Hare Escape Optimized Proportional Integral (HEO-PI) controller is introduced. The microgrid system, also incorporates Doubly Fed Induction Generator (DFIG), battery and grid interface, guaranteeing that the developed hybrid system effectively manages fluctuating renewable generation, delivering smoother power to load and supporting grid compliance. MATLAB studies prove that the QUASC CI converter in combination with HEO-PI controller offers superior converter efficiency of 96.49%, improved voltage gain, faster response of 0.15 s and reduced harmonic distortion, while confirming continuous grid integration.

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Publication Details

Journal
Electric Power Systems Research
Published
2026-09-18
DOI
https://doi.org/10.1016/j.epsr.2026.114183
Primary Topic
Microgrid Control and Optimization
Type
article
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Novel QUASC–CI converter with HEO-PI controller for hybrid renewable microgrid application

S. Anish, M. Balasubramanian, C.Gnana Thilaka, Sengottaian S
Electric Power Systems Research
Microgrid Control and Optimization
article

Novel QUASC–CI converter with HEO-PI controller for hybrid renewable microgrid application

S. Anish, M. Balasubramanian, C.Gnana Thilaka, Sengottaian S
article en

Abstract

The changeover towards resilient and sustainable energy infrastructures has emphasized the integration of Renewable Energy Sources (RESs) into the hybrid microgrids. Still, the non-linear and intermittent behavior of RESs poses issues, in maintaining a stabilized DC bus voltage and grid support. In this research, a hybrid microgrid system is proposed with a novel Quadratic Ultra-Gain Switched-Capacitor Coupled Inductor (QUASC CI) and an optimized controller to address the instabilities. The Photovoltaic (PV) system is incorporated with a QUASC CI converter, offering extended gain in voltage at reduced duty ratios, with minimized stress and losses. On the other hand, for regulation of converter, Hare Escape Optimized Proportional Integral (HEO-PI) controller is introduced. The microgrid system, also incorporates Doubly Fed Induction Generator (DFIG), battery and grid interface, guaranteeing that the developed hybrid system effectively manages fluctuating renewable generation, delivering smoother power to load and supporting grid compliance. MATLAB studies prove that the QUASC CI converter in combination with HEO-PI controller offers superior converter efficiency of 96.49%, improved voltage gain, faster response of 0.15 s and reduced harmonic distortion, while confirming continuous grid integration.

Electric Power Systems ResearchVol. 265
Tirunelveli Medical College (IN), Government of Tamil Nadu (IN), Anna University, Chennai (IN), SRM University, Andhra Pradesh (IN)
Industry, innovation and infrastructure
Openalex Percentile: Top 15%
Microgrid Control and Optimization
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Novel QUASC–CI converter with HEO-PI controller for hybrid renewable microgrid application — S. Anish, M. Balasubramanian, et al. · Electric Power Systems Research (2026) | TGRS Research Map | TGRS