Modern DC–DC Power Converter Topologies and Hybrid Control Strategies for Maximum Power Output in Sustainable Nanogrids and Picogrids—A Comprehensive Survey

Author:

Ganguly Anupama1,Biswas Pabitra Kumar1,Sain Chiranjit2ORCID,Ustun Taha Selim3ORCID

Affiliation:

1. National Institute of Technology Mizoram, Aizawl 796012, India

2. Ghani Khan Choudhury Institute of Engineering and Technology, Malda 732141, India

3. Fukushima Renewable Energy Institute, AIST (FREA), Koriyama 9630298, Fukushima, Japan

Abstract

Sustainable energy exhibited immense growth in the last few years. As compared to other sustainable sources, solar power is proved to be the most feasible source due to some unanticipated characteristics, such as being clean, noiseless, ecofriendly, etc. The output from the solar power is entirely unpredictable since solar power generation is dependent on the intensity of solar irradiation and solar panel temperature. Further, these parameters are weather dependent and thus intermittent in nature. To conquer intermittency, power converters play an important role in solar power generation. Generally, photovoltaic systems will eventually suffer from a decrease in energy conversion efficiency along with improper stability and intermittent properties. As a result, the maximum power point tracking (MPPT) algorithm must be incorporated to cultivate maximum power from solar power. To make solar power generation reliable, a proper control technique must be added to the DC–DC power converter topologies. Furthermore, this study reviewed the progress of the maximum power point tracking algorithm and included an in-depth discussion on modern and both unidirectional and bidirectional DC–DC power converter topologies for harvesting electric power. Lastly, for the reliability and continuity of the power demand and to allow for distributed generation, this article also established the possibility of integrating solar PV systems into nanogrids and picogrids in a sustainable environment. The outcome of this comprehensive survey would be of strong interest to the researchers, technologists, and the industry in the relevant field to carry out future research.

Publisher

MDPI AG

Subject

Computer Science (miscellaneous)

Reference149 articles.

1. IEA (2019). Policies and Measures, India, National Action Plan on Climate Change, IEA.

2. Advanced Grid Integration Test Platform for Increased Distributed Renewable Energy Penetration in Smart Grids;Hashimoto;IEEE Access,2021

3. Optimal PV-INV Capacity Ratio for Residential Smart Inverters Operating under Different Control Modes;Ustun;IEEE Access,2020

4. Kumar, P., Singh, S., Ali, I., and Ustun, T.S. (2018). Handbook of Research on Power and Energy System Optimization, IGI Global.

5. IEA (2019). Policies and Measure, India, National Mission for Enhanced Energy Efficiency (NMEEE), IEA.

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