Optimization of Solar Hybrid Power Generation Using Conductance-Fuzzy Dual-Mode Control Method

Author:

Ramesh S.1ORCID,Seetha J.2,Ramkumar G.3ORCID,Sahoo Satyajeet4,Amirthalakshmi T. M.5,Ranjith A.6ORCID,Seikh Asiful H.7,Khan Mohammed Sohail M. A.8,Subbiah Ram9

Affiliation:

1. Department of Electronics and Communication Engineering, St. Mother Theresa College of Engineering, Vagaikulam-628102 Tamilnadu, India

2. Department of Computer Science, SRM Institute of Science And Technology, Ramapuram, Chennai-600 089, Tamil Nadu, India

3. Department of Electronics and Communication Engineering, Saveetha School of Engineering, SIMATS, Chennai 602 105, Tamil Nadu, India

4. Department of Electronics and Communication Engineering, Vignan’s Foundation for Science, Technology and Research (Deemed to be University), Vadlamudi, Guntur, Andra Pradesh-522213, India

5. Department of Electronics and Communication Engineering, SRM Institute of Science And Technology, Ramapuram, Chennai-600 089, Tamil Nadu, India

6. Department of Electronics and Communication Engineering, St.Joseph University in Tanzania, Dar es Salaam, Tanzania

7. Department of Mechanical Engineering, College of Engineering, King Saud University, P.O. Box 800, Al-Riyadh 11421, Saudi Arabia

8. Department of Mechanical and Industrial Engineering, Ryerson University, Toronto, M5B 2K3, Ontario, Canada

9. Department of Mechanical Engineering, Gokaraju Rangaraju Institute of Engineering and Technology, 500090, Nizampet, Hyderabad, India

Abstract

The functioning of a solar hybrid power system is investigated in this research using a unique fuzzy control method. Turbines, solar photovoltaics, diesel engines, fuel cells, aqua-electrolyzes, and other autonomous generation products are used in the hybrid renewable energy system. Further energy storage components of the system include the batteries, turbine, and ultracapacitor. This research incorporates a supercapacitor hybrid energy storage system (HESS) into a solar hybrid power generating system, allowing the consumption and energy storage space and power output to be significantly increased. This study’s approach incorporates a decentralized power generation system with a HESS while increasing electrical output in phases utilizing a dynamic reactive power compensation scheme and a conductance-fuzzy dual-mode control strategy. Due to a nonlinear behavior of photovoltaic (PV) devices’ power output, maximum power point tracking (MPPT) methods must be used to create the greatest power. Infrequently developing atmospheric circumstances, traditional MPPT algorithms do not work adequately. Modeling is used to determine the microgrid’s power output to the photovoltaic hybrid power generating organization, as well as the optimization method for each device in the network. The dynamic power factor correction scheme and also the conductance-fuzzy dual-mode control approach are primarily used in this study to optimize the solar hybrid renewable energy system.

Funder

King Saud University

Publisher

Hindawi Limited

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment,Atomic and Molecular Physics, and Optics,General Chemistry

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