Bus Voltage Stabilization of a Sustainable Photovoltaic-Fed DC Microgrid with Hybrid Energy Storage Systems

Author:

Uswarman Rudi1ORCID,Munawar Khalid1ORCID,Ramli Makbul A. M.1,Mehedi Ibrahim M.1ORCID

Affiliation:

1. Department of Electrical and Computer Engineering, King Abdulaziz University, Jeddah 21589, Saudi Arabia

Abstract

Renewable energy sources play a great role in the sustainability of natural resources and a healthy environment. Among these, solar photovoltaic (PV) systems are becoming more economically viable. However, as the utility of solar energy conversion systems is limited by the availability of sunlight, they need to be integrated with electrical energy storage systems to be more sustainable. This paper aims to improve the control performance of a hybrid energy storage system (HESS) with PV power generation as the primary power source. HESSs stabilize DC microgrid systems by compensating for demand generation mismatches. Batteries and supercapacitors are chosen as energy storage elements; batteries have a high energy density and are capable of supplying and absorbing energy over a long duration, while supercapacitors can store and deliver energy very quickly. To enhance the stability of the system, each storage element is connected to the DC bus using a bidirectional Ćuk converter, which offers high efficiency, a continuous current, and minimal switching losses. This study proposes a proportional–integral (PI) controller combined with the fast nonsingular integral terminal sliding mode control (FNITSMC) for HESSs to adjust the power balance in a DC microgrid. FNITSMC has the advantage of enhancing the system states to reach the equilibrium point of a long sliding surface with a fast convergence rate. The reference current for FNITSMC is obtained using a PI controller combined with a low-pass filter (LPF), which eliminates the peaking current spikes on the battery and diverts them towards the supercapacitor. The effectiveness of the proposed control scheme is validated through the real-time hardware-in-the-loop (HIL) simulations on Typhoon™ HIL-402 with added uncertainties, including load variations at various temperatures and irradiances.

Funder

Institutional Fund Projects

Publisher

MDPI AG

Reference55 articles.

1. REN21 (2023). Renewables 2023 Global Status Report Collection, Renewables in Energy Supply, REN21.

2. REN21 (2023). Renewables 2023 Global Status Report Collection, Renewables in Energy Demand, REN21.

3. Effect of various parameters on the performance of solar PV power plant: A review and the experimental study;Shaik;Sustain. Energy Res.,2023

4. Benefits of solar photovoltaic systems for low-income families in social housing of Korea: Renewable energy applications as solutions to energy poverty;Lee;J. Build. Eng.,2020

5. Maximum Power Point Controller for Large Scale Photovoltaic Power Plants Using Central Inverters under Partial Shading Conditions;Karanayil;IEEE Trans. Power Electron.,2018

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