Performance Improvement of Grid-Integrated Doubly Fed Induction Generator under Asymmetrical and Symmetrical Faults

Author:

Soomro Mansoor1ORCID,Memon Zubair Ahmed1,Baloch Mazhar Hussain2ORCID,Mirjat Nayyar Hussain1,Kumar Laveet3ORCID,Tran Quynh T.45ORCID,Zizzo Gaetano6ORCID

Affiliation:

1. Department of Electrical Engineering, Mehran University of Engineering and Technology, Jamshoro 76062, Sindh, Pakistan

2. Department of Electronics and Communication Engineering, College of Engineering, A’Sharqiyah University, Ibra 400, North Sharqiyah Region, Oman

3. Department of Mechanical Engineering, Mehran University of Engineering and Technology, Jamshoro 76062, Sindh, Pakistan

4. Hawaii Natural Energy Institute, University of Hawaii at Manoa, Honolulu, HI 96822, USA

5. Institute of Energy Science—Vietnam Academy of Science and Technology, 18 Hoang Quoc Viet, Cau Giay, Hanoi 10072, Vietnam

6. Department of Engineering, University of Palermo, 90128 Palermo, Italy

Abstract

The doubly fed induction generator (DFIG)-based wind energy conversion system (WECS) suffers from voltage and frequency fluctuations due to the stochastic nature of wind speed as well as nonlinear loads. Moreover, the high penetration of wind energy into the power grid is a challenge for its smooth operation. Hence, symmetrical faults are most intense, inflicting the stator winding to low voltage, disturbing the low-voltage ride-through (LVRT) functionality of a DFIG. The vector control strategy with proportional–integral (PI) controllers was used to control rotor-side converter (RSC) and grid-side converter (GSC) parameters. During a symmetrical fault, however, a series grid-side converter (SGSC) with a shunt injection transformer on the stator side was used to keep the rotor current at an acceptable level in accordance with grid code requirements (GCRs). For the validation of results, the proposed scheme of PI + SGSC is compared with PI and a combination of PI with Dynamic Impedance Fault Current Limiter (DIFCL). The MATLAB simulation results demonstrate that the proposed scheme provides superior performance by providing 77.6% and 20.61% improved performance in rotor current compared to that of PI and PI + DIFCL control schemes for improving the LVRT performance of DFIG.

Publisher

MDPI AG

Subject

Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction

Reference39 articles.

1. Chaudhuri, A., Datta, R., Kumar, M.P., Davim, J.P., and Pramanik, S. (2022). Energy Conversion Strategies for Wind Energy System: Electrical, Mechanical and Material Aspects. Materials, 15.

2. Solar–wind hybrid renewable energy system: A review;Khare;Renew. Sustain. Energy Rev.,2016

3. Council, G.W.E. (2023, March 05). GWEC|Global Wind Report 2021. Available online: https://gwec.net/global-wind-report-2021/.

4. Limitations, challenges, and solution approaches in grid-connected renewable energy systems;Basit;Int. J. Energy Res.,2020

5. Technical impacts of high penetration levels of wind power on power system stability;Flynn;Wiley Interdiscip. Rev. Energy Environ.,2017

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