Robust Finite Control-Set Model Predictive Control for Power Quality Enhancement of a Wind System Based on the DFIG Generator
Author:
Alami Houda El1, Bossoufi Badre1ORCID, Mahfoud Mohammed El1, Bouderbala Manale1ORCID, Majout Btissam1, Skruch Paweł2ORCID, Mobayen Saleh3ORCID
Affiliation:
1. Faculty of Sciences Dhar El Mahraz, Sidi Mohammed Ben Abdellah University, Fez 30070, Morocco 2. Department of Automatic Control and Robotics, AGH University of Science and Technology, 30-059 Kraków, Poland 3. Graduate School of Intelligent Data Science, National Yunlin University of Science and Technology, University Road, Section 3, Douliou 640301, Taiwan
Abstract
For many academics, it has proven difficult to operate a wind energy conversion system (WECS) under changeable wind speed while also enhancing the quality of the electricity delivered to the grid. In order to increase the effectiveness and performance of the DFIG-based Wind Energy Conversion System, this research suggests an updated model predictive control technique. This study intends to regulate the generator in two ways: first, to follow the reference wind speed with high precision using the rotor side and grid side converters; second, to reduce system error. The suggested approach optimizes a value function with current magnitude errors based on the discrete mathematical model to forecast the converter’s switching state. In this system, the converter switching states are used directly as control inputs. Thus, the converter may be immediately subjected to improved control action. The key advantage of the suggested strategy over current FCS-MPC methods is error reduction. The originality of this research is in the proposal of a cost function that allows for both successful results and computation time minimization. To achieve this, the system is first presented, followed by a description of the predictive control, and then this method is applied to the rotor side control and grid side control. To demonstrate the efficacy and robustness of the suggested technique, a random wind profile was used to examine the system’s performance with a unitary power factor. This was done in order to compare the results with other controls that have been reported in the literature. The simulation results, which were conducted using a 1.5 kW DFIG in the MATLAB/Simulink environment, demonstrate that the FCS-MPC technique is highly effective in terms of speed, accuracy, stability, and output current ripple.
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
Reference30 articles.
1. El Alami, H., Bossoufi, B., Motahhir, S., Alkhammash, E.H., Masud, M., Karim, M., Taoussi, M., Bouderbala, M., Lamnadi, M., and El Mahfoud, M. (2021). FPGA in the Loop Implementation for Observer Sliding Mode Control of DFIG-Generators for Wind Turbines. Electronics, 11. 2. Rooted tree optimization for the backstepping power control of a doubly fed induction generator wind turbine: dSPACE implementation;Bossoufi;IEEE Access,2021 3. El Mahfoud, M., Bossoufi, B., El Ouanjli, N., Mahfoud, S., Yessef, M., and Taoussi, M. (2021, January 29–30). Speed Sensorless Direct Torque Control of Doubly Fed Induction Motor Using Model Reference Adaptive System. Proceedings of the International Conference on Digital Technologies and Applications, Fez, Morocco. 4. Control of DFIG wind turbines;Ekanayake;Power Eng.,2003 5. Reactive power control strategies for DFIG-based plants;Kayikci;IEEE Trans. Energy Convers.,2007
Cited by
6 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|