Sep 2026· International Journal of Power Electronics and Drive Systems (IJPEDS)· 0 citations· 32 references
Abstract
The increasing deployment of doubly-fed induction generator (DFIG)-based wind energy systems (WESs) requires effective voltage regulation and power-quality enhancement under varying operating conditions. This paper proposes a coordinated voltage regulation and load-compensation technique using a rotor-side converter (RSCR) and a stator-side series converter (SSSCR). The RSCR provides two-directional slip-power control through cascaded voltage and current control loops, while the SSSCR provides series voltage injection for voltage regulation and load compensation. The proposed system is developed in MATLAB/Simulink and validated using an OPAL-RT OP4512 real-time platform under variable wind speed, unbalanced and non-linear loading, and voltage sag/swell conditions. Quantitative results show reductions in overall current total harmonic distortion (THD) of 25.34% and 36.78% under non-linear and unbalanced load conditions, respectively. The voltage regulation error is reduced from 9% to 3%, while the settling time decreases from 0.24 s to 0.12 s under non-linear loading. The proposed configuration also reduces the voltage overshoot from 2.61% to 0.02% during speed transition. These results demonstrate the effectiveness of the coordinated RSCR-SSSCR configuration for simultaneous voltage regulation and load compensation.
Direct current (DC)-link voltage sensor faults in wind energy conversion systems (WECSs) based on a doubly fed induction generator (DFIG) may lead to severe operational issues and potentially affect overall performance. Ensuring efficiency, reliability, and longevity under such conditions requires a comprehensive analy...
This paper presents a comprehensive analysis and design of an enhanced control framework for offshore wind turbine generators (WTGs) equipped with permanent-magnet synchronous generators (PMSGs) and full-scale power converters. The proposed strategy integrates Model Predictive Control (MPC) for maximum power point trac...
Baizhanov K. A., Issenov S. S.· IOP Conference Series: Earth...· 0 citations
The large-scale integration of wind power reduces overall system inertia, leading to increased vulnerability in transient stability. This paper presents a coordinated control strategy combining a DFIG-based wind turbine, a midpoint Static Synchronous Compensator (STATCOM), and a Power System Stabilizer (PSS) to enhance...
Neha, Veena Sharma, R. Sharma et al.· Journal of Electrical System...· 0 citations
This paper presents a time-domain simulation study of dynamic reactive power compensation for voltage stability in a wind-integrated power system. A 50 MW doubly-fed induction generator (DFIG) wind farm is connected at bus 9 of the IEEE 14-bus network, comparing two technologies: a Static Synchronous Compensator (STATC...
K. H. Chalok, K. H. Kadhim· Ecological Engineering &...· 0 citations
Grid-forming doubly fed induction generator (DFIG) systems integrated with flywheel energy storage systems (FESSs), hereafter referred to as FESS-DFIG systems, must be designed to provide rapid frequency support while maintaining DC-link voltage stiffness and respecting rotor-speed limits under finite kinetic-energy re...
Su-Li Zhang, Gui-Lin Zhang, Dan Zhou et al.· Designs· 0 citations
Power-electronic converter control is a key issue in the weak-grid integration of doubly fed induction generator (DFIG)-based offshore wind farms. In conventional fixed-reference DFIG control, the rotor-side power command is usually treated as a tracking target, although its suitability may change with the present poin...
Lei Yu, Yong-Jin Chen, Qiao-Yun Xu et al.· Electronics· 0 citations
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