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April 12, 2026Mathematics0 citationsOpen Access

Robust Voltage Stability Enhancement of DFIG Systems Using Deadbeat-Controlled STATCOM and ADRC-Based Supercapacitor Support

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ANAhmed Muthanna NoriAAAli AbdulabbasOAOmar Alrumayh

Key Points

  • The research aims to improve voltage stability and Fault Ride-Through capability in DFIG-based wind energy systems under grid disturbances.
  • Proposed a coordinated control framework combining deadbeat-controlled STATCOM and cascaded ADRC-based SCES.
  • Conducted MATLAB/Simulink simulations for various grid disturbance scenarios.
  • Compared the proposed method's performance against traditional SVC and PI-based controllers.
  • Deadbeat-controlled STATCOM reduced voltage undershoot from 0.125 p.u. to 0.04 p.u. during a 20% sag.
  • Achieved an overshoot of 0.02 p.u. under severe 80% voltage sag, outperforming SVC and PI-based controllers.
  • Cascaded ADRC-based SCES limited DC-link voltage fluctuations to 6 V overshoot and 2 V undershoot under 80% sag.

Abstract

The increasing penetration of Doubly Fed Induction Generator (DFIG)-based wind energy systems raises major concerns regarding voltage stability and Fault Ride-Through (FRT) capability under grid disturbances and wind speed variations. This paper proposes a coordinated control framework for a grid-connected DFIG system, where a Static Synchronous Compensator (STATCOM) based on discrete-time deadbeat current control is integrated with a Supercapacitor Energy Storage System (SCES) connected to the DC link through a bidirectional DC-DC converter governed by cascaded Active Disturbance Rejection Control (ADRC). The deadbeat-controlled STATCOM provides fast reactive current injection for voltage support during sag and swell events, while the cascaded ADRC enhances DC-link voltage regulation and suppresses rotor-speed oscillations. Comprehensive MATLAB/Simulink simulations are carried out under variable wind speed and severe grid disturbances up to 80% voltage sag and 50% voltage swell. For voltage regulation, the proposed method is compared with SVC and PI-based STATCOM. In addition, SCES control performance is evaluated by comparing PI, single ADRC, and cascaded ADRC in terms of DC-link voltage overshoot, undershoot, and ripple. The results show clear improvements in voltage response and transient performance. Under a 20% voltage sag, the proposed deadbeat-controlled STATCOM significantly improves the dynamic response, where the undershoot is reduced from 0.125 p.u. (with SVC) to 0.04 p.u., and the settling time is shortened from 0.04 s to 0.025 s. Under a severe 80% sag, the overshoot is limited to 0.02 p.u., compared with 0.13 p.u. for the SVC and 0.15 p.u. for the PI-based STATCOM. Similarly, under a 50% voltage swell, the overshoot is reduced to 0.20 p.u., compared with 0.46 p.u. for the SVC and 0.27 p.u. for the PI-based STATCOM. Regarding the DC-link performance under 80% sag, the proposed cascaded ADRC-based SCES limits the overshoot and undershoot to 6 V and 2 V, respectively, compared with 39 V and 32 V for the PI-based SCES. These results confirm the superior damping, disturbance rejection, and FRT enhancement achieved by the proposed strategy.

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Cite This Study

Nori et al. (2026) studied this question.

synapsesocial.com/papers/69db37964fe01fead37c58f7https://doi.org/10.3390/math14081254
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