Robust super-twisting algorithm-based single-phase sliding mode frequency controller in power systems integrating wind turbines and energy storage systems

dc.contributor.authorHuynh Van Khang
dc.contributor.authorSyed Mohsen Naqvi
dc.contributor.authorBang Le-Huy Nguyen
dc.contributor.authorAnh Tran
dc.contributor.authorJae Woong Shim
dc.contributor.authorTon Duc
dc.date.accessioned2025-08-26T11:24:09Z
dc.date.available2025-08-26T11:24:09Z
dc.date.issued2025-06-05
dc.description.abstractFrequency regulation in multi-area power systems (MPSs) faces increasing challenges due to the integration of renewable energy sources, such as wind power, and the dynamic behavior of energy storage systems (ESSs). These challenges are further compounded by disturbances from tie-line power exchanges, wind power fluctuations, and variations in battery and flywheel storage. To address this, this paper proposes a robust sliding mode control (SMC) strategy based on a proportional-derivative sliding surface (PD-SS) structure for load frequency control (LFC), leveraging a single-phase approach enhanced by an improved super-twisting algorithm (ISTA). A reduced-order LFC model is introduced to effectively characterize the frequency dynamics. The proposed model explicitly considers lumped disturbances including tie-line power exchanges, wind power fluctuations, and power variations in ESSs of battery and flywheel. A novel SMC scheme is therefore designed based on the simplified model, where the PD-SS structure and single-phase approach eliminate reaching time, ensure immediate trajectory convergence and improve transient performance. An improved super-twisting control law is developed to further enhance robustness by effectively mitigating chattering and oscillation in system dynamics under uncertainties. The global stability of the proposed control strategy is mathematically verified via Lyapunov stability theory. Simulation results under step and stochastic load variations show that the proposed method achieves up to 56% and 84.5% reduction in overshoot compared to PD and PI SMC schemes, respectively, along with a 54.5% improvement in settling time over the PI SMC scheme, thereby confirming its enhanced performance and robustness relative to existing control strategies.en
dc.identifier.citationHuynh Van Van, Naqvi Shahalam, Nguyen Bang Le-Huy, Tran Anh-Tuan, Shim Jae Woong, Do Ton Duc. (2025). Robust super-twisting algorithm-based single-phase sliding mode frequency controller in power systems integrating wind turbines and energy storage systems. Scientific Reports. https://doi.org/10.1038/s41598-025-01407-2en
dc.identifier.doi10.1038/s41598-025-01407-2
dc.identifier.urihttps://doi.org/10.1038/s41598-025-01407-2
dc.identifier.urihttps://nur.nu.edu.kz/handle/123456789/10247
dc.language.isoen
dc.publisherSpringer Science and Business Media LLC
dc.rightsAll rights reserveden
dc.source(2025)en
dc.subjectWind poweren
dc.subjectComputer scienceen
dc.subjectController (irrigation)en
dc.subjectEnergy storageen
dc.subjectControl theory (sociology)en
dc.subjectMode (computer interface)en
dc.subjectEnergy (signal processing)en
dc.subjectPower (physics)en
dc.subjectSliding mode controlen
dc.subjectAutomatic frequency controlen
dc.subjectPhase (matter)en
dc.subjectAlgorithmen
dc.subjectControl (management)en
dc.subjectEngineeringen
dc.subjectElectrical engineeringen
dc.subjectArtificial intelligenceen
dc.subjectMathematicsen
dc.subjectPhysicsen
dc.subjectTelecommunicationsen
dc.subjectAgronomyen
dc.subjectStatisticsen
dc.subjectQuantum mechanicsen
dc.subjectNonlinear systemen
dc.subjectBiologyen
dc.subjectOperating system; type of access: open accessen
dc.titleRobust super-twisting algorithm-based single-phase sliding mode frequency controller in power systems integrating wind turbines and energy storage systemsen
dc.typearticleen

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