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March 14, 2026Energies0 citationsOpen Access

Nonlinear Robust Excitation Controller Design for Synchronous Generators Using Improved Slime Mould Algorithm

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LZLiyang ZhangChina Guodian Corporation (China)XLXia LiChina Guodian Corporation (China)ZSZhuoli SongChina Guodian Corporation (China)

Key Points

  • The central aim is to develop a nonlinear robust excitation controller to stabilize synchronous generators in power systems.
  • Developed a nonlinear dynamic model of the excitation system based on electromechanical coupling of synchronous generators.
  • Transformed the model into linear state-space form via feedback linearization.
  • Constructed a controller design framework with linear matrix inequality constraints satisfying H∞ performance indicators; optimized using an improved slime mould algorithm.
  • The proposed controller shows superior transient response speed compared to traditional strategies.
  • Achieved improved steady-state regulation accuracy under various conditions.
  • Enhanced robust performance is observed when facing parameter perturbations and disturbances.

Abstract

This paper proposes a nonlinear robust H∞ excitation controller based on an improved slime mould optimization algorithm (ISMA) to enhance the stability and anti-disturbance performance of synchronous generators (SGs) in power systems. First, a nonlinear dynamic model of the excitation system (ES) is established based on the electromechanical coupling mechanism of SGs, and it is transformed into an equivalent linear state-space form through feedback linearization. Subsequently, a controller design framework with linear matrix inequality (LMI) constraints satisfying H∞ performance indicators is constructed, and ISMA is utilized to optimize the key design parameters, thereby balancing dynamic response and control robustness. Simulation results demonstrate that, compared with traditional excitation control strategies, the proposed method exhibits superior comprehensive performance in terms of transient response speed, steady-state regulation accuracy, and robust performance under parameter perturbations and disturbance conditions. The research results can provide a technical reference for achieving safe and stable operation of SGs in power grids.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69b4ba3618185d8a398030a3https://doi.org/10.3390/en19061414
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