PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 15, 2026Energies2 citationsOpen Access

An Intelligent Hybrid PIDF Enhanced by a Fuzzy Fractional-Order Controller for Robust Load Frequency Regulation in a Two-Area Interconnected Power System

View Full Paper
SASaleh AlmutairiFAFatih AnayiMPMichael Packianather

Key Points

  • This research aims to enhance load frequency control using a hybrid approach with fuzzy logic in power systems.
  • Developed a hybrid load frequency control scheme with fuzzy fractional-order controller within a PIDF framework.
  • Optimized parameters using Dwarf Mongoose Optimization Algorithm and Catch Fish Optimization Algorithm.
  • Assessed performance using Integral of Time-Weighted Absolute Error under linear and nonlinear scenarios.
  • Achieved an ITAE of 0.02939 with DMOA and a settling time of 13.5478 s in linear conditions.
  • CFOA produced an ITAE of 0.03937 with a settling time of 14.4947 s under linear conditions.
  • Under GDB nonlinearity, DMOA yielded an ITAE of 0.1098 with a settling time of 19.0416 s, while CFOA had lower ITAE of 0.05845 and a settling time of 16.3595 s.

Abstract

Maintaining frequency regulation in interconnected power systems becomes increasingly difficult in the presence of nonlinear operating conditions. To address this issue, this study develops a hybrid load frequency control scheme in which a fuzzy fractional-order FOPI–FOPD controller is incorporated within a PIDF framework for a two-area LFC system. The controller parameters are optimized using the Dwarf Mongoose Optimization Algorithm (DMOA) and the Catch Fish Optimization Algorithm (CFOA), while the Integral of Time-Weighted Absolute Error (ITAE) is adopted as the performance criterion. The proposed strategy is examined under both linear and nonlinear scenarios, including the effects of Governor Dead Band (GDB) and Generation Rate Constraints (GRC). In the linear case, the DMOA-based design achieves an ITAE of 0.02939 with a tie-line settling time of 13.5478 s, whereas the CFOA-based design produces a bounded and convergent response with an ITAE of 0.03937 and a settling time of 14.4947 s. When GDB nonlinearity is introduced, the DMOA-tuned controller exhibits performance deterioration, yielding an ITAE of 0.1098 and a settling time of 19.0416 s, while the CFOA-tuned design shows more favorable time-domain performance with a lower ITAE of 0.05845 and a bounded settling time of 16.3595 s. These findings indicate that the CFOA-optimized PIDF–Fuzzy FOPI–FOPD controller provides an effective LFC solution under the examined nonlinear operating conditions.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Almutairi et al. (2026) studied this question.

synapsesocial.com/papers/69b6068883145bc643d1c703https://doi.org/10.3390/en19061442
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Load frequency control for two-area hybrid microgrids using model predictive control optimized by grey wolf-pattern search algorithm2023 · 19 citations
  2. 2Cubature Kalman filter and linear quadratic regulator for load frequency control2023 · 5 citations
  3. 3A Novel H∞/H2 Pole Placement Lfc Controller for Disturbed Interconnected Power Systems2025 · 1 citations
  4. 4Frequency Stability Enhancement Using Differential-Evolution- and Genetic-Algorithm-Optimized Intelligent Controllers in Multiple Virtual Synchronous Machine Systems2023 · 12 citations
  5. 5An Adaptive Load Frequency Control for Power Systems with Renewable Energy Sources2022 · 50 citations