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Renewable-Integrated Agent-Based Microgrid Model with Grid-Forming Support for Improved Frequency Regulation
by
Choi, Seonhan
, Peng, Danyao
, Lee, Sangyub
in
agent-based model
/ Alternative energy sources
/ Analysis
/ Discrete event systems
/ discrete-event system specification
/ Distributed generation
/ Electric power systems
/ Energy management systems
/ Energy resources
/ Energy storage
/ Force and energy
/ frequency regulation
/ Frequency stability
/ grid-forming
/ Optimization
/ Predictive control
/ Recovery time
/ Renewable resources
/ renewable-integrated microgrid
/ Simulation
/ Simulation methods
/ Wind power
2025
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Renewable-Integrated Agent-Based Microgrid Model with Grid-Forming Support for Improved Frequency Regulation
by
Choi, Seonhan
, Peng, Danyao
, Lee, Sangyub
in
agent-based model
/ Alternative energy sources
/ Analysis
/ Discrete event systems
/ discrete-event system specification
/ Distributed generation
/ Electric power systems
/ Energy management systems
/ Energy resources
/ Energy storage
/ Force and energy
/ frequency regulation
/ Frequency stability
/ grid-forming
/ Optimization
/ Predictive control
/ Recovery time
/ Renewable resources
/ renewable-integrated microgrid
/ Simulation
/ Simulation methods
/ Wind power
2025
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Do you wish to request the book?
Renewable-Integrated Agent-Based Microgrid Model with Grid-Forming Support for Improved Frequency Regulation
by
Choi, Seonhan
, Peng, Danyao
, Lee, Sangyub
in
agent-based model
/ Alternative energy sources
/ Analysis
/ Discrete event systems
/ discrete-event system specification
/ Distributed generation
/ Electric power systems
/ Energy management systems
/ Energy resources
/ Energy storage
/ Force and energy
/ frequency regulation
/ Frequency stability
/ grid-forming
/ Optimization
/ Predictive control
/ Recovery time
/ Renewable resources
/ renewable-integrated microgrid
/ Simulation
/ Simulation methods
/ Wind power
2025
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Renewable-Integrated Agent-Based Microgrid Model with Grid-Forming Support for Improved Frequency Regulation
Journal Article
Renewable-Integrated Agent-Based Microgrid Model with Grid-Forming Support for Improved Frequency Regulation
2025
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Overview
The increasing penetration of renewable energy presents substantial challenges to frequency stability, particularly in low-inertia microgrids. This study introduces an agent-based microgrid model that integrates generators, loads, an energy storage system (ESS), and renewable sources, mathematically formalized through the discrete-event system specification (DEVS) to ensure both structural clarity and extensibility. To dynamically simulate power system behavior, the model incorporates multiple control strategies—including ESS scheduling, automatic generation control (AGC), predictive AGC, and grid-forming (GFM) inverter control—each posed as an mathematically defined control problem. Simulations on the IEEE 13-bus system demonstrates that the coordinated operation of ESS, GFM, and the proposed strategies markedly enhances frequency stability, reducing frequency peaks by 1.14, 1.14, and 0.72 Hz, and shortening the average recovery time by 9.05, 0.15, and 2.58 min, respectively. Collectively, the model provides a systematic representation of grid behavior and frequency regulation mechanisms under high renewable penetration, and establishes a rigorous mathematical framework for advancing microgrid research.
Publisher
MDPI AG
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