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Related Concept Videos

Generator Voltage Control01:21

Generator Voltage Control

237
Generator voltage control is crucial for maintaining the stable operation of synchronous generators and wind turbines. In older models, a DC generator driven by the rotor delivers DC power to the rotor's field winding, and the power is transferred through slip rings and brushes. In the latest models, static or brushless exciters are used. Static exciters rectify AC power from the generator terminals and then transfer the DC power directly to the rotor. Brushless exciters, on the other hand,...
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Control of Power Flow01:30

Control of Power Flow

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There are several methods to control power flow in power systems:
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Generation of Three-Phase Voltage01:21

Generation of Three-Phase Voltage

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A three-phase AC generator has a rotor with a rotating magnet placed within the stator mounted with the stationary three-phase winding to generate three-phase voltages via mutual induction. These windings are evenly distributed around the inner circumference of the stator and are arranged 120 electrical degrees apart. Three-phase stator windings consist of three separate coils or groups of coils, known as phases, each connected in Y (star) configuration or Delta configuration.
As the rotor...
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Load-frequency control01:28

Load-frequency control

247
Load-frequency control (LFC) is vital for maintaining power system stability, ensuring that frequency and power flows remain within acceptable limits during load changes. Turbine-governor control eliminates rotor accelerations and decelerations following load changes. However, a steady-state frequency error persists when the change in the turbine-governor reference setting is zero. In an interconnected power system, each area agrees to export or import a scheduled amount of power through...
247
Turbine-Governor Control01:17

Turbine-Governor Control

362
Turbine-governor control is crucial for maintaining power system stability by balancing turbine mechanical power output with electrical load demand. This mechanism ensures that generator frequency and rotor speed are within acceptable limits during load variations. Turbine-generator units store kinetic energy due to their rotating masses; this energy is released to meet the load requirement when the load increases. The electrical torque of turbines rises to meet the demand, whereas the...
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Wind Turbine Machine Models01:24

Wind Turbine Machine Models

206
In the growing field of wind energy, incorporating wind turbine models into transient stability analysis is essential. Induction and synchronous machines are the primary models used, with induction machines being prevalent due to their simplicity and reliability.
Induction machines interact through the rotating magnetic field generated by the stator and the rotor. The key parameter is slip, which is the difference between synchronous speed and rotor speed relative to synchronous speed. Slip is...
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Experimental Investigation of the Hierarchical Control in DC Microgrids Using a Real-time Simulator
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A Novel Automatic Generation Control Method Based on the Large-Scale Electric Vehicles and Wind Power Integration

Lei Xi, Haokai Li, Jizhong Zhu

    IEEE Transactions on Neural Networks and Learning Systems
    |August 5, 2022
    PubMed
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    This study introduces an improved reinforcement learning algorithm to stabilize power grid frequency amidst disturbances from electric vehicles and wind power. The new method enhances control performance and finds optimal solutions for grid stability.

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    Area of Science:

    • Electrical Engineering
    • Artificial Intelligence
    • Control Systems

    Background:

    • Power systems face frequency instability due to large-scale integration of electric vehicles (EVs) and wind power.
    • Traditional reinforcement learning methods can fall into local optima or suffer from action value overestimation.

    Purpose of the Study:

    • To propose an improved reinforcement learning algorithm for automatic generation control (AGC) in power systems.
    • To address frequency instability caused by random disturbances from EVs and wind power.

    Main Methods:

    • An optimistic initialized double Q-learning algorithm is developed.
    • The algorithm incorporates optimistic initialization for broader action exploration and double Q-learning to mitigate overestimation.
    • Hyperparameter ατ and exploration-based reward bτ are introduced to enhance learning efficiency and drive optimal solution discovery.

    Main Results:

    • Simulations on a two-area load frequency control model with EVs and a four-area grid with wind power were conducted.
    • The proposed algorithm successfully obtained global optimal solutions.
    • The algorithm demonstrated superior control performance compared to existing reinforcement learning methods.

    Conclusions:

    • The developed optimistic initialized double Q-learning algorithm effectively solves power system frequency instability issues.
    • This approach provides a robust solution for grid-connected large-scale wind power generation and EV integration.
    • The algorithm offers enhanced control performance and stability in power systems facing significant random disturbances.