Reactive Power Dispatch Algorithm for a Reduction in Power Losses in Offshore Wind Farms
Abstract
:1. Introduction
2. An Offshore Wind Farm and Its Loss Calculation
2.1. Offshore Wind Farm Configuration
2.2. Calculation of Power Losses
3. Loss Minimization Using Reactive Power Reference Dispatch
3.1. Convetional Method 1: Reactive Power Reference Dispatch Using 1/n Method
3.2. Conventional Method 2: Reactive Power Reference Dispatch Using Particle Swarm Optimization
3.3. Proposed Method: Reactive Power Reference Dispatch based on Power Loss Percentages
4. Simulation
4.1. Implementation
4.2. Method 1/n’s Simulation Results
4.3. PSO’s Simulation Results
4.4. Proposed Method’s Simulation Results
4.5. Comparison between Algorithms
4.5.1. Comparison between Algorithms in 100 MW Output
4.5.2. Comparison between Algorithms in 20 MW Output
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Step | Name | Description |
---|---|---|
1 | Establishment of Initial Particle Positions and Movements. | The starting positions and movements of each particle are established through the utilization of randomly generated state variables. |
2 | Calculation of Active Power Losses and Introduction of Penalties. | The active power losses at the positions of each particle are calculated by means of a power flow. If the constraints violate the allowable limits, a penalty for the losses is included. |
3 | Determination of Local and Global Best Values. | Each search point has its known local position, referred to as pbest. The best-evaluated value, which is the sum of the loss and penalty, from all the pbest is then set as the global best, or gbest. |
4 | Computation of New Velocities and Search Positions. | The new search velocities and positions are calculated using (4)–(6). |
5 | Calculation of Power Losses and Evaluation. | The losses (Ploss) in the new search positions are calculated, and an evaluation is performed for each one. |
6 | Update of Evaluations and Best Values. | The evaluation of each particle is compared to its previous pbest and updated if it is better. The best of the pbest is then compared to gbest and updated if it is better. The updated gbest values are stored as potential solutions. |
7 | Termination or Return to Step 4. | When the maximum number of iterations determined is reached, and if the result meets the expectations, the search process will end. Otherwise, the process will return to step 4. |
8 | Computation of Reactive Power by Rotating Machines. | Using the results, the power flow calculation is performed to determine the reactive power dispatch by the rotating machines. |
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Song, S.-H.; Tae, G.-W.; Lim, A.; Kim, Y.-C. Reactive Power Dispatch Algorithm for a Reduction in Power Losses in Offshore Wind Farms. Energies 2023, 16, 7426. https://doi.org/10.3390/en16217426
Song S-H, Tae G-W, Lim A, Kim Y-C. Reactive Power Dispatch Algorithm for a Reduction in Power Losses in Offshore Wind Farms. Energies. 2023; 16(21):7426. https://doi.org/10.3390/en16217426
Chicago/Turabian StyleSong, Seung-Ho, Gyo-Won Tae, Alexandr Lim, and Ye-Chan Kim. 2023. "Reactive Power Dispatch Algorithm for a Reduction in Power Losses in Offshore Wind Farms" Energies 16, no. 21: 7426. https://doi.org/10.3390/en16217426
APA StyleSong, S. -H., Tae, G. -W., Lim, A., & Kim, Y. -C. (2023). Reactive Power Dispatch Algorithm for a Reduction in Power Losses in Offshore Wind Farms. Energies, 16(21), 7426. https://doi.org/10.3390/en16217426