Linear Active Disturbance Rejection Control for Flexible Excitation System of Pumped Storage Units
Abstract
:1. Introduction
2. Control Strategy for Flexible Excitation System of PSU Based on LADRC
2.1. Structure of Single-Machine Infinite Bus System Based on Flexible Excitation System
2.2. Mathematical Model of Pumped Storage Unit Based on Flexible Excitation System
2.2.1. Mathematical Model of Generation/Motor
2.2.2. Mathematical Model of Flexible Excitation System
- (1)
- Generating conditions
- (2)
- Pumping conditions
2.3. Principle of LADRC
2.4. LADRC Scheme for Flexible Excitation System of PSU
3. LADRC Parameter Tuning Based on Tree Seed Optimizer Algorithm
3.1. Establishing System Performance Indicators
3.2. Solution Methods and Processes for TSO Algorithms
4. Simulation Verification
4.1. Simulation of Operating Characteristics of Flexible Excitation System
4.2. Performance Experiment of Linear Self-Disturbance Rejection Control System
- (1)
- Step response experiment
- (2)
- Robustness experiment
- (3)
- Anti interference experiment
5. Conclusions
- (1)
- After adopting the flexible excitation system based on fully controlled devices, compared with traditional conventional excitation systems based on thyristors, the voltage support capacity and oscillation suppression ability of PSU are significantly improved;
- (2)
- The flexible excitation system of pumped storage adopts the LADRC controller, which has better performance than the PID controller, can effectively alleviate the contradiction between response speed and overshoot, and has better robustness and anti-interference.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Step | Specific Algorithm |
---|---|
Step 1. The initialization of the algorithm. | Set the number of population size (N). |
Set the ST parameter for the method. | |
Set the dimensionality of the problem (D). | |
Decide the termination condition | |
Generate Nrandom tree location on the D-dimensional search space. | |
Evaluate the tree location using objective function specified for the problem. | |
Step 2. Searching with Seeds | FOR all trees Decide the number of seeds produced for this tree. FOR all seeds FOR all dimensions IF (rand < ST) Update the dimension ELSE Update the dimension END IF END FOR END FOR Select the best seed and compare it with the tree. If the seed location is better than tree location, the seed substitutes for this tree. END FOR |
Step 3. Selection of Best Solution | Select the best solution of population. |
If new best solution is better than the previous best solution, new best solution | |
substitutes for the previous best solution. | |
SStep 4. Testing Termination condition | If termination condition is not met, go to Step 2. |
Step 5. Reporting | Report the best solution. |
Model | Parameter Name (Unit) | Parameter Value |
---|---|---|
Synchronous generator motor | Rated capacity SGN (MVA) | 334 |
Rated voltage UGN (kV) | 15.75 | |
Excitation winding time constant T′d0 (s) | 13.123 | |
Inertia constant TJ (s) | 8.6 | |
Polar logarithm p | 7 | |
Rated excitation voltage UfN (V) | 330 | |
Rated excitation current IFn (A) | 1600 | |
Main transformer | Rated capacity STN (MVA) | 400 |
Transformation ratio | 15.75/242 | |
Excitation transformer | Rated capacity STEN (MVA) | 5 |
Transformation ratio (kV) | 15.75/0.38 | |
Flexible excitation | DC voltage (V) | 660 |
Infinite system | Rated voltage USN (kV) | 220 |
Parameter Name | Parameter Values | Line Length |
---|---|---|
Resistance per unit length r0 (Ω/km) | 0.01273 | 300 km |
Inductance per unit length l0 (mH/km) | 0.9337 | |
Inductance per unit length c0 (μF/km) | 12.74 |
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Zhao, B.; Zheng, J.; Qin, J.; Wang, D.; Li, J.; Cheng, X.; Jia, S. Linear Active Disturbance Rejection Control for Flexible Excitation System of Pumped Storage Units. Energies 2024, 17, 3838. https://doi.org/10.3390/en17153838
Zhao B, Zheng J, Qin J, Wang D, Li J, Cheng X, Jia S. Linear Active Disturbance Rejection Control for Flexible Excitation System of Pumped Storage Units. Energies. 2024; 17(15):3838. https://doi.org/10.3390/en17153838
Chicago/Turabian StyleZhao, Bo, Jiandong Zheng, Jun Qin, Dan Wang, Jiayao Li, Xinyu Cheng, and Sisi Jia. 2024. "Linear Active Disturbance Rejection Control for Flexible Excitation System of Pumped Storage Units" Energies 17, no. 15: 3838. https://doi.org/10.3390/en17153838
APA StyleZhao, B., Zheng, J., Qin, J., Wang, D., Li, J., Cheng, X., & Jia, S. (2024). Linear Active Disturbance Rejection Control for Flexible Excitation System of Pumped Storage Units. Energies, 17(15), 3838. https://doi.org/10.3390/en17153838