Sequence Control Strategy for Grid-Forming Voltage Source Converters Based on the Virtual-Flux Orientation under Balanced and Unbalanced Faults
Abstract
:1. Introduction
2. System Description
3. Spanish Grid Code Requirements under Balanced and Unbalanced Faults Review
4. Sequence Control Strategy
4.1. Sequences Extraction Algorithm
4.2. Positive Sequence Control Scheme
4.3. Negative Sequence Control Scheme
4.4. Converter Voltage Setpoints Calculation
5. Real-Time HIL Simulation Results
5.1. Balanced Three-Phase Faults
5.2. Unbalanced Phase-to-Phase Faults
5.3. Converter Response to Unbalanced Phase-to-Phase Faults for Different Values of and
5.4. Comparison between the Original and the Proposed Model
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Appendix A. RSCAD Parameters
Parameters | Value | Units |
DC voltage of the VSC, | 1200 | V |
Converter rated power, | 2 | MVA |
Line to line rated voltage (RMS), | 690 | V |
Filter inductance, | 0.113 | mH |
Filter resistance, | 0.714 | mΩ |
Filter capacitance, | 0.5 | mF |
Nominal frequency, | 50 | Hz |
Switching frequency, | 3 | kHz |
Grid inductance, | 56.5 | µH |
Grid resistance, | 0.357 | µΩ |
Short-circuit ratio, SCR | 2 | |
X/R ratio | 10 | |
: power rating, | 2 | MVA |
: rated line–line voltage primary, | 20 | kV |
: rated line–line voltage secondary, | 0.69 | kV |
: frequency | 50 | Hz |
Appendix B. Control System Parameters
Parameters | Value | Units |
Inertia, | 15 | s |
Damping constant, | 50 | p.u. |
PSS time constant, | 1.2 | s |
PSS constant, | 0.01 | |
PI Gain, | 0.12 | |
PI Time constant, | 0.01 | s |
PI Gain, | 0.3 | |
PI Time constant, | 0.04 | s |
PI Gain, | −0.5 | |
PI Time constant, | 0.085 | s |
PI Gain, | −0.5 | |
PI Time constant, | 0.085 | s |
PI Gain, | 1 | |
PI Time constant, | 0.16 | s |
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Power Generating Module Type | Voltage at the Connection Point | Maximum Capacity |
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Type A | ||
Type B | ||
Type C | ||
Type D |
Cases | ||||
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Cases | ||||||
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Original Model | ||||
Proposed Model |
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Dolado Fernández, J.; Eloy-Garcia, J.; Arnaltes, S.; Rodríguez-Amenedo, J.L. Sequence Control Strategy for Grid-Forming Voltage Source Converters Based on the Virtual-Flux Orientation under Balanced and Unbalanced Faults. Energies 2023, 16, 3056. https://doi.org/10.3390/en16073056
Dolado Fernández J, Eloy-Garcia J, Arnaltes S, Rodríguez-Amenedo JL. Sequence Control Strategy for Grid-Forming Voltage Source Converters Based on the Virtual-Flux Orientation under Balanced and Unbalanced Faults. Energies. 2023; 16(7):3056. https://doi.org/10.3390/en16073056
Chicago/Turabian StyleDolado Fernández, Juan, Joaquín Eloy-Garcia, Santiago Arnaltes, and Jose Luis Rodríguez-Amenedo. 2023. "Sequence Control Strategy for Grid-Forming Voltage Source Converters Based on the Virtual-Flux Orientation under Balanced and Unbalanced Faults" Energies 16, no. 7: 3056. https://doi.org/10.3390/en16073056
APA StyleDolado Fernández, J., Eloy-Garcia, J., Arnaltes, S., & Rodríguez-Amenedo, J. L. (2023). Sequence Control Strategy for Grid-Forming Voltage Source Converters Based on the Virtual-Flux Orientation under Balanced and Unbalanced Faults. Energies, 16(7), 3056. https://doi.org/10.3390/en16073056