Power-Angle Modulation Controller to Support Transient Stability of Power Systems Dominated by Power Electronic Interfaced Wind Generation
Abstract
:1. Introduction
2. The Principle of the Power-Angle Modulation (PAM) Method
2.1. Steady-State Analysis of Wind Power Levels and Network Strength Conditions over the Power-Angle Curve’s Characteristics
2.2. Time Response Analysis of a Grid-Side Voltage Source Converter (GSVSC) of a Wind Generator (WG) Unit during Large Disturbance Conditions
3. The PAM Scheme in a High Share of Power Electronic Interfaced Wind Generation
3.1. Addition of the PAM Controller in a Type 4 WG
4. PAM Controller Assessment in Multi-Machine Power Systems Based on RMS Dynamic Simulations
4.1. Modified IEEE 9 BUS System
- Generally speaking, by comparing the shapes of the time responses presented in Figure 10d,e, it can be seen that the PAM controller quickly damps out the rotor angle oscillations and also, a reduction of the first angular swing. Likewise, if the Figure 9d,e are analyzed, it is again observed that a fast damping and a reduction of the first angular swing is produced in most of the fault cases.
- However, there can be some exceptions. For instance, when the fault at BUS 7 is particularly analyzed, it is found that the first angular swing presented in Figure 9e is very close to that observed in Figure 9d. This reflects that if the fault in the power system occurs very close to the WG having the PAM controller enabled, the level of support for the rotor angle stability provided by the WG will be diminished. This is aligned to the fact that the severe voltage dip that occurred at BUS 7 will induce the activation of the FRT function which will priorities the maximum reactive current injection during the fault period having no chances for modulating the active current of the WG during that period. Thus, the PAM controller can provide an effective rotor angle stability support (i.e., damping the rotor angle’s oscillations) when the location of a three-phase fault is relatively far (i.e., a moderate voltage dip) from the WG having the PAM controller incorporated.
4.2. Comparison of the PAM Controller under a Real-Time Simulation Enviroment for Rotor Angle Stability Enhancement in a Small Multi-Machine System
4.3. Description of the Synthetic Model of the Great Britain System
4.4. Fault Case for the Synthetic Model of the Great Britain System
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
WG | Wind Generator |
SG | Synchronous Generator |
PAM | Power-Angle Modulation |
PCC | Point of Common Coupling |
GSVSC | Grid-Side Voltage Source Converter |
FCT | Fault Clearing Time |
PSS | Power System Stabilizer |
MPPT | Maximum Power Point Tracking |
LVRT | Low Voltage Ride Through |
KPI | Key Performance Indicator |
GB | Great Britain |
IEEE | Institute of Electrical and Electronics Engineers |
MVA | Mega Volt-Ampere |
RMS | Root Mean Square |
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Units | SG1 | SG2 | WG1 | WG2 |
---|---|---|---|---|
MW | 73.02 | 81.5 | 81.5 | 85 |
MVAr | 36.05 | −4.6 | 0 | 0 |
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Perilla, A.; Rueda Torres, J.L.; Papadakis, S.; Rakhshani, E.; van der Meijden, M.; Gonzalez-Longatt, F. Power-Angle Modulation Controller to Support Transient Stability of Power Systems Dominated by Power Electronic Interfaced Wind Generation. Energies 2020, 13, 3178. https://doi.org/10.3390/en13123178
Perilla A, Rueda Torres JL, Papadakis S, Rakhshani E, van der Meijden M, Gonzalez-Longatt F. Power-Angle Modulation Controller to Support Transient Stability of Power Systems Dominated by Power Electronic Interfaced Wind Generation. Energies. 2020; 13(12):3178. https://doi.org/10.3390/en13123178
Chicago/Turabian StylePerilla, Arcadio, José Luis Rueda Torres, Stelios Papadakis, Elyas Rakhshani, Mart van der Meijden, and Francisco Gonzalez-Longatt. 2020. "Power-Angle Modulation Controller to Support Transient Stability of Power Systems Dominated by Power Electronic Interfaced Wind Generation" Energies 13, no. 12: 3178. https://doi.org/10.3390/en13123178
APA StylePerilla, A., Rueda Torres, J. L., Papadakis, S., Rakhshani, E., van der Meijden, M., & Gonzalez-Longatt, F. (2020). Power-Angle Modulation Controller to Support Transient Stability of Power Systems Dominated by Power Electronic Interfaced Wind Generation. Energies, 13(12), 3178. https://doi.org/10.3390/en13123178