A Proposed Controllable Crowbar for a Brushless Doubly-Fed Reluctance Generator, a Grid-Integrated Wind Turbine
Abstract
:1. Introduction
2. BDFRG Dynamic Model
3. The Crowbar
4. The Proposed Crowbar Control Strategy
5. Simulation Results
5.1. Symmetrical Fault (Three Line to Ground Fault)
5.2. Unsymmetrical Fault
5.2.1. Single-Line to Ground Fault (The Fault Is Applied at Phase a)
5.2.2. Line to Line Fault (The Fault Is Applied at Phases a and b)
5.2.3. Double Line to Ground Fault (The Fault Is Applied at Phases a and b)
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
List of Abbreviations | |
BDFRG | Brushless Doubly Fed Reluctance Generator |
VSWT | Variable Speed Wind Turbine |
WT | Wind Turbine |
WECS | Wind Energy Conversion System |
SCIG | Squirrel Cage Induction Generator |
DFIG | Doubly Fed Induction Generator |
BDFM | Brushless Doubly Fed Machine |
BDFIM | Brushless Doubly Fed Induction Machine |
BDFRM | Brushless Doubly Fed Reluctance Machine |
BDFIG | Brushless Doubly Fed Induction Generator |
MSC | Machine Side Converter |
GSC | Grid Side Converter |
MPPT | Maximum Power Point Tracking |
SPWM | Sinusoidal Pulse Width Modulation |
IFOC | Indirect Field Oriented Control |
PLL | Phase-Locked Loop |
RMS | Root Mean Square |
ANFIS | Adaptive Neuro Fuzzy Inference System |
List of Symbols | |
speed of reference frame of power winding | |
r | electrical speed of rotor |
vdp | direct voltage component for power winding |
vqp | quadrature voltage component for power winding |
vdc | direct voltage component for control winding |
vqc | quadrature voltage component for control winding |
rp | resistance of power winding |
rc | resistance of control winding |
λdp | direct flux component for power winding |
λqp | quadrature flux component for power winding |
λdc | direct flux component for control winding |
λqc | quadrature flux component for control winding |
idp | direct current component for power winding |
iqp | quadrature current component for power winding |
idc | direct current component for control winding |
iqc | quadrature current component for control winding |
Lp | inductance of power winding |
Lc | inductance of control winding |
Lpc | mutual inductance between power and control winding |
Te | electrical torque produced from generator |
pr | number of poles for rotor |
Tm | mechanical torque from turbine |
ng | turns ratio for gear box |
wrm | mechanical speed of rotor |
Jr | moment of inertia for wind turbine |
Jg | moment of inertia for generator |
p | angular speed for power winding |
s | angular speed for control winding |
θp | primary flux angle |
θg | grid current angle |
Appendix A
Rated Line Voltage | Rated Frequency | rp | rc | Lp | Lc | Lpc | Rotor Inertia, Jg |
---|---|---|---|---|---|---|---|
380 V | 50 Hz | 3.781 Ω | 2.441 Ω | 0.41 H | 0.316 H | 0.3 H | 0.2 kg.m2 |
Rated Power | Turbine Radius, R | Wind Speed Range | Turbine Inertia, Jr | Gearbox Ratio, ng |
---|---|---|---|---|
6 kW | 4 m | 2–12 m/s | 1.5 kg. m2 | 7.5 |
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Rihan, M.; Nasrallah, M.; Hasanin, B.; El-Shahat, A. A Proposed Controllable Crowbar for a Brushless Doubly-Fed Reluctance Generator, a Grid-Integrated Wind Turbine. Energies 2022, 15, 3894. https://doi.org/10.3390/en15113894
Rihan M, Nasrallah M, Hasanin B, El-Shahat A. A Proposed Controllable Crowbar for a Brushless Doubly-Fed Reluctance Generator, a Grid-Integrated Wind Turbine. Energies. 2022; 15(11):3894. https://doi.org/10.3390/en15113894
Chicago/Turabian StyleRihan, Mahmoud, Mahmoud Nasrallah, Barkat Hasanin, and Adel El-Shahat. 2022. "A Proposed Controllable Crowbar for a Brushless Doubly-Fed Reluctance Generator, a Grid-Integrated Wind Turbine" Energies 15, no. 11: 3894. https://doi.org/10.3390/en15113894
APA StyleRihan, M., Nasrallah, M., Hasanin, B., & El-Shahat, A. (2022). A Proposed Controllable Crowbar for a Brushless Doubly-Fed Reluctance Generator, a Grid-Integrated Wind Turbine. Energies, 15(11), 3894. https://doi.org/10.3390/en15113894