Modeling and Harmonic Impact Mitigation of Grid-Connected SCIG Driven by an Electromagnetic Frequency Regulator
Abstract
:1. Introduction
2. Steady State Harmonic Model of EFR-Driven Generation System
2.1. Wind Turbine Model
2.2. EFR Inverter and PWM Modulation Strategy
2.3. Harmonic Model in the Electromagnetic Frequency Regulator (EFR)
2.3.1. Electrical Power and Mechanical Behaviour
2.4. System Description and MPPT Control
- System operation with a constant wind speed input and the EFR is regulated with constant torque and speed.
- The winding distribution in the machines is sinusoidal, and thus there are no MMF space harmonics and slot harmonics. Sinusoidal and balanced grid voltages at the PCC are considered.
- Magnetic saturation and the electrical losses in the inverter are neglected, and the system is in a steady state with all derivatives equal to zero.
- Considering the harmonic model of the EFR and SCIG in Section 2.3.1, the levels of the harmonics of the armature and PCC voltages and currents are followed. Moreover, the Total Rated Distortion (TRD) of voltages and currents, considering the interharmonics at the PCC, oscillations in the electromagnetic torque, and angular mechanical speed are monitored.
3. Test Case 1: Harmonic Analysis of a 2MW Grid-Connected SCIG Driven by an EFR
3.1. Electromagnetic Torque and Mechanical Response
3.2. Impact of EFR Armature Harmonics Components at the PCC Side
4. Test Case 2: Power Quality Indexes and Comparison with a Real Data Extracted of a 2 MW DFIG
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Abbreviations
Wind turbine mechanical power | |
Air density | |
Turbine blades area | |
R | Radius of the blade |
Turbine power coefficient | |
Wind speed | |
Tip-speed Ratio | |
Turbine angular speed | |
Blade pitch angle | |
Turbine mechanical torque | |
EFR armature angular speed | |
Mechanical torque at the EFR’s armature | |
Switching frequency | |
Fundamental frequency of the inverter | |
Total frequencies resulting of the inverter switching | |
Grid frequency | |
PWM reference voltages | |
Optimized PWM reference voltages | |
Auxiliary reference voltage | |
Distribution factor of the optimized PWM modulation | |
Electrical armature angular speed | |
Mechanical EFR’s rotor angular speed | |
Slip angular speed | |
EFR’s slip | |
Fundamental positive synchronous reference frame | |
Voltage in d and q axis in of the EFR’s armature | |
Voltage in d and q axis in of the EFR’s rotor | |
Current in d and q axis in of the EFR’s armature | |
Current in d and q axis in of the EFR’s rotor | |
Flux in d and q axis in of the EFR’s armature | |
Flux in d and q axis in of the EFR’s rotor | |
EFR’s armature resistance | |
EFR’s rotor resistance | |
Leakage inductance of EFR’s armature windings | |
Leakage inductance of EFR’s rotor windings | |
Maximum mutual inductance between armature and rotor of the EFR windings | |
Angular speed of the harmonics components in the EFR armature voltage | |
h | Harmonic order |
EFR’s harmonic slips | |
Armature and rotor harmonic components of the EFR in frame | |
S | Instantaneous three-phase power in the EFR armature |
Instantaneous EFR three-phase active power in the EFR armature | |
Instantaneous EFR three-phase reactive power in the EFR armature | |
Instantaneous EFR three-phase electromagnetic power | |
Coefficients of the instantaneous EFR three-phase active power | |
Coefficients of the instantaneous EFR three-phase reactive power | |
, , , , | Coefficients of the instantaneous three-phase electromagnetic power |
Electromagnetic torque developed | |
Mechanical torque at the EFR’s armature | |
Mechanical torque at the EFR’s rotor | |
Inertia of the turbine added to the inertia of the rotating armature | |
Sum of inertia of the EFR’s rotor with the inertia of the SCIG rotor | |
Rotor friction constant | |
Turbine friction constant | |
Electromagnetic torque of reference in the SCIG | |
Gearbox ratio | |
Stator synchronous angular frequency | |
SCIG’s windings resistance | |
SCIG’s windings reactance | |
SCIG’s grid phase voltage | |
SCIG’s magnetizing reactance | |
reference slip of the SCIG | |
P | EFR number of pole pairs |
SCIG number of pole pairs | |
Armature speed reference | |
Thevenin impedance of grid 1 and 2, respectively | |
Thevenin resistance of grid 1 and 2, respectively | |
Thevenin inductance of grid 1 and 2, respectively | |
Maximum harmonic or inter-harmonic current in the PCC side | |
Rated current | |
Total Rated Distortion including the inter-harmonics | |
Individual Harmonic Distortion of the variable under analysis | |
Individual harmonic component of the variable under analysis | |
Fundamental component of the variable under analysis | |
EFR armature phase ‘a’ voltage | |
EFR armature phase ‘a’ current | |
PCC phase ‘a’ voltage | |
PCC phase ‘a’ current |
Appendix A
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Parameter | Value | |
---|---|---|
EFR and SCIG | Number of poles (p) | 4- |
Armature resistance () | 0.005 p.u. | |
Rotor resistance () | 0.005 p.u. | |
Armature leakage reactance () | 0.092 p.u. | |
Rotor leakage reactance () | 0.1 p.u. | |
Mutual reactance () | 3.95 p.u. | |
Inertia constant () | 0.5 s | |
Wind Turbine | Diameter (D) | 90 m |
Gearbox ratio () | 100- | |
Nominal turbine speed () | 18 RPM | |
Nominal wind speed () | 11 m/s | |
Inertia constant () | 2.5 s | |
Coefficient of friction () | 1.5- | |
Inverter | Switching frequency () | 7.2 kHz |
DC input voltage () | 1.127 kV | |
External Grid | Grid Voltage () | 690 V, Hz |
Nominal power () | 2 MVA | |
Thevenin impedance 1 () | . | |
Thevenin impedance 2 () | . |
TRD (%) | |||||||
---|---|---|---|---|---|---|---|
(m/s) | (Hz) | (kW) | (A) | ||||
4 | 39.77 | 338.51 | 100.22 | 42.16 | 28.39 | 0.0047 | 4.88 |
5 | 34.72 | 456.45 | 120.12 | 42.19 | 27.48 | 0.0131 | 4.23 |
6 | 29.68 | 644.80 | 30.25 | 43.44 | 29.60 | 0.0051 | 4.45 |
7 | 24.65 | 884.67 | 22.01 | 42.16 | 27.61 | 0.0084 | 4.25 |
8 | 19.63 | 1134.18 | 67.11 | 42.15 | 28.71 | 0.0081 | 4.21 |
9 | 14.62 | 1439.26 | 40.51 | 42.13 | 30.57 | 0.0147 | 3.97 |
10 | 9.63 | 1805.85 | 30.01 | 42.13 | 30.37 | 0.0083 | 3.66 |
11 | 4.65 | 2189.73 | 65.00 | 42.14 | 28.01 | 0.0158 | 3.34 |
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da Silva, J.C.L.; Ramos, T.; Júnior, M.F.M. Modeling and Harmonic Impact Mitigation of Grid-Connected SCIG Driven by an Electromagnetic Frequency Regulator. Energies 2021, 14, 4524. https://doi.org/10.3390/en14154524
da Silva JCL, Ramos T, Júnior MFM. Modeling and Harmonic Impact Mitigation of Grid-Connected SCIG Driven by an Electromagnetic Frequency Regulator. Energies. 2021; 14(15):4524. https://doi.org/10.3390/en14154524
Chicago/Turabian Styleda Silva, Juliano C. L., Thales Ramos, and Manoel F. Medeiros Júnior. 2021. "Modeling and Harmonic Impact Mitigation of Grid-Connected SCIG Driven by an Electromagnetic Frequency Regulator" Energies 14, no. 15: 4524. https://doi.org/10.3390/en14154524
APA Styleda Silva, J. C. L., Ramos, T., & Júnior, M. F. M. (2021). Modeling and Harmonic Impact Mitigation of Grid-Connected SCIG Driven by an Electromagnetic Frequency Regulator. Energies, 14(15), 4524. https://doi.org/10.3390/en14154524