Optimization Control Strategy for Large Doubly-Fed Induction Generator Wind Farm Based on Grouped Wind Turbine
Abstract
:1. Introduction
2. Losses Model of the Wind Farm
2.1. Losses Model of the DFIG
2.2. Losses Model of Transmission Network
3. Grouped Optimization Control Strategy
3.1. Configuration of a WF
3.2. Power Flow Model of a WF
3.3. Objective Function
3.4. Grouped Optimization Scheme
3.5. Grouped Optimization Step
4. Simulation Results
4.1. Case 1 Reactive Power of WF Remains Constant
4.2. Case 2 Reactive Power of WF Remains Change
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Parameters | Value |
---|---|
Particles number, NP | 150 |
Reactive accuracy, | 0.01 |
Number of groups, NG | 6 |
Optimization accuracy, ε | 0.00001 |
Maximum velocity, | 0.1 |
Minimum velocity, | −0.1 |
Constant coefficient, | 1.4961 |
Constant coefficient, | 1.4961 |
Parameters | Value | Per Unit Value |
---|---|---|
Rated Mechanical Power | 5 MW | 0.05 p.u. |
Rated stator voltage | 690 V | 0.017 p.u. |
Stator Winding Resistance, Rs | 1.552 mΩ | 0.000142 p.u. |
Rotor Winding Resistance, Rr | 1.446 mΩ | 0.000133 p.u. |
Stator Leakage Reactance, Xs | 2.033 Ω | 0.1867 p.u. |
Excitation reactance, Xm | 1.733 Ω | 0.1591 p.u. |
Filter Resistance, Rfil | 0.6791 mΩ | 0.000062 p.u. |
Rated WF Power, SWF | 100 MVA | 1.0 p.u. |
Base Impedance, ZB | 10.89 Ω | 1.0 p.u. |
Cable resistance, R | 0.1 Ω/km | 0.00918 p.u. |
Cable reactance, X | 0.129 Ω/km | 0.0118 p.u. |
Rated transformer capacity | 8000 kVA | 0.08 p.u. |
No-load losses, | 13.5 kW | 0.0000135 p.u. |
Load losses, | 36 kW | 0.000036 p.u. |
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Zhou, S.; Rong, F.; Ning, X. Optimization Control Strategy for Large Doubly-Fed Induction Generator Wind Farm Based on Grouped Wind Turbine. Energies 2021, 14, 4848. https://doi.org/10.3390/en14164848
Zhou S, Rong F, Ning X. Optimization Control Strategy for Large Doubly-Fed Induction Generator Wind Farm Based on Grouped Wind Turbine. Energies. 2021; 14(16):4848. https://doi.org/10.3390/en14164848
Chicago/Turabian StyleZhou, Shijia, Fei Rong, and Xiaojie Ning. 2021. "Optimization Control Strategy for Large Doubly-Fed Induction Generator Wind Farm Based on Grouped Wind Turbine" Energies 14, no. 16: 4848. https://doi.org/10.3390/en14164848
APA StyleZhou, S., Rong, F., & Ning, X. (2021). Optimization Control Strategy for Large Doubly-Fed Induction Generator Wind Farm Based on Grouped Wind Turbine. Energies, 14(16), 4848. https://doi.org/10.3390/en14164848