Impact of the DFIG-Based Wind Farm Connection on the Fault Component-Based Directional Relay and a Mitigation Countermeasure
Abstract
:1. Introduction
- The expressions of positive- and negative-sequence superimposed impedance of DFIG when crowbar protection inputs are deduced and their characteristics are analyzed in detail from three stages: the fault initial stage, the fault transient stage, and the fault steady stage. The results indicate that the positive-sequence superimposed impedance of DFIG has an obvious transient process, and its amplitude is large and fluctuates evidently after the fault. More importantly, its phase angle gradually increases or decreases from the initial phase angle and finally stabilizes at −90° to −180°. As for the negative-sequence superimposed impedance of DFIG, its amplitude is relatively small, and its phase angle is between 0° and 90°.
- Based on the working principle of FCBDR, it is pointed out that the wide range variation of the phase angle of the superimposed impedance (especially the positive-sequence superimposed impedance) may result in the sensitivity decline or misjudgment of the related FCBDRs.
- To enhance the adaptability FCBDRs in the DFIG-based wind farm connection scenario, a mitigation countermeasure based on the distinctive amplitude and phase angle features of the superimposed impedance of DFIG is proposed. To enhance the adaptability FCBDRs in the DFIG-based wind farm connection scenario, a mitigation countermeasure making use of the significantly different features of the superimposed impedance between DFIG and SG is proposed.
2. Principle of FCBDR
- Positive-sequence FCBDR: , .
- Negative-sequence FCBDR: , .
- Zero-sequence directional relay: , .
- Phasor FCBDR: , ( A, B, C).
- Phasor difference FCBDR: , ( AB, BC, CA).
3. Definition and Calculation of the Superimposed Impedance of DFIG
3.1. Definition of the Superimposed Impedance of DFIG
3.2. Calculation of the Superimposed Impedance of DFIG
3.2.1. Positive- and Negative-Sequence Fault Currents of DFIG
- 1.
- Positive-sequence Fault Current of DFIG
- 2.
- Negative-sequence Fault Current of DFIG
3.2.2. Positive- and Negative-Sequence Superimposed Impedance of DFIG
- 1.
- Positive-Sequence Superimposed Impedance of DFIG
- 2.
- Negative-Sequence Superimposed Impedance of DFIG
4. Characteristic Analysis of the Superimposed Impedance of DFIG and Its Impact on FCBDR
4.1. Characteristic Analysis of the Superimposed Impedance of DFIG
4.1.1. Positive-sequence Superimposed Impedance of DFIG
4.1.2. Negative-Sequence Superimposed Impedance of DFIG
4.1.3. Summary
- Amplitude: The amplitude of is much larger than that of . During the fault transient stage, the amplitude of fluctuates evidently, while the amplitude of is basically stable.
- Phase angle: The phase angle of has an evident change process during the fault transient stage and finally reaches the steady value between −90° and −180°, while the phase angle of is always between 0° and 90°.
4.2. Impact of the DFIG-Based Wind Farm Connection on the FCBDR
- 1.
- Positive-sequence FCBDR
- 2.
- Negative-sequence FCBDR
- 3.
- Zero-sequence directional relay
- 4.
- Phasor FCBDR
- 5.
- Phasor difference FCBDR
5. Mitigation Countermeasure
5.1. Supplementary Direction Criteria
- 1.
- Criteria reflecting the difference between positive- and negative-sequence measured impedance
- 2.
- Criteria reflecting the amplitude difference of the positive-sequence measured impedance
5.2. Mitigation Countermeasure
6. Simulation and Discussion
6.1. Simulation Analysis of the Superimposed Impedance of DFIG
- 1.
- Expression verification
- 2.
- Characteristics verification
6.2. Simulation Analysis of FCBDRs and the Proposed Mitigation Countermeasure
- (1)
- Performances of the Conventional FCBDRs
- (2)
- Performances of the Proposed Mitigation Countermeasure
7. Conclusions
- The proposed mitigation countermeasure includes two supplementary direction criteria which can remedy the limitation of the conventional FCBDRs solely depending on the phase angle comparison.
- Using the significantly different features of the superimposed impedance between DFIG and SG to identify the fault direction, the influences of the fault behavior of DFIG on the FCBDR are significantly weakened.
- The adaptive operation logic of the proposed mitigation countermeasure can ensure that the conventional FCBDRs can identify the fault direction with high sensitivity at both the wind farm side and the power grid side.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
, | Stator and rotor voltage vectors. |
, | Stator and rotor current vectors. |
, | Stator and rotor flux linkage vectors. |
, | Stator and rotor resistances. |
Synchronous angular frequency. | |
, | Laplace and differential operators. |
Voltage sag extent. | |
, | Stator and rotor inductances. |
Magnetizing inductance | |
Slip. | |
Crowbar resistance. | |
Imaginary unit. | |
Fault component. | |
Positive-sequence quantity. | |
Negative-sequence quantity. | |
, | Pre-fault and steady-state values. |
Zero-sequence quantity. | |
, | Positive and negative synchronous rotation reference frames. |
Appendix A
Appendix B
Parameters | |||||
---|---|---|---|---|---|
Vaule (pu) | 0.006 | 0.008 | 3.072 | 3.055 | 2.9 |
Parameters | |||
---|---|---|---|
Vaule () | 0.58 + j19.36 | 3.06 + j65.97 | 3.23 + 64.53 |
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Li, X.; Lu, Y.; Huang, T. Impact of the DFIG-Based Wind Farm Connection on the Fault Component-Based Directional Relay and a Mitigation Countermeasure. Energies 2020, 13, 4414. https://doi.org/10.3390/en13174414
Li X, Lu Y, Huang T. Impact of the DFIG-Based Wind Farm Connection on the Fault Component-Based Directional Relay and a Mitigation Countermeasure. Energies. 2020; 13(17):4414. https://doi.org/10.3390/en13174414
Chicago/Turabian StyleLi, Xu, Yuping Lu, and Tao Huang. 2020. "Impact of the DFIG-Based Wind Farm Connection on the Fault Component-Based Directional Relay and a Mitigation Countermeasure" Energies 13, no. 17: 4414. https://doi.org/10.3390/en13174414
APA StyleLi, X., Lu, Y., & Huang, T. (2020). Impact of the DFIG-Based Wind Farm Connection on the Fault Component-Based Directional Relay and a Mitigation Countermeasure. Energies, 13(17), 4414. https://doi.org/10.3390/en13174414