Impact of Inter-Turn Short Circuit in Excitation Windings on Magnetic Field and Stator Current of Synchronous Condenser under Unbalanced Voltage
Abstract
:1. Introduction
2. Analysis of Composite Faults in Synchronous Condensers
2.1. Analysis of Air Gap Magnetic Field
2.1.1. Air Gap Magnetic Potential during Normal Operation of Synchronous Condenser under Balanced Grid Voltage
2.1.2. Air Gap Magnetic Potential during Inter-Turn Short Circuit Fault in the Excitation Windings of Synchronous Condenser under Balanced Grid Voltage
2.1.3. The Air Gap Magnetic Potential of the Synchronous Condenser under Unbalanced Grid Voltage Conditions without Any Faults Occurring
2.1.4. The Air Gap Magnetic Flux in the Synchronous Condenser When There Is an Inter-Turn Short Circuit in the Excitation Winding under Unbalanced Grid Voltage
2.1.5. Air Gap Magnetic Flux Density
2.2. Analysis of Parallel Branch Current Circulation in the Stator
2.2.1. Under the Condition of Balanced Grid Voltage, the Synchronous Condenser Operates without Any Faults
2.2.2. Grid Voltage Balance Synchronous Condenser Excitation Winding Inter-Turn Short Circuit Occurs
2.2.3. The Air Gap Magnetic Potential of the Synchronous Condenser under Unbalanced Grid Voltage Conditions without Any Faults Occurring
2.2.4. The Air Gap Magnetic Flux in the Synchronous Condenser When There Is an Inter-Turn Short Circuit in the Excitation Winding under Unbalanced Grid Voltage
3. Simulation Analysis
3.1. Model Accuracy Verification
3.2. Analysis of Simulation Results
3.2.1. Analysis of Air Gap Flux Density and Stator Parallel Circulating Current in Faulty Conditions of Synchronous Condenser under Balanced Grid Voltage
- Analysis of Air Gap Magnetic Flux Density
- Analysis of Parallel Circulation between Stator Branches
3.2.2. Analysis of Air Gap Flux Density and Stator Parallel Circulation When the Grid Voltage Is Unbalanced and the Synchronous Condenser Is Fault-Free
- Analysis of Air Gap Magnetic Flux Density
- Analysis of Parallel Circulation between Stator Branches
3.2.3. Analysis of Air Gap Magnetic Flux Density and Stator Parallel Circulating Current under Unbalanced Grid Voltage with Excitation Winding Turn-to-Turn Short Circuit
- Analysis of Air Gap Magnetic Flux Density
- Analysis of Parallel Circulation between Stator Branches
4. Conclusions
- The occurrence of an inter-turn short circuit in the excitation winding distorts the air gap magnetic flux density. This distortion is further amplified by unbalanced grid voltage, resulting in increased losses in the air gap magnetic flux density. When both unbalanced grid voltage and inter-turn short circuit in the excitation winding are present, the loss of air gap magnetic flux density is even more significant compared to the case of a single fault.
- In the absence of an inter-turn short circuit in the excitation winding, the impact of unbalanced grid voltage on the circulating current between stator parallel branches can be disregarded. However, when compound faults occur, both the degree of unbalanced grid voltage and the severity of the short circuit can result in fluctuations in the circulating current between stator parallel branches, with the severity of the short circuit having a more significant influence on the circulating current.
- When diagnosing minor faults in a synchronous condenser, relying solely on features such as the even harmonic component of the circulating current may result in inaccurate fault type determination. To enhance fault diagnosis in future research, it is recommended to incorporate electromechanical information fusion, combining mechanical and electrical characteristics, for more reliable results.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Component | Num Elements | Min Edge Length (mm) | Max Edge Length (mm) | Min Element Area (mm2) | Max Element Area (mm2) |
---|---|---|---|---|---|
Stator | 13,303 | 0.0050 | 0.1044 | 2.65 × 10−5 | 0.00270 |
Rotor | 5745 | 0.0035 | 0.0420 | 1.50 × 10−5 | 0.00054 |
OuterRegion | 4914 | 0.0040 | 0.0237 | 1.20 × 10−5 | 0.00021 |
InnerRegion | 1836 | 0.0035 | 0.0240 | 1.05 × 10−5 | 0.00015 |
Band | 945 | 0.0073 | 0.0236 | 6.24 × 10−5 | 0.00020 |
Shaft | 674 | 0.0079 | 0.0257 | 4.09 × 10−5 | 0.00023 |
Stator Coil | 23 | 0.0060 | 0.0219 | 4.80 × 10−5 | 0.00012 |
Excitation coil | 28 | 0.0096 | 0.0224 | 6.72 × 10−5 | 0.00016 |
Parameter | Value | Parameter | Value |
---|---|---|---|
Rated capacity (Mvar) | 300 | Number of stator slots | 48 |
Rated exaltation current (A) | 1800 | Rotor slot number | 32 |
Rated field voltage (V) | 407 | Stator rated voltage (kV) | 20 |
Number of conductors per slot of stator | 2 | Stator rated current (A) | 8660 |
Number of turns per slot of rotor | 12 | Number of parallel branches of stator winding | 2 |
Number of pole-pairs | 1 | Number of phases | 3 |
Rotor body length (mm) | 5950 | Inner diameter of stator core (mm) | 1240 |
Air gap length (mm) | 70 | Frame cushion diameter (mm) | 2500 |
Maximum leading phase operation capability (Mvar) | −200 | Rated power factor | 0 |
No-load excitation voltage (V) | 137 | No-load excitation current (A) | 705 |
Rated speed (rpm) | 3000 | Rated frequency (Hz) | 50 |
Data Type | Actual Data | Simulation Data | Error |
---|---|---|---|
Stator phase voltage (kV) | 11.547 | 11.536 | 0.0954% |
Stator phase current (kA) | 8.66 | 8.61 | 0.5774% |
Time/s | Amplitude/T | Fundamental Amplitude/T | Secondary Harmonic Amplitude/T | Third Harmonic Amplitude/T |
---|---|---|---|---|
0.48 | 1.166 | 1.034 | 0.000 | 0.147 |
0.485 | 1.252 | 1.097 | 0.000 | 0.146 |
0.49 | 1.191 | 1.035 | 0.000 | 0.147 |
0.495 | 1.250 | 1.097 | 0.000 | 0.146 |
0.5 | 1.166 | 1.034 | 0.000 | 0.147 |
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Li, J.; Zhang, C.; He, Y.; Hu, X.; Geng, J.; Ma, Y. Impact of Inter-Turn Short Circuit in Excitation Windings on Magnetic Field and Stator Current of Synchronous Condenser under Unbalanced Voltage. Energies 2023, 16, 5695. https://doi.org/10.3390/en16155695
Li J, Zhang C, He Y, Hu X, Geng J, Ma Y. Impact of Inter-Turn Short Circuit in Excitation Windings on Magnetic Field and Stator Current of Synchronous Condenser under Unbalanced Voltage. Energies. 2023; 16(15):5695. https://doi.org/10.3390/en16155695
Chicago/Turabian StyleLi, Junqing, Chengzhi Zhang, Yuling He, Xiaodong Hu, Jiya Geng, and Yapeng Ma. 2023. "Impact of Inter-Turn Short Circuit in Excitation Windings on Magnetic Field and Stator Current of Synchronous Condenser under Unbalanced Voltage" Energies 16, no. 15: 5695. https://doi.org/10.3390/en16155695
APA StyleLi, J., Zhang, C., He, Y., Hu, X., Geng, J., & Ma, Y. (2023). Impact of Inter-Turn Short Circuit in Excitation Windings on Magnetic Field and Stator Current of Synchronous Condenser under Unbalanced Voltage. Energies, 16(15), 5695. https://doi.org/10.3390/en16155695