PMSG-Based Black-Start Technology and Its Field Tests
Abstract
:1. Introduction
2. Black-Start Scheme
2.1. Situation on Site
2.2. Black-Start System
2.3. Black-Start Scheme
3. Analysis of the Test Results
3.1. Lb Access
3.2. WPU Self-Starting
3.3. Black Starting La
3.4. Splitting Process
4. Conclusions
- (1)
- A wind farm configured with an external power supply, balanced load and coordinated controls has black-start capability.
- (2)
- The self-starting and black starting are susceptible to wind speed and system disturbances. The slower the black-start process, the smaller the voltage and frequency impact of the system.
- (3)
- The external power supply provides voltage and frequency support and main power for the black start of the power grid.
- (4)
- The output of the WPUs relatively lags the rapid power demand of the black start. The power of the black start is mainly provided by the external power supply.
- (5)
- The magnitude of the reverse power of the external power supply is related to factors such as its initial output power, the power adjustment value and the preset time of WPUs.
5. Future Studies
- (1)
- Poor voltage and frequency stability, high real-time requirements and quick system status changes are observed during the wind farms’ participation in the black-start process, so coordinated control strategies and devices to synchronize the steps and control the transients need to be further studied.
- (2)
- When the auxiliary power of the black-start thermal power plant is large, the soft start technology and frequency conversion devices can be used as an effective means to improve the stability of the black-start system and to minimize the configuration capacity of the external power supply.
- (3)
- It is known that most of operating WPUs do not have the ability to stabilize voltage and frequency. Therefore, in order to promote the application of wind farms to participate in a black start, a new technology such as a virtual synchronous machine could be used to study the WPU body.
Author Contributions
Funding
Conflicts of Interest
References
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Symbol | Equipment | Type |
---|---|---|
Gd | diesel generator | 400 kW |
La | auxiliary machine in thermal power | 690 V/3000 kVA |
Lb | balanced load | 690 V/1000 kVA |
G1, G2 | PMSG | GW115/2000 kW |
M1, M2 | cabin equivalent load | 40–60 kVA |
CV1, CV2 | full-power converter | GW115/2000 kW |
T100 | step-up transformer | 500 kVA |
T101, T201, T301 | box-type transformer | 2200 kVA |
T102, T202 | cabin load transformer | 90 kVA |
QF101 | circuit breaker for Gd | 400 V–2000 A |
QF102, QF202 | circuit breaker for WPU | 690 V–2000 A |
QF103, QF203 | circuit breaker for full-power converter | 690 V–2000 A |
QF104, QF204 | circuit breaker for cabin equivalent load | 400 V–100 A |
QF302 | circuit breaker for load | 400 V–1500 A |
QF106, QF206, QF306 | circuit breaker for box-type transformer | 35000 V–100 A |
Sequence | Parameter | Value | Parameter | Value | Parameter | Value |
---|---|---|---|---|---|---|
Part 1 | Umax | 707.5 V | Umin | 669.65 V | Voltage fluctuation | 2.95% |
fmax | 50.71 Hz | fmin | 49.24 Hz | Frequency fluctuation | 1.52% | |
Qmax | 8.6 kVar | Qmin | −16.6 kVar | |||
Part 2 | Umax | 718.2 V | Umin | 629.22 V | Voltage fluctuation | 8.81% |
fmax | 52.01 Hz | fmin | 48.391 Hz | Frequency fluctuation | 4.03% | |
Qmax | 22.3 kVar | Qmin | −28.1 kVar |
No. | Wind Speed | Parameter | Max | Min | Max Fluctuation Ratio(%) | Result |
---|---|---|---|---|---|---|
1 | 5.85 m/s | U (V) | 715.98 | 689.66 | 3.80 | Last 11 s successful |
I (A) | 272.41 | / | / | |||
f (Hz) | 50.60 | 49.30 | 1.41(0.71 Hz) | |||
2 | 2.55 m/s | U (V) | 714.49 | 652.1 | 5.60 | Last 83 s successful |
I (A) | 223.83 | / | / | |||
f (Hz) | 51.13 | 48.94 | 2.25(1.1 Hz) | |||
3 | 4.26 m/s | U (V) | 823.47 | 568.91 | 19.34 | Failed |
I (A) | 418.65 | / | / | |||
f (Hz) | 52.39 | 47.29 | 5.42(2.7 Hz) | |||
4 | 5.91 m/s | U (V) | 822.17 | 565.32 | 19.16 | Failed |
I (A) | 427.09 | / | / | |||
f (Hz) | 52.739 | 46.41 | 7.18(3.6 Hz) | |||
5 | 4.53 m/s | U (V) | 818.99 | 562.64 | 18.70 | Failed |
I (A) | 384.13 | / | / | |||
f (Hz) | 52.35 | 47.72 | 4.70(2.4 Hz) | |||
6 | 3.65 m/s | U (V) | 695.72 | 640.05 | 7.24 | Last 32 s, successful |
I (A) | 231.81 | / | / | |||
f (Hz) | 51.12 | 49.00 | 2.24(1.1 Hz) |
Sequence | Parameters | Value | ||
---|---|---|---|---|
Initial state before black start | Power of La (kW) | 100 | 200 | 300 |
Initial voltage (V) | 690.0 | 710.0 | 710.0 | |
Preadjusted power (kW) | 200 | 300 | 400 | |
Preadjusted time (s) | 5.0 | 5.0 | 4.5 | |
Main parameters of the black start process | Max power of Gd (kW) | 280 | 250 | 230 |
Min power of Gd (kW) | −67 | −20 | −5 | |
Max Voltage (V) | 710.4 | 710.2 | 710.7 | |
Min voltage (V) | 620.2 | 629.1 | 650.2 | |
Max frequency (Hz) | 52.06 | 51.43 | 51.09 | |
Min frequency (Hz) | 48.31 | 48.57 | 49.15 | |
Startup duration (s) | 1.5 | 2.2 | 3.2 |
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Tan, M.-g.; Tang, Y.; Zhang, C. PMSG-Based Black-Start Technology and Its Field Tests. Energies 2019, 12, 2144. https://doi.org/10.3390/en12112144
Tan M-g, Tang Y, Zhang C. PMSG-Based Black-Start Technology and Its Field Tests. Energies. 2019; 12(11):2144. https://doi.org/10.3390/en12112144
Chicago/Turabian StyleTan, Min-gang, Yi Tang, and Chaohai Zhang. 2019. "PMSG-Based Black-Start Technology and Its Field Tests" Energies 12, no. 11: 2144. https://doi.org/10.3390/en12112144
APA StyleTan, M. -g., Tang, Y., & Zhang, C. (2019). PMSG-Based Black-Start Technology and Its Field Tests. Energies, 12(11), 2144. https://doi.org/10.3390/en12112144