A Novel Protection Strategy for Single Pole-to-Ground Fault in Multi-Terminal DC Distribution Network
Abstract
:1. Introduction
2. System Structure
2.1. MTDC Distribution Network Structure
2.2. Topology of MMC
2.3. SPG Fault Model of MMC
3. Fault Criterion and Protection Scheme
3.1. Start Criterion of SPG Fault
3.2. Location Method of SPG Fault
3.2.1. Differential Protection Action Criterion
3.2.2. The Threshold Value of Current Derivative
3.3. Protection Strategy
- (1)
- The DC power distribution control and protection system detects the change of the DC voltage according to the Formula (4). Whether the voltage unbalance occurs will be judged in the system. Meanwhile, the current derivative is detected according the Formula (13);
- (2)
- If voltage unbalance is detected, the system reduces the power output. If the value of current derivative exceeds the threshold, the neutral point grounding small resistance Rs is switched on to increase the fault current rapidly;
- (3)
- If Formulas (10) and (14) are satisfied at the same time, it is judged that a SPG fault has occurred. After that the small resistance is switched off, and then, the fault isolation and system operation state transition procedures are entered.
4. Experiment and Simulation
5. Conclusions
- The comprehensive use of DC reactor and neutral point grounding resistance of connection transformer is an effective means to reduce the cost of fault removal and improve the economy of the system;
- The criterion proposed can quickly detect the DC SPG fault. Voltage unbalance protection is used as main protection. In order to locate the fault, the method of switching the small resistance by detecting current derivative is proposed. The value of fault current rises rapidly so that reliability of differential protection can be satisfied;
- The fault of T2 had a momentous effect on the power supply quality of other converter stations during SPG fault. The results proved that T2 can be isolated in time by three port DCCB. The operating mode of system was switched from the three-terminal network to two-terminal hand-in-hand. In future research, it will be necessary to study the influence of other faults on the MTDC distribution network. In addition, the voltage control mode of the converter station is also an important research field.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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VSC No. | T1 | T2 | T3 |
---|---|---|---|
Rated Power (MW) | 20 | 10 | 10 |
AC grid voltage (kV) | 10 | 10 | 10 |
DC bus voltage (kV) | ±10 | ±10 | ±10 |
Submodule topology | half bridge | half bridge | half bridge |
Number of single-arm submodules | 25 | 25 | 25 |
Submodule Capacitance (mF) | 30 | 15 | 15 |
Bridge arm reactance (mH) | 3.5 | 7 | 7 |
Transformer capacity (MVA) | 24 | 12 | 12 |
Short circuit impedance ratio (%) | 10 | 10 | 10 |
Winding Type | Dyn11 | Dyn11 | Dyn11 |
DC reactor (mH) | 8 | 8 | 8 |
VSC No. | T1 | T2 | T3 |
---|---|---|---|
AC system capacity | 2 MVA | 1 MVA | 1 MVA |
AC voltage level | 10 kV | 10 kV | 10 kV |
control mode | VdcQ | PQ | PQ |
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Yang, R.; Fang, K.; Chen, J.; Chen, Y.; Liu, M.; Meng, Q. A Novel Protection Strategy for Single Pole-to-Ground Fault in Multi-Terminal DC Distribution Network. Energies 2023, 16, 2921. https://doi.org/10.3390/en16062921
Yang R, Fang K, Chen J, Chen Y, Liu M, Meng Q. A Novel Protection Strategy for Single Pole-to-Ground Fault in Multi-Terminal DC Distribution Network. Energies. 2023; 16(6):2921. https://doi.org/10.3390/en16062921
Chicago/Turabian StyleYang, Ruixiong, Ke Fang, Jianfu Chen, Yong Chen, Min Liu, and Qingxu Meng. 2023. "A Novel Protection Strategy for Single Pole-to-Ground Fault in Multi-Terminal DC Distribution Network" Energies 16, no. 6: 2921. https://doi.org/10.3390/en16062921
APA StyleYang, R., Fang, K., Chen, J., Chen, Y., Liu, M., & Meng, Q. (2023). A Novel Protection Strategy for Single Pole-to-Ground Fault in Multi-Terminal DC Distribution Network. Energies, 16(6), 2921. https://doi.org/10.3390/en16062921