Parameter Optimization Design of the Commutation Circuit of a Hybrid DC-Current-Limiting Circuit Breaker
Abstract
:1. Introduction
2. Operating Principle of the HDCCLCB
- (1)
- Under normal working conditions, the main circuit current flows through the vacuum interrupter (VI);
- (2)
- When the current needs to be cut off, the vacuum interrupter (VI) is opened, and the vacuum arc appears;
- (3)
- After a short arcing time, the thyristor (T) of the commutation circuit is triggered, and the pre-charged capacitor (C) discharges the vacuum interrupter (VI) through the inductor (L). The reverse parallel diode (D) cannot be turned on due to the clamping effect of the arc voltage, so the entire pulse current flows to the VI. The pulse current is opposite to the main circuit current, which makes the current in the VI gradually decrease until the current zero crossing is formed;
- (4)
- Because the reverse pulse current flows through the reverse parallel diode (D) after the arc is extinguished, the voltage drop on the contact of the VI is approximately zero. The transient recovery overvoltage will not occur until the pulse current is equal to the main circuit current again. During this phase, the VI enters the zero-voltage recovery time. In this process, the vacuum interrupter contact is still in motion, and the contact opening distance increases continuously, which is more conducive to the successful breaking of the VI.
3. Equivalent Circuit and Preliminary Parameter Design in the Commutation Process
3.1. Equivalent Circuit in the Commutation Process
3.2. Preliminary Design of the Commutation Circuit Parameters
- (1)
- The peak value of the commutation circuit current I6 shall be greater than the corresponding main circuit current Imax;
- (2)
- In order to meet the need of dielectric recovery of the VI, zero-voltage time ;
- (3)
- The currents of the commutation circuit shall all flow through the VI to reduce the energy stored in the capacitor;
- (4)
- Due to the limitation of the short-time withstand of the thyristor, the initial rising rate of the current in the commutation circuit .
- (1)
- When , that is , L1 > L2
- (2)
- When , that is , L1 ≤ L2
- (1)
- When , the matching of optimization parameters is: current-limiting inductance and commutation capacitance . Each parameter is independent of the initial current rising rate of the commutation circuit and proportional to the zero-voltage time.
- (2)
- When , the matching of optimization parameters is: current-limiting inductance and commutation capacitance . Each parameter is independent of the zero-voltage time and inversely proportional to the initial current rising rate of the commutation circuit.
4. Circuit Simulation Model of the HDCCLCB
5. Prototype Experiment and Circuit Model Verification
6. Optimization Design of the Commutation Circuit Parameters
6.1. Optimization Analysis Model of the Commutation Circuit Parameters
6.2. Influence of the Parameters on the Objective Function
6.3. Optimization Results and Simulation Comparison
7. Discussion
8. Conclusions
- (1)
- Under the condition of only changing the arcing time, with the increase in the arcing time, the critical breakdown voltage and the objective function of the contact firstly increase and then decrease, and there is a maximum value;
- (2)
- Under the condition of only changing the current-limiting inductance, with the increase in the current-limiting inductance, the critical breakdown voltage and the objective function of the contact firstly increase and then decrease, and there is a maximum value;
- (3)
- Under the condition of only changing the capacitance value, the critical breakdown voltage of the contact always increases with the increase in the capacitance value. The objective function firstly increases and then decreases, and there is a maximum value;
- (4)
- Under the condition of only changing the capacitor voltage, the critical breakdown voltage of the contact increases with the increase in the capacitor voltage. The objective function always decreases;
- (5)
- By comprehensively considering the impact of various factors on the objective function rather than solely considering the impact of a single factor, further optimization of the objective function can be achieved;
- (6)
- The optimization design model established in this paper can optimize the parameters of the commutation circuit, laying a solid foundation for further analysis and the design of medium-voltage DC-current-limiting circuit breakers for ships.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Time | Event |
---|---|
0 μs | Short circuit fault occurs |
100 μs | Fault detection time |
220 μs | Inherent time of the vacuum interrupter |
290 μs | Arcing time before commutating |
tr/μs | L/μH | C/mF | U/V | |
---|---|---|---|---|
1 | 24 | 7.5 | 2 | 900 |
2 | 24 | 6.16 | 1.2 | 900 |
Parameter | Preliminary Design | Optimization Design | Percentage Difference |
---|---|---|---|
di/dt/(A/μs) | 120 | 146 | +21.7% |
Q/J | 3.52 | 3.14 | −10.8% |
CU2/J | 1620 | 972 | −40% |
Vb/V | 18,955 | 13,733 | −27.5% |
y | 11.70 | 14.12 | +20.7% |
No Limitations on di/dt and tL | Only Considering the Limitation on tL | Only Considering the Limitation on di/dt | Considering the Limitations on di/dt and tL | |
---|---|---|---|---|
tL/μs | 19.45 | 152 > 150 | 17.76 | 156 > 150 |
di/dt/(A/μs) | 360 | 240 | 180 < 220 | 120 < 220 |
L/μH | 1.875 | 1.875 | 3.75 | 3.75 |
C/mF | 0.5 | 4 | 1 | 4 |
U/V | 675 | 450 | 675 | 450 |
tr/μs | 160 | 140 | 140 | 60 |
Q/J | 19.37 | 17.43 | 18.69 | 9.54 |
CU2/J | 228 | 810 | 456 | 810 |
Vb/V | 12,900 | 20,100 | 14,100 | 17,900 |
y | 56.58 | 24.81 | 30.92 | 22.10 |
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Lv, Z.; Zhuang, J.; Wu, J.; Liu, L.; Yuan, Z.; Jiang, Z.; Wang, X. Parameter Optimization Design of the Commutation Circuit of a Hybrid DC-Current-Limiting Circuit Breaker. Energies 2023, 16, 7546. https://doi.org/10.3390/en16227546
Lv Z, Zhuang J, Wu J, Liu L, Yuan Z, Jiang Z, Wang X. Parameter Optimization Design of the Commutation Circuit of a Hybrid DC-Current-Limiting Circuit Breaker. Energies. 2023; 16(22):7546. https://doi.org/10.3390/en16227546
Chicago/Turabian StyleLv, Zhiyong, Jinwu Zhuang, Jin Wu, Luhui Liu, Zhifang Yuan, Zhuangxian Jiang, and Xiangjun Wang. 2023. "Parameter Optimization Design of the Commutation Circuit of a Hybrid DC-Current-Limiting Circuit Breaker" Energies 16, no. 22: 7546. https://doi.org/10.3390/en16227546
APA StyleLv, Z., Zhuang, J., Wu, J., Liu, L., Yuan, Z., Jiang, Z., & Wang, X. (2023). Parameter Optimization Design of the Commutation Circuit of a Hybrid DC-Current-Limiting Circuit Breaker. Energies, 16(22), 7546. https://doi.org/10.3390/en16227546