Predictive Commutation Failure Suppression Strategy for High Voltage Direct Current System Considering Harmonic Components of Commutation Voltage
Abstract
:1. Introduction
- Based on the commutation-time area method, the critical commutation area of harmonic components in fault recovery process is provided. And the mechanism of first and subsequent commutation failures is analyzed in combination with the change of electrical quantity.
- A novel commutation failure suppression strategy considering multiple harmonics of commutation voltage and voltage prediction is proposed. The new extinction angle and zero-crossing offset angle after voltage distortion are given based on the harmonic components, so as to obtain the compensation margin of the lag trigger angle by combining the correction margin with the voltage change rate.
- Tuning method of parameters of extinction angle and voltage prediction variables are provided. Extensive case studies based on a CIGRE standard HVDC system are performed and analyzed and compared with a CIGRE standard test model and commutation failure prevention (CFPREV) control model. Simulation results verify that the proposed strategy can suppress the first and subsequent commutation failures and reduce the number of commutation failures effectively when different degrees of faults occur.
2. Commutation Failure and Harmonic Influence
2.1. The Principle of Commutation under the Influence of Harmonics
2.2. Influence of Harmonics on Subsequent Commutation Failure
3. Suppression Strategy Considering Harmonics and Voltage Prediction
3.1. Suppression Strategy Considering Multiple Harmonics of Commutation Voltage
3.2. Compensation Correction Based on Voltage Change Rate
3.3. Suppression Strategy Considering Harmonic and Voltage Prediction
4. Tuning Method of Parameters
4.1. Calculation of Reference Value of Extinction Angle
4.2. Voltage Change Rate Module Parameter Tuning
5. Case Study
5.1. Validation of Commutation Failure Suppression
5.2. Subsequent Commutation Failure Suppression Verification
6. Conclusions
- During the fault recovery process after the first commutation failure, the voltage distortion of the commutation bus caused by harmonics leads to a significant reduction in the commutation supply area, which is an important factor leading to the subsequent commutation failure.
- The proposed strategy calculates the extinction angle and offset angle based on the harmonic components and constructs a comparator to judge whether there is a risk of commutation failure. It is more accurate to obtain the early trigger amount in advance and improves the sensitivity of commutation failure suppression.
- The prediction module of proposed strategy considers the dynamic change rate of AC bus voltage during the process of faults and suppresses the first and subsequent commutation failures by calculating different indicators. Compared with the traditional control methods, the strategy in this paper can suppress the first commutation failure under the three-phase short-circuit fault degree of 23.8% and the subsequent commutation failure, and the first and subsequent commutation failures with single-phase short-circuit fault degree below 67.28%.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Nomenclature
α | Trigger delay angle of LCC. | |
β | Trigger advance angle of LCC. | |
γ | Extinction angle. | |
μ | Overlap angle. | |
u | Alternating voltage. | |
Lc | Equivalent inductance. | |
U | Commutation voltage. | |
UL | Amplitude of commutation voltage. | |
I | Direct current. | |
S | Commutation area. | |
i | Alternating current. | |
φ | Current error control. | |
Δ | Perturbational component of variables. | |
B | Correction coefficients of voltage change rate. | |
IY/D | Current at valve side of converter transformer. | |
K | Dynamic voltage prediction variable. | |
FL | Fault level. | |
Superscripts and Subscripts | ||
N | Maximum harmonic numbers. | |
ref | Reference value of variables. | |
d | Variables at direct current side. | |
level, 0 | Steady-state value of variables. | |
ac | Variables at alternating current side. | |
n | Harmonic numbers. | |
ord | Command value of variables. | |
i | Variables at inverter side. | |
ab,bc,ca/AB,BC,CA | Phase to phase of variables. | |
a,b,c/A,B,C | Phase to neutral of variables. |
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Parameter | Rectifier | Inverter |
---|---|---|
AC voltage/kV | 345 | 230 |
DC voltage/kV | 507 | 497 |
DC current/kA | 2 | 2 |
trigger angle/(°) | 20 | 18 |
DC power/MW | 1014 | 994 |
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Liu, X.; Cao, Z.; Gao, B.; Zhou, Z.; Wang, X.; Zhang, F. Predictive Commutation Failure Suppression Strategy for High Voltage Direct Current System Considering Harmonic Components of Commutation Voltage. Processes 2022, 10, 2073. https://doi.org/10.3390/pr10102073
Liu X, Cao Z, Gao B, Zhou Z, Wang X, Zhang F. Predictive Commutation Failure Suppression Strategy for High Voltage Direct Current System Considering Harmonic Components of Commutation Voltage. Processes. 2022; 10(10):2073. https://doi.org/10.3390/pr10102073
Chicago/Turabian StyleLiu, Xiaolin, Zeyu Cao, Bingtuan Gao, Zhuan Zhou, Xingang Wang, and Feng Zhang. 2022. "Predictive Commutation Failure Suppression Strategy for High Voltage Direct Current System Considering Harmonic Components of Commutation Voltage" Processes 10, no. 10: 2073. https://doi.org/10.3390/pr10102073
APA StyleLiu, X., Cao, Z., Gao, B., Zhou, Z., Wang, X., & Zhang, F. (2022). Predictive Commutation Failure Suppression Strategy for High Voltage Direct Current System Considering Harmonic Components of Commutation Voltage. Processes, 10(10), 2073. https://doi.org/10.3390/pr10102073