The Short-Circuit Fault Current Impact Mechanism and Adaptive Control Strategy of an MMC-HVDC
Abstract
:1. Introduction
- The mechanism of the short circuit supplied by the MMC-HVDC system is clarified, and the main impact factors are analyzed.
- To allow for the MMC to adjust its injected fault current, an adaptive reference control and an adaptive limiter control are proposed, which are easy to realize and effective in impacting the short circuits of AC systems.
- To guarantee that the MMC can continuously impact an AC system’s fault current, an adaptive capacitor method is also proposed that can render the system more stable during the fault period.
2. The Structure and Control of an MMC-HVDC
2.1. The Structure of an MMC-HVDC
2.2. The Control of an MMC-HVDC
2.3. The Limiter of an MMC-HVDC
3. The Fault Current Influence Mechanism of the VSC and the Control Strategy
3.1. The Fault Current Influence Mechanism
3.2. The Adapative Control Strategy
3.3. The Adapative Capacitor Strategy
4. Simulation Verifications
4.1. Case 1 Study: An MMC without Adaptive Control
4.2. Case 2 Study: MMC with a Positive Adaptive Reference Control
4.3. Case 3 Study: The MMC with a Negative Adaptive Reference Control
4.4. Case 4 Study: The MMC with an Adaptive Limiter Control
4.5. Case 5 Study: The MMC with an Adaptive Capacitor
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
MMC | Modular multilevel converter |
AC | Alternate current |
HVDC | High-voltage direct current |
DFIG | Doubly fed induction generator |
FACTS | Flexible AC transmission systems |
LCC | Line-commutated converter |
UPFC | Unified power flow controller |
PCC | Point of common coupling |
SM | Submodules |
RMS | Root mean square |
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Control Strategy | Inverter | Rectifier |
---|---|---|
Active power control mode | Constant active power control | Constant DC voltage control |
Reactive power control mode | Constant reactive power control | Constant reactive power control |
Name | Value | |
---|---|---|
AC system | Rated AC voltage/kV | 380 |
MMC Converter | Rated DC voltage/kV | 400 |
HBSM number | 180 | |
HBSM capacitance/mF | 15 | |
Arm reactance/mH | 50 | |
idlim of inverter/p.u. | 1.1 | |
iqlim of inverter/p.u. | 0.4 | |
idlim of rectifier/p.u. | 1.1 | |
iqlim of rectifier/p.u. | 0.4 | |
Line Parameter | Resistance/ohm/m | 0.1782 × 10−4 |
Inductive reactance/ohm/m | 0.3139 × 10−3 | |
Capacitive reactance/ohm*m | 273.5448 |
Control Strategy | AC System Supplied Fault Current | MMC Supplied Fault Current | The Total Fault Current |
---|---|---|---|
MMC without adaptive control | 11.5 p.u. | 0 p.u. | 11.5 p.u. |
MMC with positive adaptive reference control | 11.5 p.u. | 1.1 p.u. | 12.6 p.u. |
MMC with negative adaptive reference control | 11.5 p.u. | −1.1 p.u. | 10.4 p.u. |
MMC with adaptive limiter control | 11.5 p.u. | 1.5 p.u. | 13.0 p.u. |
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Wang, X.; Chen, Z.; Zhang, Y.; Jiang, Q.; Li, B.; He, Y.; Li, Q. The Short-Circuit Fault Current Impact Mechanism and Adaptive Control Strategy of an MMC-HVDC. Processes 2023, 11, 837. https://doi.org/10.3390/pr11030837
Wang X, Chen Z, Zhang Y, Jiang Q, Li B, He Y, Li Q. The Short-Circuit Fault Current Impact Mechanism and Adaptive Control Strategy of an MMC-HVDC. Processes. 2023; 11(3):837. https://doi.org/10.3390/pr11030837
Chicago/Turabian StyleWang, Xi, Zhen Chen, Yinming Zhang, Qin Jiang, Baohong Li, Yao He, and Qiping Li. 2023. "The Short-Circuit Fault Current Impact Mechanism and Adaptive Control Strategy of an MMC-HVDC" Processes 11, no. 3: 837. https://doi.org/10.3390/pr11030837
APA StyleWang, X., Chen, Z., Zhang, Y., Jiang, Q., Li, B., He, Y., & Li, Q. (2023). The Short-Circuit Fault Current Impact Mechanism and Adaptive Control Strategy of an MMC-HVDC. Processes, 11(3), 837. https://doi.org/10.3390/pr11030837