Interactions between a half-bridge MMC and a hybrid DC breaker during fault current interruption compared to a full-bridge MMC

2020 ◽  
Vol 13 (18) ◽  
pp. 4168-4175
Author(s):  
David Döring ◽  
Klaus Würflinger ◽  
Volker Staudt ◽  
Marcus Zeller ◽  
Günter Ebner
2019 ◽  
Vol 11 (16) ◽  
pp. 4493 ◽  
Author(s):  
Fazel Mohammadi ◽  
Gholam-Abbas Nazri ◽  
Mehrdad Saif

One of the major challenges toward the reliable and safe operation of the Multi-Terminal HVDC (MT-HVDC) grids arises from the need for a very fast DC-side protection system to detect, identify, and interrupt the DC faults. Utilizing DC Circuit Breakers (CBs) to isolate the faulty line and using a converter topology to interrupt the DC fault current are the two practical ways to clear the DC fault without causing a large loss of power infeed. This paper presents a new topology of a fast proactive Hybrid DC Circuit Breaker (HDCCB) to isolate the DC faults in MT-HVDC grids in case of fault current interruption, along with lowering the conduction losses and lowering the interruption time. The proposed topology is based on the inverse current injection technique using a diode and a capacitor to enforce the fault current to zero. Also, in case of bidirectional fault current interruption, the diode and capacitor prevent changing their polarities after identifying the direction of fault current, and this can be used to reduce the interruption time accordingly. Different modes of operation of the proposed topology are presented in detail and tested in a simulation-based system. Compared to the conventional DC CB, the proposed topology has increased the breaking current capability, and reduced the interruption time, as well as lowering the on-state switching power losses. To check and verify the performance and efficiency of the proposed topology, a DC-link representing a DC-pole of an MT-HVDC system is simulated and analyzed in the PSCAD/EMTDC environment. The simulation results verify the robustness and effectiveness of the proposed HDCCB in improving the overall performance of MT-HVDC systems and increasing the reliability of the DC grids.


2016 ◽  
Vol 9 (2) ◽  
pp. 207-218 ◽  
Author(s):  
Yunhai Shan ◽  
Tee C. Lim ◽  
Barry W. Williams ◽  
Stephen J. Finney

2017 ◽  
Vol 10 (6) ◽  
pp. 676-686 ◽  
Author(s):  
Yunhai Shan ◽  
Tee C. Lim ◽  
Stephen J. Finney ◽  
Weixiao Guang ◽  
Barry W. Williams ◽  
...  

Energies ◽  
2019 ◽  
Vol 12 (5) ◽  
pp. 859 ◽  
Author(s):  
Jinghan Zhang ◽  
Yuqun Gao ◽  
Fanglei Xiao ◽  
Fang Guo ◽  
Xinwei Li ◽  
...  

The multiterminal flexible DC (MTDC) distribution system has become a hot research topic for its advantages such as new energy load accessibility and high reliability of power supply. However, the fault current during short-circuit faults will be more complicated and serious because of the multiple operating modes and specific converter structure in MTDC distribution system. The high fault current will affect the safety of equipment and system operation. As a result, it is necessary to study the fault current generation mechanism and current limiting method of the DC distribution system. In this paper, the generation mechanism, transient characteristics, and the influencing factors of the fault current in the DC breaker during the short-circuit faults are analyzed by theoretical analysis and simulations separately based on a ±10 kV three-terminal flexible DC distribution system. The current limiting devices are analyzed, and its configuration position and parameter calculation method are proposed. On this basis, the parameters of the current limiting reactor and its effects on each position are analyzed by electromagnetic transient simulations. The current limiting scheme is proposed and its reliability is verified. The study results can provide some reference for overcurrent analysis and current limiting measures of the multiterminal DC distribution system.


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