TY - JOUR
T1 - A Unified DC Short-Circuit Fault Current Limiting Strategy for Hybrid-Arm MMC-Based DC Transformers
AU - Zhang, Debin
AU - Sha, Deshang
N1 - Publisher Copyright:
© 1986-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - DC transformers (DCTs) based on modular multilevel converters (MMCs) are becoming critical equipment in medium-voltage DC (MVDC) systems. However, under MVDC fault conditions, the short-circuit current is typically limited by blocking all submodules (SMs), which is unfavorable for rapid fault clearance, accurate fault location, or uninterruptible power supply to critical loads. Therefore, this paper proposes a hybrid-arm MMC-based DCT for interlinking MVDC and low-voltage DC (LVDC) systems.A DC short-circuit current limiting strategy is proposed, which utilizes the negative voltage output capability of full-bridge submodules (FBSMs) together with duty cycle control. Consequently, the HAMMC-DCT can operate over a wide MVDC voltage range (from zero to the rated value) resulting from fault-induced voltage drops. In addition, this strategy eliminates the requirement for a separate fault ride-through design, offering a unified and straightforward control approach. Meanwhile, zero-voltage switching (ZVS) is achieved under both normal and fault conditions. Furthermore, the proposed voltage-balancing algorithm ensures well-balanced capacitor voltages for FBSMs under different output-voltage states, both before and after a fault. Finally, experimental results are given to validate the feasibility and effectiveness of the proposed control strategy.
AB - DC transformers (DCTs) based on modular multilevel converters (MMCs) are becoming critical equipment in medium-voltage DC (MVDC) systems. However, under MVDC fault conditions, the short-circuit current is typically limited by blocking all submodules (SMs), which is unfavorable for rapid fault clearance, accurate fault location, or uninterruptible power supply to critical loads. Therefore, this paper proposes a hybrid-arm MMC-based DCT for interlinking MVDC and low-voltage DC (LVDC) systems.A DC short-circuit current limiting strategy is proposed, which utilizes the negative voltage output capability of full-bridge submodules (FBSMs) together with duty cycle control. Consequently, the HAMMC-DCT can operate over a wide MVDC voltage range (from zero to the rated value) resulting from fault-induced voltage drops. In addition, this strategy eliminates the requirement for a separate fault ride-through design, offering a unified and straightforward control approach. Meanwhile, zero-voltage switching (ZVS) is achieved under both normal and fault conditions. Furthermore, the proposed voltage-balancing algorithm ensures well-balanced capacitor voltages for FBSMs under different output-voltage states, both before and after a fault. Finally, experimental results are given to validate the feasibility and effectiveness of the proposed control strategy.
KW - DC short-circuit fault
KW - DC transformer (DCT)
KW - dual active bridge (DAB)
KW - Hybrid-arm modular multilevel converter (HAMMC)
KW - zero-voltage switching (ZVS)
UR - https://www.scopus.com/pages/publications/105044723837
U2 - 10.1109/TPEL.2026.3711870
DO - 10.1109/TPEL.2026.3711870
M3 - Article
AN - SCOPUS:105044723837
SN - 0885-8993
JO - IEEE Transactions on Power Electronics
JF - IEEE Transactions on Power Electronics
ER -