TY - JOUR
T1 - Efficiency-Optimization Control Strategy With Real-Time Modulation Scheme for Three-Phase Single-Stage Matrix-Type Isolated AC–DC Converters
AU - Guo, Zhiqiang
AU - Wang, Zining
AU - Liu, Luming
AU - Chen, Zhongyuan
N1 - Publisher Copyright:
© 1986-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - This article proposes a control strategy for three-phase single-stage matrix-type isolated ac–dc converters. By introducing the global optimization modes of dual active bridge converters, the target current vector of the ac–dc converter is composed of the two working modes in the two adjacent switching periods, which can simplify the calculation of the modulation scheme. However, the scheme will generate a transient dc bias current during different current vector switching, which may lead to the loss of the zero-voltage switching (ZVS). Therefore, a control algorithm to suppress the transient dc bias current is proposed to achieve ZVS and reduce turn-on switching loss. A simplified iteration algorithm is proposed to calculate the combined current vectors. The optimal working mode is calculated by a real-time modulation scheme without a lookup table. A single-loop control strategy without grid current sampling is presented to achieve the unity power factor. Finally, this control strategy is applied to a 1.5-kW three-phase single-stage matrix-type isolated ac–dc converter with 200-V/50-Hz line-to-line input voltage and 200-V output voltage. Experimental results demonstrate the performance of soft switching, fast dynamic response, and high efficiency.
AB - This article proposes a control strategy for three-phase single-stage matrix-type isolated ac–dc converters. By introducing the global optimization modes of dual active bridge converters, the target current vector of the ac–dc converter is composed of the two working modes in the two adjacent switching periods, which can simplify the calculation of the modulation scheme. However, the scheme will generate a transient dc bias current during different current vector switching, which may lead to the loss of the zero-voltage switching (ZVS). Therefore, a control algorithm to suppress the transient dc bias current is proposed to achieve ZVS and reduce turn-on switching loss. A simplified iteration algorithm is proposed to calculate the combined current vectors. The optimal working mode is calculated by a real-time modulation scheme without a lookup table. A single-loop control strategy without grid current sampling is presented to achieve the unity power factor. Finally, this control strategy is applied to a 1.5-kW three-phase single-stage matrix-type isolated ac–dc converter with 200-V/50-Hz line-to-line input voltage and 200-V output voltage. Experimental results demonstrate the performance of soft switching, fast dynamic response, and high efficiency.
KW - AC–DC converter
KW - optimal working modes
KW - space vector modulation (SVM)
KW - transient dc bias current suppression
KW - unity power factor (PF)
UR - https://www.scopus.com/pages/publications/105018361337
U2 - 10.1109/TPEL.2025.3616208
DO - 10.1109/TPEL.2025.3616208
M3 - Article
AN - SCOPUS:105018361337
SN - 0885-8993
VL - 41
SP - 4087
EP - 4103
JO - IEEE Transactions on Power Electronics
JF - IEEE Transactions on Power Electronics
IS - 3
ER -