TY - JOUR
T1 - A Novel Hybrid Capacity Regulating Transformer and Its Dual-Mode Flexible Switching Strategy
AU - Lai, Jinmu
AU - Wang, Fei
AU - Liang, Jun
AU - Xiao, Fan
AU - Wang, Sheng
AU - Yin, Xin
N1 - Publisher Copyright:
© 1982-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - Distribution systems with high penetration of distributed renewable energy sources (DRES) encounter challenges such as inefficient operation under light-load conditions, and power quality disturbances. To address these issues, this article proposes a novel hybrid capacity regulating transformer (HCRT) integrated with an auxiliary multifunctional converter (MFC) and a dual-mode flexible switching strategy. An equivalent circuit model of the HCRT is developed to derive the arc-free tap-changing mechanism for both large- and small-capacity operations. Optimal energy-saving operating is achieved through coordinated control of the auxiliary MFC. During mode transitions, the auxiliary MFC fully supports the load and decouples tap-changing operations on both windings via solid-state switches, enabling zero-current, arc-free switching and simplifying the on-load tap changers design. A four-stage capacity regulation (FSCR) process is introduced to reduce control complexity. Furthermore, a dual-mode flexible switching strategy is proposed for FSCR, employing a weighting coefficient to coordinate grid-following and grid-forming control, enabling smooth mode transitions without inducing load voltage disturbances. Simulation and experimental results validate the effectiveness and feasibility of the proposed topology and control scheme.
AB - Distribution systems with high penetration of distributed renewable energy sources (DRES) encounter challenges such as inefficient operation under light-load conditions, and power quality disturbances. To address these issues, this article proposes a novel hybrid capacity regulating transformer (HCRT) integrated with an auxiliary multifunctional converter (MFC) and a dual-mode flexible switching strategy. An equivalent circuit model of the HCRT is developed to derive the arc-free tap-changing mechanism for both large- and small-capacity operations. Optimal energy-saving operating is achieved through coordinated control of the auxiliary MFC. During mode transitions, the auxiliary MFC fully supports the load and decouples tap-changing operations on both windings via solid-state switches, enabling zero-current, arc-free switching and simplifying the on-load tap changers design. A four-stage capacity regulation (FSCR) process is introduced to reduce control complexity. Furthermore, a dual-mode flexible switching strategy is proposed for FSCR, employing a weighting coefficient to coordinate grid-following and grid-forming control, enabling smooth mode transitions without inducing load voltage disturbances. Simulation and experimental results validate the effectiveness and feasibility of the proposed topology and control scheme.
KW - Auxiliary multifunctional converter
KW - dual-mode flexible switching strategy
KW - hybrid capacity regulating transformer (HCRT)
KW - zero-current arc-free capacity regulation
UR - https://www.scopus.com/pages/publications/105043358044
U2 - 10.1109/TIE.2026.3672864
DO - 10.1109/TIE.2026.3672864
M3 - Article
AN - SCOPUS:105043358044
SN - 0278-0046
VL - 73
SP - 11711
EP - 11723
JO - IEEE Transactions on Industrial Electronics
JF - IEEE Transactions on Industrial Electronics
IS - 8
ER -