TY - JOUR
T1 - An Accurate, Universal, and Fast Time Domain Model for Different Types of Resonant Converters by Considering Parasitic Capacitors and Deadtime
AU - Li, Ziang
AU - Zhang, Shuo
AU - Chen, Dachuan
AU - Sun, Peng
AU - He, Yanjie
AU - Luo, Quanming
AU - Liu, Jinjun
AU - Wei, Yuqi
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2025
Y1 - 2025
N2 - The existing time domain models for CLLLC class resonant converters have at least one of the following drawbacks: 1) the model cannot be applied for different resonant tanks and circuit topologies; 2) the effect of parasitic capacitors and deadtime is ignored; 3) large computation time is required to obtain steady state waveforms. To address these issues, an advanced state-space based analysis (ASSA) model is proposed in this article. The operation stages by considering parasitic capacitors and deadtime are proposed and equivalent to a universal circuit, which largely increases the accuracy with low model complexity. Additionally, the ASSA model is universal for different inverter structures, rectifier structures, and different resonant tanks, including LC, LLC, CLL, CLLC, and CLLLC. To improve the calculation speed, a hybrid operation mode analysis and ASSA model is proposed to obtain closer initial values and achieve steady state 2.15 times faster than traditional state-space based analysis methods. Finally, experimental results of CLLLC, CLLC, and LLC resonant converters working in multiple conditions are presented to validate the effectiveness and accuracy of the proposed ASSA model. Compared with the traditional time domain model, the relative error of resonant inductor current waveforms is reduced from 5.91%–43.54% to 2.83%–19.42%.
AB - The existing time domain models for CLLLC class resonant converters have at least one of the following drawbacks: 1) the model cannot be applied for different resonant tanks and circuit topologies; 2) the effect of parasitic capacitors and deadtime is ignored; 3) large computation time is required to obtain steady state waveforms. To address these issues, an advanced state-space based analysis (ASSA) model is proposed in this article. The operation stages by considering parasitic capacitors and deadtime are proposed and equivalent to a universal circuit, which largely increases the accuracy with low model complexity. Additionally, the ASSA model is universal for different inverter structures, rectifier structures, and different resonant tanks, including LC, LLC, CLL, CLLC, and CLLLC. To improve the calculation speed, a hybrid operation mode analysis and ASSA model is proposed to obtain closer initial values and achieve steady state 2.15 times faster than traditional state-space based analysis methods. Finally, experimental results of CLLLC, CLLC, and LLC resonant converters working in multiple conditions are presented to validate the effectiveness and accuracy of the proposed ASSA model. Compared with the traditional time domain model, the relative error of resonant inductor current waveforms is reduced from 5.91%–43.54% to 2.83%–19.42%.
KW - Deadtime
KW - parasitic capacitor
KW - resonant converter
KW - time-domain model
UR - https://www.scopus.com/pages/publications/85200262782
U2 - 10.1109/TPEL.2024.3437251
DO - 10.1109/TPEL.2024.3437251
M3 - 文章
AN - SCOPUS:85200262782
SN - 0885-8993
VL - 40
SP - 1305
EP - 1321
JO - IEEE Transactions on Power Electronics
JF - IEEE Transactions on Power Electronics
IS - 1
ER -