TY - JOUR
T1 - An SiC MOSFET based three-phase ZVS inverter employing variable switching frequency space vector PWM control
AU - Chen, Jianliang
AU - Sha, Deshang
AU - Zhang, Jiankun
AU - Liao, Xiaozhong
N1 - Publisher Copyright:
© 1986-2012 IEEE.
PY - 2019/7
Y1 - 2019/7
N2 - In this paper, a variable switching frequency space vector pulsewidth modulation control is proposed. It is used to achieve zero voltage switching (ZVS) for a three-phase grid-connected voltage source inverter with unity power factor. A wide range of ZVS can be realized without any additional sensors, auxiliary circuits, or current zero crossing detection circuits. The switching frequency can be easily calculated by a digital controller. The frequency variation range in a line cycle is only about 1.5 times at any specific load. An LCL filter is used to attenuate the high current ripples at the inverter side, and active damping is adopted to avoid the resonance and reduce the filter power loss. The switching loss can be significantly reduced by using silicon carbide mosfets so that the conversion efficiency is high. The power density can also be improved due to the high switching frequency and the low inductance value of the filter. The operating principle, design considerations, and loss analyses are discussed in detail. A 3.5-kW simulation and experimental prototype interfacing a 350-400-V dc with a three-phase 110-V ac grid is developed to verify the performance of the proposed control strategy.
AB - In this paper, a variable switching frequency space vector pulsewidth modulation control is proposed. It is used to achieve zero voltage switching (ZVS) for a three-phase grid-connected voltage source inverter with unity power factor. A wide range of ZVS can be realized without any additional sensors, auxiliary circuits, or current zero crossing detection circuits. The switching frequency can be easily calculated by a digital controller. The frequency variation range in a line cycle is only about 1.5 times at any specific load. An LCL filter is used to attenuate the high current ripples at the inverter side, and active damping is adopted to avoid the resonance and reduce the filter power loss. The switching loss can be significantly reduced by using silicon carbide mosfets so that the conversion efficiency is high. The power density can also be improved due to the high switching frequency and the low inductance value of the filter. The operating principle, design considerations, and loss analyses are discussed in detail. A 3.5-kW simulation and experimental prototype interfacing a 350-400-V dc with a three-phase 110-V ac grid is developed to verify the performance of the proposed control strategy.
KW - Space vector pulsewidth modulation (SVPWM)
KW - three-phase voltage source inverter (VSI)
KW - variable switching frequency control
KW - zero voltage switching (ZVS)
UR - http://www.scopus.com/inward/record.url?scp=85054510239&partnerID=8YFLogxK
U2 - 10.1109/TPEL.2018.2874036
DO - 10.1109/TPEL.2018.2874036
M3 - Article
AN - SCOPUS:85054510239
SN - 0885-8993
VL - 34
SP - 6320
EP - 6331
JO - IEEE Transactions on Power Electronics
JF - IEEE Transactions on Power Electronics
IS - 7
M1 - 8481573
ER -