TY - JOUR
T1 - A Variable Structure Modulation Strategy to Suppress CMV and Reduce Switching Losses for UAV Electric Propulsion System
AU - Tan, Bo
AU - Dai, Jiawei
AU - Chen, Chaobo
AU - Gao, Song
AU - Lei, Ke
AU - Huangfu, Yigeng
N1 - Publisher Copyright:
© 2015 IEEE.
PY - 2025
Y1 - 2025
N2 - It is well known that the electromagnetic compatibility and efficiency of UAV electric propulsion systems are related to the weight of electromagnetic filter and heat sink so that the weight of devices can be reduced by suppressing common mode voltages (CMVs), and the reduction in switching losses is the benefit for improving system efficiency. The modulation strategies have been widely adopted to suppress CMV and switching losses, but most of the strategies have not considered the suppression of low-frequency CMV. This article proposes a variable structure modulation strategy (VSMS) to suppress high-frequency CMV, low-frequency CMV, and switching losses. First, this strategy adds the restriction condition that the sum of vectors with the same CMV amplitude is equal, that is, improved SPWM (ISPWM). It extends the round shape with the traditional modulation degree of 1 to a regular hexagon that is circumscribed to the round shape, achieving zero CMV within this modulation degree. The use of near-state PWM (NSPWM) outside the regular hexagonal area can effectively suppress CMV and switching losses. Different from the traditional combination method, which only selects different methods based on the modulation degree, VSMS can automatically switch ISPWM and NSPWM within the whole vector circle as the voltage rotates, thus achieving the integration of the two methods. Finally, the effectiveness of VSMS is verified by experimental results.
AB - It is well known that the electromagnetic compatibility and efficiency of UAV electric propulsion systems are related to the weight of electromagnetic filter and heat sink so that the weight of devices can be reduced by suppressing common mode voltages (CMVs), and the reduction in switching losses is the benefit for improving system efficiency. The modulation strategies have been widely adopted to suppress CMV and switching losses, but most of the strategies have not considered the suppression of low-frequency CMV. This article proposes a variable structure modulation strategy (VSMS) to suppress high-frequency CMV, low-frequency CMV, and switching losses. First, this strategy adds the restriction condition that the sum of vectors with the same CMV amplitude is equal, that is, improved SPWM (ISPWM). It extends the round shape with the traditional modulation degree of 1 to a regular hexagon that is circumscribed to the round shape, achieving zero CMV within this modulation degree. The use of near-state PWM (NSPWM) outside the regular hexagonal area can effectively suppress CMV and switching losses. Different from the traditional combination method, which only selects different methods based on the modulation degree, VSMS can automatically switch ISPWM and NSPWM within the whole vector circle as the voltage rotates, thus achieving the integration of the two methods. Finally, the effectiveness of VSMS is verified by experimental results.
KW - Common mode voltage (CMV)
KW - modulation strategy
KW - switching losses
KW - voltage source inverter (VSI)
UR - http://www.scopus.com/inward/record.url?scp=85197535274&partnerID=8YFLogxK
U2 - 10.1109/TTE.2024.3422498
DO - 10.1109/TTE.2024.3422498
M3 - 文章
AN - SCOPUS:85197535274
SN - 2332-7782
VL - 11
SP - 2405
EP - 2414
JO - IEEE Transactions on Transportation Electrification
JF - IEEE Transactions on Transportation Electrification
IS - 1
ER -