TY - JOUR
T1 - Analysis and Integration of Chaotic Gaussian PWM and Passive Filter for Conducted EMI Suppression
AU - Li, Chentao
AU - Wang, Jingsong
AU - Xu, Ping
AU - Ma, Qishuang
N1 - Publisher Copyright:
© IEEE. 2025 IEEE.
PY - 2025
Y1 - 2025
N2 - As wide bandgap semiconductor devices continue to be adopted, power converters can now operate at higher switching frequencies and power densities. However, this progress presents new challenges in controlling electromagnetic interference (EMI). Traditional passive EMI filters (PEFs) effectively suppress EMI, but are constrained by their size and weight, limiting power density improvements in converters. To address these issues, this article introduces an innovative strategy combining chaotic pulsewidth modulation (PWM) with Gaussian waveforms to produce chaotic Gaussian PWM (CGPWM). While CGPWM demonstrates excellent performance in reducing high-frequency EMI, stringent electromagnetic compatibility standards still necessitate the use of robust passive filters. Accordingly, this article designs a PEF based on CGPWM, aimed at enhancing EMI suppression while significantly reducing the size and inductance of common-mode (CM) inductors. By examining the spectrum reduction effects of square, Gaussian, and chaotic Gaussian waveforms, an optimized PEF is developed based on CGPWM. Experimental results reveal that this integrated approach reduces CM inductor volume by over 74.28% and inductance by 60%, achieving up to 50 dB of EMI attenuation. These outcomes highlight the potential of combining CGPWM and PEF for effective EMI suppression and minimized filter size, making it a promising solution for high-density power electronics.
AB - As wide bandgap semiconductor devices continue to be adopted, power converters can now operate at higher switching frequencies and power densities. However, this progress presents new challenges in controlling electromagnetic interference (EMI). Traditional passive EMI filters (PEFs) effectively suppress EMI, but are constrained by their size and weight, limiting power density improvements in converters. To address these issues, this article introduces an innovative strategy combining chaotic pulsewidth modulation (PWM) with Gaussian waveforms to produce chaotic Gaussian PWM (CGPWM). While CGPWM demonstrates excellent performance in reducing high-frequency EMI, stringent electromagnetic compatibility standards still necessitate the use of robust passive filters. Accordingly, this article designs a PEF based on CGPWM, aimed at enhancing EMI suppression while significantly reducing the size and inductance of common-mode (CM) inductors. By examining the spectrum reduction effects of square, Gaussian, and chaotic Gaussian waveforms, an optimized PEF is developed based on CGPWM. Experimental results reveal that this integrated approach reduces CM inductor volume by over 74.28% and inductance by 60%, achieving up to 50 dB of EMI attenuation. These outcomes highlight the potential of combining CGPWM and PEF for effective EMI suppression and minimized filter size, making it a promising solution for high-density power electronics.
KW - Chaotic Gaussian pulse width modulation (CGPWM)
KW - Gaussian waveform
KW - electromagnetic interference (EMI)
KW - passive EMI filter (PEF)
KW - spectrum
UR - https://www.scopus.com/pages/publications/105008675556
U2 - 10.1109/TEMC.2025.3571194
DO - 10.1109/TEMC.2025.3571194
M3 - 文章
AN - SCOPUS:105008675556
SN - 0018-9375
VL - 67
SP - 1171
EP - 1181
JO - IEEE Transactions on Electromagnetic Compatibility
JF - IEEE Transactions on Electromagnetic Compatibility
IS - 4
ER -