Title :
Conducted Common-Mode EMI Reduction by Impedance Balancing
Author :
Xing, Lei ; Sun, Jian
Author_Institution :
Rensselaer Polytech. Inst., Troy, NY, USA
fDate :
3/1/2012 12:00:00 AM
Abstract :
A new method to reduce common-mode (CM) electromagnetic interference (EMI) emission at the dc input of variable-speed motor drives is presented. Unlike conventional passive or active filtering techniques that rely on impedance mismatch or active noise cancellation, the proposed method uses a passive circuit with matched impedance to cancel the inverter CM current. In the proposed approach, a star-connected three-phase RC circuit is placed at the output of the inverter to extract the CM voltage. An inductor is connected between the star point of the RC circuit and the middle of the dc bus capacitor to inject a CM current into the dc input. A Wheatstone bridge is then identified in the CM equivalent circuit of the system with these additional components. By properly selecting the inductor, the Wheatstone bridge can be balanced, resulting in near-ideal cancellation of the input CM current. Development of the method is presented and an experimental setup is used to demonstrate its effects. A comparison with conventional EMI filtering methods in terms of overall filter volume is also presented.
Keywords :
capacitors; electromagnetic interference; equivalent circuits; impedance matching; inductors; interference suppression; invertors; passive networks; CM current; CM equivalent circuit; CM voltage; DC bus capacitor; EMI filtering methods; Wheatstone bridge; active filtering techniques; active noise cancellation; common-mode electromagnetic interference emission reduction; conducted common-mode EMI reduction; impedance balancing; inductor; inverter CM current; near-ideal cancellation; passive circuit; passive filtering techniques; star-connected three-phase RC circuit; variable-speed motor drives; Capacitors; Electromagnetic interference; Filtering; Impedance; Induction motors; Inverters; Passive filters; Common-mode EMI; EMI modeling; EMI reduction; impedance balancing;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2011.2176750