Title :
Thermal management during stalled rotor by conduction loss redistribution
Author :
Ali, Syed Q. ; Bhattacharya, Subhadeep ; Mascarella, Diego ; Joos, Geza
Author_Institution :
Dept. of Electr. & Comput. Eng., McGill Univ., Montreal, QC, Canada
Abstract :
The demand for higher power density in electric traction applications has led to compact design requirements for traction drives complicating its thermal management. Therefore, the traction drive´s thermal management has to be addressed by its design and/or control. Normally, the traction inverter becomes the bottleneck in providing the transient rated peak torque at zero and near zero speeds due to peak current conduction for longer fundamental frequency cycles. This paper presents thermal management strategies based on both current limitation and on an alternate modulation scheme that redistributes the losses between the IGBTs and diodes of the highest current carrying leg at very low modulation indices. The presented strategies avoid or delay the over-temperature junction failure due to high conduction losses. The proposed strategies enable the drive to provide the rated peak torque at zero or near zero speeds while avoiding or delaying thermal failure.
Keywords :
electric vehicles; insulated gate bipolar transistors; permanent magnet motors; rotors; synchronous motors; thermal management (packaging); traction motor drives; IGBT; conduction loss redistribution; delaying thermal failure; over-temperature junction failure; stalled rotor; thermal management; traction drive; traction inverter; Calculators; Insulated gate bipolar transistors; Permanent magnets; Rotors; Synchronous motors; Thermal management; Transient analysis; electric vehicles; electro-thermal modeling; loss distribution; low frequency thermal failure; permanent magnet synchronous motor; stalled rotor;
Conference_Titel :
Transportation Electrification Conference and Expo (ITEC), 2015 IEEE
Conference_Location :
Dearborn, MI
DOI :
10.1109/ITEC.2015.7165805