DocumentCode :
1920343
Title :
Dynamic DC-link voltage adaptation for thermal management of traction drives
Author :
Lemmens, Joris ; Driesen, Johan ; Vanassche, Piet
Author_Institution :
Dept. of Electr. Eng. ESAT-ELECTA, Katholieke Univ. Leuven, Leuven, Belgium
fYear :
2013
fDate :
15-19 Sept. 2013
Firstpage :
180
Lastpage :
187
Abstract :
Power density and reliability specifications for motor drives in traction applications are getting increasingly stringent. The main challenge in meeting these conflicting requirements, is managing heat dissipation. A drive´s peak torque rating is limited by switching device temperatures which must be kept below critical values at all times for the sake of reliability, preferably without major hardware adaptations. In this challenge lies a large potential for advanced control algorithms. This paper proposes a PMSM drive control strategy which combines active thermal management with dynamic DC-link voltage adaptation. The bus voltage level is adjusted to the required PMSM terminal voltage in each operating point. Doing so, switching losses can be reduced at low speed by lowering the bus voltage. At high speed, the voltage level is boosted and field-weakening operation and the associated additional losses are avoided. An 11 kW PMSM drive, with an active front-end controlling the bus voltage, is used as a test setup to mimic a series-hybrid drivetrain. Compared to a fixed DC-link voltage, efficiency maps show a significant inverter loss reduction at low speed. This results in lower switching device temperatures which in turn allows a higher peak torque rating.
Keywords :
cooling; invertors; machine control; permanent magnet motors; power transmission (mechanical); reliability; synchronous motor drives; traction motor drives; voltage control; PMSM drive control strategy; PMSM terminal voltage; active front-end; active thermal management; advanced control algorithm; bus voltage level; drive peak torque rating; dynamic DC-link voltage adaptation; efficiency maps; field-weakening operation; fixed DC-link voltage; hardware adaptation; heat dissipation management; inverter loss reduction; motor drives; peak torque rating; power density; reliability specification; series-hybrid drivetrain; switching device temperature; switching device temperatures; switching loss; traction drives; voltage level; Insulated gate bipolar transistors; Inverters; Junctions; Switches; Thermal management; Torque; Voltage control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Energy Conversion Congress and Exposition (ECCE), 2013 IEEE
Conference_Location :
Denver, CO
Type :
conf
DOI :
10.1109/ECCE.2013.6646698
Filename :
6646698
Link To Document :
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