DocumentCode :
23675
Title :
A Method for Supply Voltage Boosting in an Open-Ended Induction Machine Using a Dual Inverter System With a Floating Capacitor Bridge
Author :
Ewanchuk, Jeffrey ; Salmon, John ; Chapelsky, Chris
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Alberta, Edmonton, AB, Canada
Volume :
28
Issue :
3
fYear :
2013
fDate :
Mar-13
Firstpage :
1348
Lastpage :
1357
Abstract :
An operational approach to an induction machine is presented that uses an open winding connected to a dual inverter system. A floating capacitor inverter bridge boosts the fundamental voltage available to the machine and arbitrarily sets the operating power factor of the main inverter bridge connected to the dc battery power source. During operation, the motor current charges the floating bridge dc capacitor voltage to a naturally stable dc voltage level and the ac voltage delivered to the machine is the resultant sum of the two inverter bridge voltages. Machine voltage boosting is then achieved by adjusting the fundamental phase angle difference between the two inverters to control the charge stored in the floating bridge capacitors. With the floating bridge providing reactive voltage support and therefore boosting the available supply voltage to the induction machine, there are two main outcomes: minimization of the supply current required for operation beyond the base speed of the electric machine, and supply voltage regulation of the drive system. Experimental results are used to verify the operation of the floating bridge arrangement by examining the load power factor angle and the phase difference between the two bridges. Results are presented for a passive RL load to illustrate the supply current reduction at high fundamental frequency operation, and a modified 2-hp, 1800-r/min induction to illustrate the dc voltage supply droop compensation.
Keywords :
compensation; induction motor drives; invertors; machine windings; power capacitors; power factor; AC motor drives; ac voltage; dc battery power source; dc voltage level; dc voltage supply droop compensation; drive system; dual inverter system; electric machine; floating capacitor inverter bridge; fundamental phase angle difference; high fundamental frequency operation; load power factor angle; machine voltage boosting; open winding; open-ended induction machine; operating power factor; power 2 hp; supply voltage boosting method; supply voltage regulation; Boosting; Bridge circuits; Capacitors; Induction machines; Inverters; Reactive power; Voltage control; AC motor drives; DC/AC conversion; power factor correction; voltage regulators;
fLanguage :
English
Journal_Title :
Power Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8993
Type :
jour
DOI :
10.1109/TPEL.2012.2207741
Filename :
6236195
Link To Document :
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