DocumentCode :
2845398
Title :
An Ultra Sparse Matrix Converter with a Novel Active Clamp Circuit
Author :
Schönberger, J. ; Friedli, T. ; Round, S.D. ; Kolar, J.W.
Author_Institution :
ETH Zurich, Zurich
fYear :
2007
fDate :
2-5 April 2007
Firstpage :
784
Lastpage :
791
Abstract :
The ultra sparse matrix converter (USMC) is a AC-DC-AC converter that requires only 9 power switches compared to the 18 switches required for a conventional matrix converter. The simplified input switch configuration restricts this converter to unidirectional power flow applications in which the maximum displacement angle between input and output voltages and currents is plusmnpi/6. A novel clamp circuit is therefore used to protect the converter from overvoltages incurred under regeneration conditions. This paper presents the design of a 5.5 kVA USMC which uses space vector modulation in combination with a zero current commutation scheme at the input rectifier stage. The design of the system is detailed and the hardware implementation of the converter is described. Experimental results demonstrate the operation of the clamp circuit and show that the converter draws sinusoidal currents from the input and supplies sinusoidal currents to the output with a conversion efficiency of up to 94%.
Keywords :
AC-AC power convertors; commutation; load flow; matrix convertors; 9 power switches; AC-DC-AC converter; USMC; active clamp circuit; space vector modulation; ultra sparse matrix converter; unidirectional power flow applications; zero current commutation scheme; Analog-digital conversion; Circuits; Clamps; Load flow; Matrix converters; Power system protection; Sparse matrices; Switches; Switching converters; Voltage; Active clamp; matrix converter; reverse current; ultra sparse;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Power Conversion Conference - Nagoya, 2007. PCC '07
Conference_Location :
Nagoya
Print_ISBN :
1-4244-0844-X
Electronic_ISBN :
1-4244-0844-X
Type :
conf
DOI :
10.1109/PCCON.2007.373056
Filename :
4239246
Link To Document :
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