DocumentCode
1885616
Title
D-Q models for resonant converters
Author
Zhang, Yingqi ; Sen, P.C.
Author_Institution
Low Power Electron. Lab., GE R&D Center, Shanghai, China
Volume
3
fYear
2004
fDate
20-25 June 2004
Firstpage
1749
Abstract
A systematic modeling method for resonant converters is proposed. This method develops low frequency D-Q models for resonant converters. For a given resonant tank, its orthogonal counterpart is constructed. By combining these two orthogonal tanks, a complex circuit is obtained. The complex circuit is then expressed into a D-Q form circuit. Every variable in the D-Q circuit can be treated as a rotating vector with its envelope modulated by a low frequency function. By removing high frequency terms, the low frequency D-Q model of the resonant converter is derived. This D-Q model has a DC operating point and can predict large signal transitions of the resonant converter with little computation. By perturbing the D-Q model around its DC operating point, equivalent circuits for the small signal models are derived. As an example, the series-parallel resonant DC/DC converter is analyzed by the proposed method. Startup process by the D-Q model agrees with the PSPICE simulation results very well. From the equivalent circuits of the small signal model, transfer functions of input-to-output, control-to-output are obtained as well as the output impedance. They are all verified by SIMPLIS simulation. This modeling technique is applicable to any resonant converter and need little computation.
Keywords
DC-DC power convertors; SPICE; equivalent circuits; power engineering computing; resonant power convertors; transfer functions; D-Q model; DC operating point; PSPICE simulation; SIMPLIS simulation; equivalent circuit; low frequency function; orthogonal counterpart; resonant converter; resonant tank; series-parallel resonant DC-DC converter; signal transition; small signal model; systematic modeling method; transfer function; Circuit simulation; Computational modeling; DC-DC power converters; Equivalent circuits; Frequency conversion; Impedance; Predictive models; Resonance; SPICE; Transfer functions;
fLanguage
English
Publisher
ieee
Conference_Titel
Power Electronics Specialists Conference, 2004. PESC 04. 2004 IEEE 35th Annual
ISSN
0275-9306
Print_ISBN
0-7803-8399-0
Type
conf
DOI
10.1109/PESC.2004.1355380
Filename
1355380
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