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
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;
Conference_Titel :
Power Electronics Specialists Conference, 2004. PESC 04. 2004 IEEE 35th Annual
Print_ISBN :
0-7803-8399-0
DOI :
10.1109/PESC.2004.1355380