DocumentCode
3008426
Title
Digital Control of Resonant Converters: Enhancing Frequency Resolution by Dithering
Author
Peretz, Mor Mordechai ; Ben-Yaakov, Sam
Author_Institution
Dept. of Electr. & Comput. Eng., Ben-Gurion Univ. of the Negev, Beer-Sheva
fYear
2009
fDate
15-19 Feb. 2009
Firstpage
1202
Lastpage
1207
Abstract
Resonant converters and related systems, such as piezoelectric transformers, may require a high-resolution frequency drive when the quality factor of the network is high or to avoid limit cycle oscillations. This high frequency resolution requirement could be beyond the capabilities of low cost microcontrollers. To remedy this problem, a frequency resolution enhancement algorithm was developed, tested by simulations and verified experimentally. The proposed approach is based on a modification of the fractional-N dithering concept and includes an adaptive dithering period and smooth DPWM frequency transitions. The implementation of the approach on the digital hardware is simple and requires modest additional workload from the CPU. Theoretical analysis was carried out to model the proposed dithering method when applied to drive resonant network in order to identify the causes and to quantify the expected output signal distortion when the signal is used to drive resonant networks. The proposed approach was tested experimentally on two types of resonant converters: a series-resonant parallel-loaded converter and a piezoelectric transformer. It was found that the output signal distortion is less than 1% of the peak amplitude of the output drive which would be acceptable in many applications. The experimental results were found to be in excellent agreement with the theoretical predictions, validating the usefulness of the dithering method as a frequency resolution enhancer for resonant network drive.
Keywords
Q-factor; limit cycles; piezoelectric devices; resonant power convertors; transformers; adaptive dithering period; digital control; fractional-N dithering concept; frequency resolution enhancement algorithm; high-resolution frequency drive; limit cycle oscillations; output signal distortion; piezoelectric transformers; quality factor; resonant converters; series-resonant parallel-loaded converter; smooth DPWM frequency transitions; Digital control; Digital-to-frequency converters; Distortion; Drives; Frequency conversion; Resonance; Resonant frequency; Signal processing; Testing; Transformers;
fLanguage
English
Publisher
ieee
Conference_Titel
Applied Power Electronics Conference and Exposition, 2009. APEC 2009. Twenty-Fourth Annual IEEE
Conference_Location
Washington, DC
ISSN
1048-2334
Print_ISBN
978-1-4244-2811-3
Electronic_ISBN
1048-2334
Type
conf
DOI
10.1109/APEC.2009.4802816
Filename
4802816
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