|
Frontiers of Information Technology & Electronic Engineering
ISSN 2095-9184 (print), ISSN 2095-9230 (online)
2015 Vol.16 No.3 P.249-258
Analysis and design of pulse frequency modulation dielectric barrier discharge for low power applications
Abstract: For low power dielectric barrier discharge (DBD) used in small-size material treatment or portable devices, high-step transformer parasitic capacitance greatly influences the performance of the resonant converter as it is of the same order of magnitude as the equivalent capacitance of DBD load. In this paper, steady-state analysis of the low power DBD is presented, considering the inevitable parasitic capacitance of the high-step transformer. The rectifier-compensated first harmonic approximation (RCFHA) is applied to linearize the equivalent load circuit of DBD at low frequency and the derived expressions are accurate and convenient for the analysis and design of the power supply. Based on the proposed linear equivalent load circuit, the influence of transformer parasitic capacitance on the key parameters, including the frequency range and the applied electrode voltage, is discussed when the power is regulated with pulse frequency modulation (PFM). Also, a design procedure is presented based on the derived expressions. A prototype is constructed according to the design results and the accuracy of the design is verified by experimental results.
Key words: Dielectric barrier discharge, Rectifier-compensated first harmonic approximation, Parasitic capacitance, Power converter design
创新点:利用整流补偿基波近似法(rectifier-compensated first harmonic approximation, RCFHA)将DBD等效负载电路线性化,从而得到新的线性等效电路。基于此线性等效电路,分析变压器寄生电容对电路的影响并总结电源设计过程。
方法:提出一种新的DBD负载线性等效电路;分析变压器寄生电容对放电特性的影响;给出电源参数设计方法。
结论:仿真和实验结果证明分析和设计过程的准确性(图10-12)。利用所提设计方法,可以对小功率DBD电源进行准确的参数计算。
关键词组:
References:
Open peer comments: Debate/Discuss/Question/Opinion
<1>
DOI:
10.1631/FITEE.1400185
CLC number:
TM46
Download Full Text:
Downloaded:
3675
Download summary:
<Click Here>Downloaded:
2105Clicked:
7977
Cited:
1
On-line Access:
2024-08-27
Received:
2023-10-17
Revision Accepted:
2024-05-08
Crosschecked:
2015-01-28