DocumentCode
708284
Title
A novel bipolar series Ripple compensation method for single-stage high-power LED driver
Author
Yajie Qiu ; Laili Wang ; Yan-Fei Liu ; Sen, P.C.
Author_Institution
Dept. of Electr. & Comput. Eng., Queen´s Univ., Kingston, ON, Canada
fYear
2015
fDate
15-19 March 2015
Firstpage
861
Lastpage
868
Abstract
It has been well documented that series compensation (SC) configuration can significantly reduce the total output capacitance of LED driver without sacrificing the power factor (PF), thus enabling the use of long-life film capacitors. Most importantly, SC provides the advantages over the parallel compensation (PC) methods in that it reduces the voltage stresses of the auxiliary stage components and thus can provide a higher efficiency, which is especially desirable for highpower LED drivers. However, with conventional series compensation, the auxiliary stage requires an auxiliary winding from the main stage. This increases the cost as well as the complexity of the circuit design. In this paper, a novel Full- Bridge Ripple Compensation Converter (FB RCC) using floating capacitor is proposed. By innovatively controlling the power flow of this auxiliary circuit, the auxiliary winding can be eliminated, thus making the input side of the auxiliary circuit floating and rendering a more cost effective and more flexible solution for both isolated and non-isolated LED driver applications. The new ripple compensation method retains the outstanding ripplecancellation ability and high efficiency of the original SC method, and has been demonstrated in a 100W, 150V-0.7A experimental prototype.
Keywords
capacitors; compensation; driver circuits; light emitting diodes; power factor; power integrated circuits; auxiliary circuit; bipolar series ripple compensation method; current 0.7 A; floating capacitor; full bridge ripple compensation converter; parallel compensation methods; power 100 W; power factor; single-stage high-power LED driver; voltage 150 V; Capacitance; Capacitors; Light emitting diodes; Reactive power; Stress; Voltage control; Windings;
fLanguage
English
Publisher
ieee
Conference_Titel
Applied Power Electronics Conference and Exposition (APEC), 2015 IEEE
Conference_Location
Charlotte, NC
Type
conf
DOI
10.1109/APEC.2015.7104450
Filename
7104450
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