ABSTRACT:
SOFTWARE: MATLAB/SIMULINK
This paper presents a novel LED driver
topology, capable of input power factor correction, for space constrained applications,
such as Aerospace exterior lighting product line. Due to the compact design of
the proposed LED driver topology, it can be of great advantage for an integrated
power supply solution for Aerospace exterior lighting product offerings. The
proposed LED driver topology can control the LED current with both Buck and
Boost mode of control, making it a good choice for applications with wide input
voltage variation. The proposed LED driver topology has been verified by
mathematical analysis, circuit simulation and performance has been demonstrated
experimentally as well. The proposed LED driver topology promises an
appreciable amount of savings in term of real estate, power loss, and heat sink
requirements while enhancing the power density of the converter and its reliability.
Typically, it’s the bulk output capacitor that wears out with pressure
variation (wear out phenomenon accelerates at altitudes more than 8000m due to
the reduced pressures); which can be avoided with the proposed topology.
Depending upon the load (number of LEDs) and
input voltage; in order to protect LEDs, a reverse blocking diode may be
required during the Buck operation. For Boost application, reverse blocking
diode will not be required even with today’s technology. Authors have been granted
a U.S. Patent 9363291 [8] against the propose novel LED driver topology.
REFERENCES:
[1] L. H. Dixon, "High Power Factor
Preregulators for Off- Line Power Supplies," Unitrode Power Supply Design Seminar
Manual SEM600, 1988. (Republished in subsequent Manuals)
[2] Spiazzi, G., and Mattavelli, P.
(1994) “Design criteria for power factor preregulators based on SEPIC and Cuk converters
in continuous conduction mode,” IEEE IAS Conference Record, 1994, 1084-1089.
[3] Z. Ye, F. Greenfeld, and Z. Liang,
“Single-stage offline SEPIC converter with power factor correction to drive
high brightness LEDs,” in Proc. IEEE Appl. Power Electron. Conf., 2009, pp.
546–553.
[4] C.Zhou and M.Jovanovic, "Design
Trade-offs in Continuous Current-Mode Controlled Boost Power-Factor Correction
Circuits", HFPC Cod. Proc., 1992, pp. 209-220
[5] L. H. Dixon, "Average Current
Mode Control of Switching Power Supplies," Unitrode Power Supply Design
Seminar Manual SEM700, 1990