Title :
A High Voltage Gain DC–DC Converter Integrating Coupled-Inductor and Diode–Capacitor Techniques
Author :
Xuefeng Hu ; Chunying Gong
Author_Institution :
Aero-Power Sci-tech Center, Nanjing Univ. of Aeronaut. & Astronaut., Nanjing, China
Abstract :
The high-voltage gain converter is widely employed in many industry applications, such as photovoltaic systems, fuel cell systems, electric vehicles, and high-intensity discharge lamps. This paper presents a novel single-switch high step-up nonisolated dc-dc converter integrating coupled inductor with extended voltage doubler cell and diode-capacitor techniques. The proposed converter achieves extremely large voltage conversion ratio with appropriate duty cycle and reduction of voltage stress on the power devices. Moreover, the energy stored in leakage inductance of coupled inductor is efficiently recycled to the output, and the voltage doubler cell also operates as a regenerative clamping circuit, alleviating the problem of potential resonance between the leakage inductance and the junction capacitor of output diode. These characteristics make it possible to design a compact circuit with high static gain and high efficiency for industry applications. In addition, the unexpected high-pulsed input current in the converter with coupled inductor is decreased. The operating principles and the steady-state analyses of the proposed converter are discussed in detail. Finally, a prototype circuit is implemented in the laboratory to verify the performance of the proposed converter.
Keywords :
DC-DC power convertors; capacitors; inductors; semiconductor diodes; compact circuit; coupled-inductor techniques; diode-capacitor techniques; electric vehicles; extended voltage doubler cell; fuel cell systems; high voltage gain DC-DC converter; high-intensity discharge lamps; high-pulsed input current; industry applications; leakage inductance; output diode junction capacitor; photovoltaic systems; regenerative clamping circuit; single-switch high step-up nonisolated DC-DC converter; voltage conversion ratio; Capacitors; Inductance; Inductors; Stress; Switches; Switching circuits; Windings; Coupled inductor; dc–dc; diode–capacitor; high voltage gain; low voltage stress;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2013.2257870