Ultra-High Step-Up DC/DC Converter Based on Dual-Coupled-Inductors With Low Voltage Stress and Input Current Ripple for Renewable Energy Applications

H. Moradisizkoohi, N. Elsayad, O. Mohammed
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引用次数: 3

Abstract

This paper presents a nonisolated interleaved dc/dc converter with very high voltage gain and low voltage stress for applications requiring a high voltage gain, such as for interfacing photovoltaic or fuel cell with an inverter. In the proposed topology, the voltage multiplier and switched-capacitor are merged to enhance the voltage gain. This feature along with connecting the coupled inductors in series at the output stage increases the voltage conversion ratio. To reduce the input current ripple, two coupled inductors are connected in parallel for sharing the input current equally, resulting in low conduction loss as well as a smaller capacitive filter. To suppress the voltage ringing that stems from the energy stored in the leakage inductance of coupled inductors, the active clamp circuit is implemented in the proposed converter. By applying an integrated regenerative snubber, the leakage energy of coupled inductors not only is recycled to the output stage but also paves the way for soft-switching including zero voltage switching for switches and zero current switching for diodes. The operation modes, design consideration, and comparison verified by experimental results of a 1-kW laboratory prototype of proposed converter are presented. The switches and diodes are implemented using gallium-nitride (GaN) and silicon carbide (SiC) semiconductors, respectively.
基于低电压应力和低输入纹波双耦合电感的可再生能源超高升压DC/DC变换器
本文提出了一种具有非常高电压增益和低电压应力的非隔离交错dc/dc变换器,适用于需要高电压增益的应用,例如光伏或燃料电池与逆变器的接口。在所提出的拓扑结构中,电压乘法器和开关电容被合并以提高电压增益。这一特点加上在输出级串联耦合电感,增加了电压转换比。为了减小输入电流纹波,将两个耦合电感并联,使输入电流平均分担,从而降低导通损耗,减小电容滤波器。为了抑制耦合电感漏电感中存储的能量所产生的电压环,在变换器中采用了有源箝位电路。通过集成的再生缓冲器,耦合电感的泄漏能量不仅被回收到输出级,而且为开关的零电压开关和二极管的零电流开关等软开关铺平了道路。介绍了该变换器的工作方式、设计思路,并通过1 kw实验室样机的实验结果进行了比较验证。开关和二极管分别使用氮化镓(GaN)和碳化硅(SiC)半导体实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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