High gain modified SEPIC converter with asymmetrical switched inductor super lift cell for renewable energy applications

Q3 Engineering
Sindhuja Selvam, Mageshwari Sannasy, Moorthi Sridharan
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引用次数: 0

Abstract

ABSTRACTThis paper provides a modified single-ended primary inductor converter (SEPIC) with an asymmetrical switched inductor super lift cell (ASISLC) for renewable energy applications. Solar, fuel cells, and so on, provide low output voltage, which is not sufficient for high voltage dc grid or dc loads. Therefore, the existence of a high gain DC-DC converter is mandatory. The proposed converter provides high gain, high efficiency, and less voltage stress at a low duty cycle. The proposed converter incorporates switched inductor together with a super lift cell. The super lift cell has a charge pump capacitor is connected in an asymmetrical fashion. The proposed converter offers continuous current at the input together with the above-mentioned advantages. This paper explains the operation of the ASISLC SEPIC converter in continuous conduction mode (CCM) and discontinuous conduction mode (DCM). The operating principle, theoretical analysis, design process, and comparison of the suggested converters with converters from the literature that use similar operating principles are all discussed in this paper. A MATLAB simulation is done and their results are provided. Finally, a hardware prototype for 200W, 50 kHz switching frequency is built and their results are validated to authenticate the effectiveness of the proposed converter.KEYWORDS: DC-DC converterasymmetrical topologyhigh voltage gainSEPIC converternon-isolated converter Disclosure statementNo potential conflict of interest was reported by the authors.
具有非对称开关电感超升力电池的可再生能源高增益改进型SEPIC变换器
摘要本文提出了一种可再生能源应用的带有非对称开关电感超升力电池(ASISLC)的改进型单端初级电感变换器(SEPIC)。太阳能,燃料电池等提供低输出电压,这是不够的高压直流电网或直流负载。因此,高增益DC-DC变换器的存在是必须的。该变换器具有高增益、高效率和低占空比下电压应力小的特点。所提出的变换器包括开关电感和超级升力电池。该超级提升电池具有以不对称方式连接的电荷泵电容器。该变换器在具有上述优点的同时,在输入端提供连续电流。介绍了ASISLC SEPIC变换器在连续导通模式(CCM)和断续导通模式(DCM)下的工作原理。本文讨论了所建议的变流器的工作原理、理论分析、设计过程以及与文献中使用类似工作原理的变流器的比较。并进行了MATLAB仿真,给出了仿真结果。最后,建立了200W, 50khz开关频率的硬件样机,并对其结果进行了验证,验证了所提变换器的有效性。关键词:DC-DC变换器,非对称拓扑,高压增益,sepic变换器,非隔离变换器披露声明作者未报告潜在的利益冲突。
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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来源期刊
Australian Journal of Electrical and Electronics Engineering
Australian Journal of Electrical and Electronics Engineering Engineering-Electrical and Electronic Engineering
CiteScore
2.30
自引率
0.00%
发文量
46
期刊介绍: Engineers Australia journal and conference papers.
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