与直流配电接口的全寿命保证的无电解电容光伏变流器

Gab-Su Seo, B. Cho, Kyu-Chan Lee
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引用次数: 9

摘要

为了保证高的收获效率,需要在交流接口处配置抑制光伏侧电压电流波动的电解电容,但由于电解电容寿命短,光伏逆变器的使用寿命难以保证。提出了一种与直流配电系统接口的无电解电容光伏微变换器。采用薄膜电容器可以消除直流接口结构中短寿命电容器的存在,既能充分保证光伏发电系统的使用寿命,又能提高系统效率。该升压式光伏微变流器直接与直流配电系统对接,结构简单,效率高。本文从光伏变流器寿命的角度对交直流接口系统进行了分析。与传统的电源变流器不同,光伏变流器在50%负荷下运行时,由于太阳辐照剖面通常低于全辐照的一半,因此即使在50%负荷下也要保持较高的效率。由于光伏变流器采用突发方式等轻载效率提升技术运行,因此需要考虑轻载范围内的电压变化。在分析电压变化对轻载效率提高方法的基础上,提出了光伏微变流器的设计指南。140W样机的最大效率为97.3%,欧洲效率为96.8%,在不使用电解电容器的情况下,轻载效率高于93%,并有望实现较高的MPPT效率,验证了本研究的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Electrolytic capacitor-less PV converter for full lifetime guarantee interfaced with DC distribution
Electrolytic capacitors to suppress the voltage and current fluctuation at PV side should be deployed in AC interface to ensure high harvest efficiency which makes it difficult to guarantee the lifetime of PV inverters due to the short lifetime electrolytic capacitors. This paper proposes an electrolytic capacitor-less photovoltaic (PV) micro-converter interfaced with DC distribution system. The short-lifetime capacitors can be eliminated in the proposed DC interfaced structure by using film capacitors which is helpful not only to fully guarantee the lifetime of PV generation system but also improve the system efficiency. Directly interfaced to DC distribution system, the proposed boost-type PV micro-converter features simple structure and high efficiency. In this paper, AC and DC interfaced systems are analyzed in view of PV converter lifetime. Different from conventional power converters, PV converters should keep high efficiency even under 50% load operation due to the solar irradiation profile normally below half of the full irradiation. Because the PV converters are operated by light load efficiency improvement technique such as burst mode method, voltage variation in light load range should be considered. Based on the analysis of voltage variation with respect to the light load efficiency improvement methods, PV micro-converter design guide is presented. 140W prototype PV converter shows maximum efficiency of 97.3% and European efficiency of 96.8% achieving light load efficiency higher than 93% as well as high MPPT efficiency is expected, without electrolytic capacitors which verifies the feasibility of this study.
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