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Single-stage three-phase differential-mode buck-boost inverters with continuous input current for PV applications

机译:具有连续输入电流的单级三相差模降压-升压型逆变器,用于光伏应用

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摘要

Differential-mode buck-boost inverters have merits such as reduced switch number, ability to provide voltages higher or lower than the input voltage magnitude, improved efficiency, reduced cost and size, and increased power density, especially in low-power applications. There are five buck-boost inverters that can provide flexible output voltage without the need of a large electrolytic input side capacitor, which degrades the reliability of inverters. The continuous input current of these inverters is appropriate for maximum power point tracking operation in photovoltaic and fuel cells applications. Three of the five inverters can be isolated with high-frequency-link transformers where the common-mode leakage current can be mitigated. However, the performance and control of such converters have not been discussed in detail. In this paper, the five possible single-stage three-phase differential-mode buck-boost inverters with continuous input current are investigated and compared in terms of total losses, maximum ripple current, total harmonic distortion, and device and passive element ratings. In addition, the possible methods are presented for eliminating the input third-order harmonic current, resulting from the stored energy in the passive elements, as well as the output second-order harmonic currents. The ability for isolating the input and output sides of the inverters with a small-high frequency transformers is discussed. A changeable-terminal 2.5-kW bidirectional inverter is used to validate the design flexibility of the inverter topologies, when digital signal processor-controlled.
机译:差模降压-升压型逆变器具有诸如减少开关数量,提供高于或低于输入电压幅度的电压的能力,提高的效率,降低的成本和尺寸以及增加的功率密度等优点,特别是在低功率应用中。有五个降压-升压型逆变器可以提供灵活的输出电压,而无需使用大的电解输入侧电容器,这会降低逆变器的可靠性。这些逆变器的连续输入电流适用于光伏和燃料电池应用中的最大功率点跟踪操作。五个逆变器中的三个可以通过高频链路变压器隔离,可以减轻共模泄漏电流。但是,尚未详细讨论这种转换器的性能和控制。本文研究了五种可能的具有连续输入电流的单级三相差模降压-升压型逆变器,并从总损耗,最大纹波电流,总谐波失真以及器件和无源元件的额定值方面进行了比较。另外,提出了消除由无源元件中存储的能量产生的输入三阶谐波电流以及输出二阶谐波电流的可能方法。讨论了使用小型高频变压器隔离逆变器输入和输出侧的能力。当数字信号处理器控制时,使用可变端子2.5 kW双向逆变器来验证逆变器拓扑的设计灵活性。

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