Ahmed Y. Farag;Davide Biadene;Tommaso Caldognetto;Paolo Mattavelli
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The MPC enables direct power sharing between dc MGs, minimizes the dependence on the ac grid, and enhances the efficiency and power density of the power electronic interface compared to using multiple two-port converters. The motivations for the proposed converter include its single-stage power conversion among different ports, potentially leading to enhanced efficiency and power density. Furthermore, the absence of bulky intermediate dc-link capacitors and transformers in the proposed topology contributes to improved power density and reduced costs. Although designed for 400 V dc MGs in this study, the proposed MPC boasts buck-boost capability and bidirectional power flow at all ports, independent of the dc ports' voltage, providing the flexibility to directly interface with a wide range of dc systems. 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引用次数: 0
摘要
将直流微电网(MGs)集成到配电网络中,可通过促进可再生能源和储能系统的集成,为解决日益增长的电能需求提供一个前景广阔的解决方案。为确保持续可靠的运行,直流微电网通常通过互联变流器与公用电网相连。然而,随着住宅和商业应用中越来越多地采用小型直流制动发电机,为每个制动发电机使用专用变流器的传统方法会大大增加系统的体积和成本。本文提出了一种单级非隔离多端口转换器(MPC),用于连接三相交流电网和 400 V 直流 MG。与使用多个双端口转换器相比,MPC 可实现直流 MG 之间的直接功率共享,最大限度地减少对交流电网的依赖,并提高电力电子接口的效率和功率密度。采用这种转换器的原因包括不同端口之间的单级功率转换,从而有可能提高效率和功率密度。此外,拟议拓扑结构中没有笨重的中间直流链路电容器和变压器,有助于提高功率密度和降低成本。虽然本研究中的 MPC 是针对 400 V 直流 MG 设计的,但它具有降压-升压能力,并且所有端口的功率流都是双向的,与直流端口的电压无关,因此可以灵活地与各种直流系统直接连接。该转换器的性能通过各种工作条件下的实验测试进行了评估。
Single-Stage Non-Isolated Multiport Y-Converter for Interlinking 400 V DC Microgrids With the Three-Phase AC Grid
The integration of dc microgrids (MGs) into distribution networks offers a promising solution to address the growing demand for electric energy by facilitating the incorporation of renewable energy sources and energy storage systems. To ensure sustained and reliable operation, dc MGs are commonly linked to utility grids through interlinking converters. However, with the increasing adoption of small-scale dc MGs for residential and commercial applications, the traditional approach of using a dedicated converter for each MG can significantly increase system size and cost. This paper proposes a single-stage non-isolated multiport converter (MPC) to interface the three-phase ac grid with 400 V dc MGs. The MPC enables direct power sharing between dc MGs, minimizes the dependence on the ac grid, and enhances the efficiency and power density of the power electronic interface compared to using multiple two-port converters. The motivations for the proposed converter include its single-stage power conversion among different ports, potentially leading to enhanced efficiency and power density. Furthermore, the absence of bulky intermediate dc-link capacitors and transformers in the proposed topology contributes to improved power density and reduced costs. Although designed for 400 V dc MGs in this study, the proposed MPC boasts buck-boost capability and bidirectional power flow at all ports, independent of the dc ports' voltage, providing the flexibility to directly interface with a wide range of dc systems. The performance of the converter is assessed through experimental tests under various operating conditions.