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Current Sharing Control of a DC-DC Topology for Offshore Wind HVDC Systems

机译:海上风HVDC系统DC-DC拓扑的电流共享控制

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One of the bottleneck issues associated with offshore wind HVDC power transmission systems lies in the high-voltage-gain high-power DC-DC converter. Currently, many DC-DC converter topologies are developed in the literature. One of the popular structures is the use of multi-level converters (MMCs) with a low-frequency high-turn-ratio transformer but with some drawbacks. All the energy passes through the transformer that will increase the complexity in the system design and manufacturing. Due to the fluctuating nature of wind energy, the converter efficiency may decrease remarkably at low input power. Alternative structures include dual-active bridge converters, thyristors-based DC/DC converters, half-bridge and full bridge-based multi-level converters, and multiphase resonant dc-dc topologies. Again, each has advantages and limitations. This paper proposes a matrix transformer based DC-DC converter with the features of modular structure, electrical isolation, high voltage step-up ability, low voltage stress on switching devices, robustness, fault tolerance and high efficiency over a wide input power range to meet the HVDC requirements. This paper focuses on the current sharing control strategy to fully exploit the advantages the proposed converter.
机译:与海上风HVDC电力传输系统相关的瓶颈问题之一位于高压增益高功率DC-DC转换器中。目前,许多DC-DC转换器拓扑在文献中开发。其中一个流行的结构是使用多级转换器(MMC),具有低频高匝数变压器,但具有一些缺点。所有能量都通过变压器,这将提高系统设计和制造中的复杂性。由于风能的性质波动,转换器效率可以在低输入功率下显着降低。替代结构包括双极桥转换器,基于晶闸管的DC / DC转换器,半桥和基于桥的多级转换器,以及多相谐振DC-DC拓扑。同样,每个都具有优缺点。本文提出了一种基于矩阵变压器的DC-DC转换器,具有模块化结构,电气隔离,高压升压能力,开关装置的低压应力,鲁棒性,容错和高效率,在宽的输入功率范围内满足HVDC要求。本文重点介绍了当前共享控制策略,以充分利用所提出的转换器的优势。

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