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Optimum Power Transmission-Based Droop Control Design for Multi-Terminal HVDC of Offshore Wind Farms

机译:基于最优输电的海上风电场多端直流输电控制设计

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Power generation through wind is expected to play a major role in the world's future energy portfolio. Nevertheless, wind power integration remains a challenging research area due to the special characteristics of wind power generation. Specifically, offshore wind has received significant attention worldwide due to the vast generation potential available. The electrical infrastructure of offshore wind farms is thus of significant importance. The multi-terminal HVDC solution represents a preferable solution and has shown promise in solving wind farm interconnection problems. Droop control techniques have been proposed as a means to regulate the DC voltage and facilitate the automatic coordination between different converters without the need for fast communication between units. Different methodologies have been developed to select the droop gains to satisfy the system performance specifications. In this work, a control design methodology is proposed for power sharing among the multi-terminal HVDC feeders providing that the power transmission efficiency is optimized. A simulation study on a 400-kV/1000-MW four-terminal HVDC transmission topology is conducted to ensure the validity of the proposed methodology.
机译:<?Pub Dtl?>风力发电有望在世界未来的能源组合中发挥重要作用。然而,由于风力发电的特殊特性,风力发电集成仍然是一个充满挑战的研究领域。特别是,海上风力发电因其巨大的发电潜力而受到了全世界的广泛关注。因此,海上风电场的电气基础设施非常重要。多端HVDC解决方案代表了一种更好的解决方案,并且在解决风电场互连问题方面显示出了希望。已经提出了下垂控制技术作为调节DC电压并促进不同转换器之间的自动协调的手段,而不需要单元之间的快速通信。已经开发出不同的方法来选择下垂增益以满足系统性能规格。在这项工作中,提出了一种控制设计方法,用于在多端子HVDC馈线之间进行功率共享,前提是要优化功率传输效率。对400 kV / 1000 MW四端HVDC传输拓扑进行了仿真研究,以确保所提出方法的有效性。

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