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Analysis of grid faults in offshore wind farm with HVDC connection

机译:HVDC连接近海风电场网格故障分析

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Future offshore wind farms are expected to be built farther away from shore and have larger capacities than today. This leads to new challenges related to grid connection. At distances longer than roughly 100 km, HVDC transmission is preferred over AC transmission due to large charging currents in AC-cables. Conventional LCC (line commutated converter) HVDC is not suited for connection to weak grids like offshore wind farms, and the less mature VSC (voltage source converter) HVDC technology is preferred instead. A future large offshore wind farm with full power converter turbines and three-terminal VSC HVDC grid connection has been modelled in PSCAD. With three terminals the HVDC link can be used for direct transmission between the onshore terminals in addition to transmission of wind power. Due to the power electronics interfaces, the system has low short circuit capacity and is missing inertia. Also, DC-cables are discharged very fast during faults. This leads to different fault responses than in conventional grids. This work focuses on fault responses and protection of a HVDC-connected wind farm, both within the wind farm itself and in the HVDC-link.
机译:预计未来海上风场要远离岸边修建,并有比今天更大的容量。这导致与电网连接新的挑战。在距离大于大致100公里更长,HVDC传输优选于AC传输由于在AC电缆大的充电电流。常规LCC(线变换变换器)HVDC不适合用于连接到弱电网等海上风力发电场,和不太成熟VSC(电压源转换器)高压直流输电技术代替优选的。未来的大型海上风电场全功率变流器的涡轮机和三端VSC HVDC电网连接已仿照PSCAD。与三个端子的HVDC链路可用于除了风力发电的传输陆上终端之间的直接传输。由于电力电子接口,使系统具有低短路容量和缺少惯性。此外,DC-电缆故障期间非常快的排出。这导致了不同的故障响应比传统的网格。今年工作重点放在故障响应和高压直流型风场的保护,无论是风电场本身并在HVDC链接。

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