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Fault arc extinction and system re-start on HVDC transmission lines using LCC or VSC full-bridge converters with integrated arc recovery simulation models

机译:故障闪烁和系统在HVDC传输线上使用LCC或VSC全桥转换器重新启动,具有集成电弧恢复仿真模型

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HVDC systems in combination with overhead lines are frequently affected by non-permanent ground faults at DC side due to arcs. To limit the impact to the DC system or the connected AC system(s) at line-to-ground faults or unsuccessful restart attempts, a reliable recovery strategy is essential. We report on the development of a physical model of the arc extinction and recovery behaviour of arcs on HVDC transmission lines. The arc model can be used to develop, test and optimize the arc extinction and recovery strategy in the control software of a bi-polar HVDC (Voltage Sourced Converter (VSC) HVDC with full-bridge converter and Line-Commuted Converters, LCC HVDC) converter station. Based on empirical arc characteristics of long arcs in air, a simplified dynamic arc model has been developed which allows calculating fault arc parameters. These arc parameters are used to calculate the energy deposited in the arc during the fault, and the converter control minimizes the fault arc energy by extracting most of the energy stored in the transmission line. Furthermore, salient arc parameters like arc resistance, arc current and current rate of decay before current zero are used to predict the status of the arc, in particular, the precise time of arc extinction. After arc extinction, the dynamic recovery behaviour of the fault arc path is predicted using empirical recovery data. The HVDC converter is then allowed to start after a deionization time which is determined by the dynamic recovery characteristics of a worst case scenario and the energy deposited in the arc during the fault interval. This allows for a save restart sequence with minimal outage time of the order of 500 ms or less from fault occurrence to full power recovery.
机译:HVDC系统与架空线相结合,经常由于弧线的直流侧的非永久接地故障而受到影响。为了将对直流系统的影响限制在线到地面故障或不成功的重启尝试时,可靠的恢复策略至关重要。我们报告了HVDC传输线上弧形灭火和恢复行为的物理模型的开发。电弧模型可用于开发,测试和优化Bi-Polar HVDC(电压源转换器(VSC)HVDC的控制软件中的ARC消光和恢复策略,具有全桥转换器和线路通道转换器LCC HVDC)转换站。基于空气中长弧的经验弧特性,已经开发了一种简化的动态电弧模型,其允许计算故障弧参数。这些电弧参数用于计算故障期间在弧中沉积的能量,并且转换器控制通过提取存储在传输线中的大部分能量来最小化故障电弧能量。此外,在电流零之前的电弧电阻,电弧电流和衰减电流率的凸弧参数用于预测电弧的状态,特别是闪频的精确时间。在灭火之后,使用经验恢复数据预测故障弧路径的动态恢复行为。然后允许HVDC转换器在去离子时间之后开始,该去离子时间由最坏情况场景的动态恢复特性和在故障间隔期间沉积在弧中的能量。这允许保存重启序列,其中最小的中断时间为500ms或更小的故障发生到完全电力恢复。

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