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Distance Protection Scheme for DC Distribution Systems Based on the High-Frequency Characteristics of Faults

机译:基于故障高频特性的直流配电系统距离保护方案

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摘要

Due to the advantages of flexible and efficient power conversion, large power supply radius, and high-power quality, flexible dc distribution system has become an important research trend. However, when dc fault occurs, the short-circuit current provided by the converter is nonlinear due to different controls. In this case, it is difficult to identify the correct faulted area based on the converter's varying impedance. Aiming at the above-mentioned problems, based on the characteristics of fault transient components in the system, the circuits of fault high-frequency signal in the converters are analyzed. Then the high-frequency constant impedance equivalent models of converters are established, which are not affected by the control strategies. On this basis, a distance protection method based on the feature of high-frequency fault transient is proposed. This method utilizes the electrical transients of several milliseconds before and after the fault, extracts the high-frequency components of the voltage and current to map the faulted section, and realizes the fault region identification by combining the protection setting and coordination. The detailed model of a six-terminal flexible dc distribution system is built on power systems computer aided design (PSCAD)/electro magnetic transient in dc system (EMTDC) electromagnetic transient simulation platform. The simulation results show that the proposed method has good speed and selectivity. It can reliably identify faulted areas and can withstand transition resistance and system noise.
机译:由于灵活高效的电源转换,较大的电源半径和较高的电能质量,灵活的直流配电系统已成为重要的研究趋势。但是,当发生直流故障时,由于控制方式不同,转换器提供的短路电流是非线性的。在这种情况下,很难根据转换器的变化阻抗来确定正确的故障区域。针对上述问题,基于系统中故障暂态分量的特性,对变频器中故障高频信号的电路进行了分析。然后建立不受控制策略影响的变频器高频恒阻抗等效模型。在此基础上,提出了一种基于高频故障暂态特征的距离保护方法。该方法利用故障前后几毫秒的瞬态电信号,提取电压和电流的高频分量来绘制故障区域,并结合保护设置和协调实现故障区域识别。六端柔性直流配电系统的详细模型建立在电力系统计算机辅助设计(PSCAD)/直流系统中的电磁暂态(EMTDC)电磁暂态仿真平台上。仿真结果表明,该方法具有良好的速度和选择性。它可以可靠地识别故障区域,并可以承受过渡电阻和系统噪声。

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