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Practical computation of di/dt for high-speed protection of DC microgrids

机译:直流微电网高速保护di / dt的实用计算

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DC microgrids have the potential to radically disrupt the distribution system market due to the benefits offered in easing the integration and control of distributed renewable energy resources and energy storage systems. However, the non-zero-crossing fault current profiles associated with short-circuited DC systems present a major challenge for protection. Isolation of faulted networks prior to the peak-current discharge of DC-side capacitors may address this challenge if rapid fault detection speeds (shorter than 2ms) can be achieved. Accordingly, novel methods of utilising the rate-of-change-of-current (di/dt) have been proposed in the literature to realize new, high-speed distance protection strategies. This paper proposes two practical methods for optimizing the numerical computation of di/dt of fault current transients and evaluates the performance of each within a MATLAB/Simulink model of a DC microgrid with artificially injected measurement noise.
机译:由于在简化分布式可再生能源和储能系统的集成和控制方面所提供的好处,直流微电网有可能从根本上破坏配电系统市场。然而,与短路的直流系统相关的非零交叉故障电流曲线对保护提出了重大挑战。如果可以实现快速的故障检测速度(短于2ms),则在DC侧电容器的峰值电流放电之前隔离故障网络可能会解决这一挑战。因此,在文献中已经提出了利用电流变化率(di / dt)的新颖方法,以实现新的高速距离保护策略。本文提出了两种实用的方法来优化故障电流瞬变di / dt的数值计算,并在带有人工注入的测量噪声的直流微电网的MATLAB / Simulink模型中评估了每种方法的性能。

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