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Global-Sensitivity-Based Theoretical Analysis and Fast Prediction of Traveling Waves With Respect to Fault Resistance on HVDC Transmission Lines

机译:基于全局灵敏度的高压直流输电线路行波关于故障电阻的理论分析和快速预测

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摘要

The fault resistance is the key factor to affect the travelling waves and the performance of travelling-wave-based protections on HVDC transmission lines. In order to explain accurately the impacts of the fault resistance to travelling waves in theory and improve computational efficiency on the existing data of the travelling waves at given fault conditions, this paper proposed a global-sensitivity-based method to fast predict the new travelling waves with any other fault resistance. This method was built on the actual HVDC project topology and its frequency-dependent nature, and derived by the infinite-Taylor series in the phase and frequency domain, and then realized by a rational fitting technique with an order estimation scheme for the conversion to the time domain, which would overcome three limitations compared with conventional sensitivity methods. Numerical examples show that the proposed method has a huge advantage in saving CPU time to predict travelling waves in the network with any fault resistance increment over traditional simulations.
机译:故障电阻是影响行波和高压直流输电线路上基于行波保护的性能的关键因素。为了从理论上准确地解释断层电阻对行波的影响并提高给定故障条件下行波的现有数据的计算效率,提出了一种基于全局灵敏度的新行波快速预测方法。以及其他任何抗故障性。该方法基于实际的HVDC工程拓扑及其频率相关性,并通过在相位和频率域中的无限泰勒级数推导得出,然后通过有序估计方案的有理拟合技术来实现,以转换为HVDC。时域,与传统的灵敏度方法相比,它将克服三个限制。数值算例表明,与传统仿真相比,该方法在节省CPU时间以预测网络中具有任意抗故障性增量的行波方面具有巨大优势。

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