用电场传感器阵列估算架空输电线路电压和凹陷

Kun-Long Chen, Chihai Zhang
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引用次数: 0

摘要

为了降低高压输配电线路检修过程中的工业安全风险,提高检修工作效率,提出了一种非接触式电压测量技术。在该技术中,使用三个单轴电场传感器来设计传感阵列,并将其放置在被测架空线下方的地面上。此外,这些传感器分布在等距离和垂直横跨架空线。在给定所设计的架空线路几何规格作为初始值的情况下,所设计的电压算法可以根据传感器阵列测量的空间电场准确地评估出各相位的电压谐波畸变。本研究与其他相关的非接触电压测量方法的不同之处在于考虑了导线下垂。因此,本研究模拟的架空线周围电场与实际电场相似。并在三维模型中进行了电场仿真。基于该三维模型,新的电压畸变测量算法可以准确地测量有凹陷的架空线路的电压畸变。为了验证电压畸变测量算法的可行性,本研究使用了三个架空线几何变量的可能组合,包括:导体半径、导体凹陷和相邻导体之间的距离,来评估所提出算法的准确性。仿真结果表明,在被测架空线路可能存在的几何偏差下,所提出的电压畸变测量方法的最大误差小于7%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Estimation of voltage and Sag in Overhead Transmission Lines With Electric Field Sensor Array
A non-contact voltage measurement technology is proposed to reduce the industrial safety risk during the maintenance of high-voltage transmission and distribution lines and to improve work efficiency during the inspection. In this technology, three single-axis electric field sensors are used to design a sensing array and are placed on the ground below the measured overhead line. Moreover, these sensors are distributed at equal distances and orthogonally across the overhead line. When the geometric specification of the proposed overhead line is given as initial values, the designed voltage algorithm can accurately evaluate the voltage harmonic distortion of each phase based on the space electric fields measured by the sensor array. The difference between this study and other related non-contact voltage measurement methods is the consideration of conductor sags. Hence, the electric field around an overhead line simulated in this study is similar to the actual electric field. Moreover, the proposed electric field simulation is presented in a 3D model. Based on this 3D model, the new voltage distortion measurement algorithm can accurately measure the voltage distortion of the overhead line with sags. In order to verify the feasibility of the voltage distortion measurement algorithm, this study uses possible combinations of three overhead-line geometric variables, including: conductor radius, conductor sag, and distance between two adjacent conductors, to evaluate the accuracy of the proposed algorithm. The simulation results show that the maximum error of the proposed voltage distortion measurement method is less than 7% under the possible geometric deviation of the measured overhead line.
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