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Variation of surface electric field intensity determined by space charge density at different temperatures

机译:由不同温度下的空间电荷密度决定的表面电场强度变化

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Surface electric field (SEF) strength plays an important role in studying corona discharge and is widely utilized in the research of corona loss and ion flow field in transmission line projects. The electrical field invariant theory after corona occurs is widely adopted to describe the SEF, but it is not consistent with the actual corona discharge situation. Thus, how to accurately evaluate the change of SEF is crucial for the design of overhead lines. Space charge caused by corona around the wire surface is closely related to the SEF; therefore, it is feasible to use the space charge to characterize SEF. In this work, a system for space charge density measurement is established in the laboratory to analyze the distribution of space charge under different voltages and temperatures. The validity of the experimental results was verified by finite element method (FEM), and the maximum charge density ratio is proposed to correct the variation formula of SEF. The experimental results show that SEF is not equal to the onset field intensity, and displays a decreasing trend after corona initiates, which can be used to rectify the electrical field invariant theory.
机译:表面电场(SEF)强度在研究电晕放电中起着重要作用,并广泛用于输电线路项目中的电晕损失和离子流场的研究。广泛采用电晕发生后的电场不变理论来描述SEF,但这与实际的电晕放电情况不符。因此,如何准确评估SEF的变化对于架空线的设计至关重要。导线表面周围的电晕所引起的空间电荷与SEF密切相关;因此,使用空间电荷表征SEF是可行的。在这项工作中,实验室中建立了空间电荷密度测量系统,以分析不同电压和温度下空间电荷的分布。通过有限元方法(FEM)验证了实验结果的有效性,并提出了最大电荷密度比来修正SEF的变化公式。实验结果表明,SEF不等于初始场强,在电晕启动后呈现下降趋势,可用于修正电场不变性理论。

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