大气条件下脉冲单极表面闪络

K. Morales, J. Krile, A. Neuber, H. Krompholz, J. Dickens
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引用次数: 4

摘要

多年来,人们对真空中沿绝缘子的介电表面闪络问题进行了较为全面的研究。然而,大气压下介电闪络的主要机制还没有被广泛地分析,如电极几何形状、背景气体、湿度和施加电压的时间特征等可变参数。了解大气压力下表面闪络的基本物理机制对于表征和模拟电弧行为至关重要。以前的直流和单极激励实验已经显示出在空气和氮气环境中,电极几何形状产生的电场线在介电表面上弯曲的不同电弧行为。具体地说,在空气环境中,我们观察到沿电介质表面发展的闪络弧。在氮气中进行的实验表明,电弧沿着电介质表面以上的电场线发展。改变外加电压的时间特性来模拟雷电情况,研究对电弧行为和电压延迟时间的影响也很重要。为了模拟建筑物结构被雷击时所观察到的电压脉冲的时间特征,专门研制了一种固体高压脉冲发生器,其脉冲宽度可调为~500 ns,在FWHM下振幅超过30 kV。基于这些结果,将讨论脉冲单极表面闪络的主要物理机制。还将介绍有关湿度和表面粗糙度对闪络电弧行为影响的其他研究
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Pulsed Unipolar Surface Flashover at Atmospheric Conditions
Dielectric surface flashover along insulators in vacuum has been comprehensively researched over the years. However, the primary mechanisms involved in dielectric flashover at atmospheric pressures have yet to be as extensively analyzed with variable parameters such as electrode geometry, background gas, humidity, and temporal characteristics of the applied voltage. Understanding the fundamental physical mechanisms involved in surface flashover at atmospheric pressures is vital to characterizing and modeling the arc behavior. Previous DC and unipolar excitation experiments have shown distinct arc behavior in air and nitrogen environments for an electrode geometry that produces electric field lines that curve above the dielectric surface. Specifically, flashover arcs in an air environment were observed to develop along the dielectric surface. Experiments conducted in nitrogen revealed that the arc developed along the electric field lines, above the surface of the dielectric. It was also of importance to alter the temporal characteristics of the applied voltage to simulate lightning situations and investigate the impact on the arc behavior and voltage delay times. A solid state high voltage pulser with an adjustable pulse width of ~500 ns at FWHM and amplitudes in excess of 30 kV was specifically developed to replicate the temporal characteristics of a voltage pulse observed when a building structure is hit by a lightning strike. Based on these results, the physical mechanisms primarily involved in pulsed unipolar surface flashover will be discussed. Additional studies regarding the effects of humidity and surface roughness on the flashover arc behavior will also be presented
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