Observation and analysis of positive leader re-illumination in a 10 m ultra-high voltage transmission line gap under switching impulse voltages

Biao Huang, Xuan Zhou, She Wang, C. Zhuang, Rong Zeng, Le Deng
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Abstract

The leader propagation is one of the most important stages in long air gap discharge. The mechanism behind leader re-illumination remains unclear. In high humidity conditions (20.0–30.1 g/m³), we have conducted experiments of long sparks in a 10 m UHV transmission line gap under switching impulse voltages. The positive leaders predominantly propagate discontinuously, with almost no significantly continuous propagation occurring. The leader channels are intensely luminous and each elongation segment is straight, with streamers resembling the “branch type” which differs from the “diffuse type” streamers at the front of continuous propagation leaders. The distribution of the propagation velocities is highly random (3.7–18.4 cm/μs), and the average velocity (9.2 cm/μs) significantly exceeds that of continuous propagation (1.5–2.0 cm/μs). Analysis suggests that the current-velocity models suitable for continuous leader propagation do not align well with the experimental data in re-illumination mode. Based on the discharge current waveforms and optical images, it is speculated that the newly elongated leader in re-illumination mode does not evolve gradually from the stem (about 1 cm) but rather evolves overall from a thermal channel much longer than stem.
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观察和分析开关冲击电压下 10 米超高压输电线路间隙中的正引线再发光现象
引线传播是长气隙放电过程中最重要的阶段之一。领导再发光背后的机制仍不清楚。在高湿度条件下(20.0-30.1 g/m³),我们在开关脉冲电压下对 10 m 超高压输电线间隙中的长火花进行了实验。正引线主要是非连续传播,几乎没有明显的连续传播。引线通道发光强烈,每个伸长段都很直,流线类似于 "分支型",不同于连续传播引线前端的 "扩散型 "流线。传播速度的分布具有很强的随机性(3.7-18.4 厘米/微秒),平均速度(9.2 厘米/微秒)大大超过了连续传播速度(1.5-2.0 厘米/微秒)。分析表明,适用于连续引线传播的电流速度模型与再照射模式下的实验数据并不十分吻合。根据放电电流波形和光学图像推测,在再发光模式下,新伸长的龙头不是从茎部(约 1 厘米)逐渐演化而来,而是从比茎部长很多的热通道整体演化而来。
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