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Coordinated analysis of delayed sprites with high-speed images and remote electromagnetic fields

机译:延迟的精灵与高速图像和远程电磁场的协调分析

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Simultaneous measurements of high-altitude optical emissions and magnetic fields produced by sprite-associated lightning discharges enable a close examination of the link between low-altitude lightning processes and high-altitude sprite processes. We report results of the coordinated analysis of high-speed sprite video and wideband magnetic field measurements recorded simultaneously at Yucca Ridge Field Station and Duke University. From June to August 2005, sprites were detected following 67 lightning strokes, all of which had positive polarity. Our data showed that 46% of the 83 discrete sprite events in these sequences initiated more than 10 ms after the lightning return stroke, and we focus on these delayed sprites in this work. All delayed sprites were preceded by continuing current moments that averaged at least 11 kA km between the return stroke and sprites. The total lightning charge moment change at sprite initiation varied from 600 to 18,600 C km, and the minimum value to initiate long-delayed sprites ranged from 600 for 15 ms delay to 2000 C km for more than 120 ms delay. We numerically simulated electric fields at altitudes above these lightning discharges and found that the maximum normalized electric fields are essentially the same as fields that produce short-delayed sprites. Both estimated and simulation-predicted sprite initiation altitudes indicate that long-delayed sprites generally initiate around 5 km lower than short-delayed sprites. The simulation results also reveal that slow (5–20 ms) intensifications in continuing current can play a major role in initiating delayed sprites.
机译:通过同时测量与子画面相关的闪电放电产生的高空光发射和磁场,可以仔细检查低空闪电过程与高空子画面过程之间的联系。我们报告了同时在Yucca Ridge Field Station和杜克大学记录的高速Sprite视频和宽带磁场测量结果的协调分析结果。从2005年6月到2005年8月,在67次雷击之后检测到了精灵,所有这些精灵都具有正极性。我们的数据表明,在这些序列中的83个离散sprite事件中,有46%在雷击返回后超过10 ms时启动,因此在此工作中我们关注这些延迟的sprite。在所有延迟的子图形之前,均会出现连续的当前力矩,这些力矩在回程和子图形之间平均至少11 kA km。精灵启动时的总闪电电荷矩变化范围从600到18,600 C km,而启动长时延精灵的最小值范围从600到15 ms延迟到2000 C km超过120 ms延迟。我们对这些雷击放电之上的高度处的电场进行了数值模拟,发现最大归一化电场与产生短时精灵的电场基本相同。估计的和模拟预测的子图形起始高度都表明,长延迟子图形通常比短延迟子图形低5 km。仿真结果还表明,持续电流中缓慢的(5–20 ms)增强可能在引发延迟的精灵中起主要作用。

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