概括
来自雷暴云顶的不同寻常的上升电流被摄像头捕捉到. 这些事件延伸到大气层的高处,可能会解释无法解释的闪电观测和对电离层的影响.
科学领域:
- 大气物理大气物理学
- 雷暴中的电气现象
- 航空和航天安全安全.
背景情况:
- 雷暴会产生强大的电气现象.
- 在遥远的闪电中观察到不明原因的发光事件.
- 以前的观测缺乏对上升放电的详细成像.
研究的目的:
- 图像和分析来自雷暴云顶的不寻常的发光电流.
- 调查这些高空排放的特征和潜在原因.
- 探索此类事件对大气科学和航空安全的影响.
主要方法:
- 利用低光水平的电视摄像机捕捉了这一事件.
- 在250公里外的雷暴上记录了一种不寻常的发光电流.
- 分析了放电的高度,持续时间和形态.
主要成果:
- 观察到一个放电延伸在云顶上方20公里 (14公里高度).
- 持续时间小于30毫秒的事件类似于两个喷流或喷泉.
- 可能是由云顶的局部电荷度引起的.
结论:
- 上升的电力放电可能解释了远处闪电的无法解释的光度观测.
- 这些事件对飞机和火箭发射构成潜在的危险.
- 穿透电离层的放电可以启动磁层效应,如口哨波.
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