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Magnetic fieldmodification to the relativistic runaway electron avalanche length

机译:磁fieldmodification相对论失控的电子雪崩长度

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This paper explores the impact of the geomagnetic field on the relativistic runaway electron avalanche length, e? . Coleman and Dwyer (2006) developed an analytical fit to Monte Carlo simulations using the Runaway Electron Avalanche Model. In this work, we repeat this process but with the addition of the geomagnetic field in the range of [100,900]∕n μT, where n is the ratio of the density of air at altitude to the sea level density. As the ambient electric field approaches the runaway threshold field (Eth ≈ 284 kV/m sea level equivalent), it is shown that the magnetic field has an impact on the orientation of the resulting electron beam. The runaway electrons initially follow the vertically oriented electric field but then are deflected in the v × B direction, and as such, the electrons experience more dynamic friction due to the increase in path length. This will be shown to result in a difference in the avalanche length from the case where B = 0. It will also be shown that the average energy of the runaway electrons will decrease while the required electric field to produce runaway electrons increases. This study is also important in understanding the physics of terrestrial gamma ray flashes (TGFs). Not only will this work impact relativistic feedback rates determined from simulations, it may also be useful in studying spectroscopy of TGFs observed from balloon and aircraft measurements. These models may also be used in determining beaming properties of TGFs originating in the tropical regions seen from orbiting spacecraft.
机译:本文探讨了地磁的影响相对论电子失控雪崩长度、e ?开发了一个分析适合蒙特卡洛模拟使用的电子雪崩模型。外加的磁场范围的[100900]∕nμT,其中n的比例空气的密度在海平面高度密度。失控的阈值字段(Eth≈284千伏/米等效)水平,结果表明,磁场场影响的方向产生的电子束。首先沿着垂直导向的电力中偏转场然后v×B方向,因此,电子经验增加更多的动态摩擦由于路径长度。雪崩长度差异的情况B = 0。失控的电子的平均能量减少所需的电场增加生产失控的电子。物理学的理解也很重要吗地面伽马射线闪光(tgf信号)。将这项工作影响利率相对反馈决定从模拟,也可以有用的tgf信号观察研究光谱从气球和飞机测量。模型也可以用于确定喜气洋洋的tgf信号起源于热带的属性区域从轨道飞船。

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