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首页> 外文期刊>Nuclear Science, IEEE Transactions on >Effect of Multiple Scattering on the Compton Recoil Current Generated in an EMP, Revisited
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Effect of Multiple Scattering on the Compton Recoil Current Generated in an EMP, Revisited

机译:再谈多重散射对EMP中产生的康普顿后坐电流的影响

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摘要

Multiple scattering has historically been treated in EMP modeling through the obliquity factor. The validity of this approach is examined here. A simplified model problem, which correctly captures cyclotron motion, Doppler shifting due to the electron motion, and multiple scattering is first considered. The simplified problem is solved three ways: the obliquity factor, Monte-Carlo, and Fokker-Planck finite-difference. Because of the Doppler effect, skewness occurs in the distribution. It is demonstrated that the obliquity factor does not correctly capture this skewness, but the Monte-Carlo and Fokker-Planck finite-difference approaches do. The obliquity factor and Fokker-Planck finite-difference approaches are then compared in a fuller treatment, which includes the initial Klein-Nishina distribution of the electrons, and the momentum dependence of both drag and scattering. It is found that, in general, the obliquity factor is adequate for most situations. However, as the gamma energy increases and the Klein-Nishina becomes more peaked in the forward direction, skewness in the distribution causes greater disagreement between the obliquity factor and a more accurate model of multiple scattering.
机译:历史上,通过倾斜因子在EMP建模中已经处理了多次散射。这里检查这种方法的有效性。首先考虑一个简化的模型问题,该问题可以正确捕获回旋加速器的运动,由于电子运动而引起的多普勒频移以及多重散射。简化的问题通过三种方式解决:倾角因子,蒙特卡洛和福克-普朗克有限差分法。由于多普勒效应,分布中会出现偏斜。事实证明,倾斜因子不能正确地捕获这种偏斜,但是蒙特卡罗方法和福克-普朗克有限差分方法可以做到。然后在更充分的处理中比较了倾斜因子和Fokker-Planck有限差分方法,其中包括电子的初始Klein-Nishina分布以及阻力和散射的动量依赖性。已经发现,一般而言,倾斜因子对于大多数情况是足够的。但是,随着伽马能量的增加和Klein-Nishina的正向峰变得更大,分布的偏斜会导致倾斜系数与更精确的多重散射模型之间的分歧更大。

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