共空间回流损失导致太阳耀斑日冕中的非热电子向下能量通量减少

Meriem Alaoui, Gordon D. Holman, Marc Swisdak
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引用次数: 0

摘要

高能电子携带着太阳耀斑的大部分能量。因此,了解其传播过程中电子束分布的变化至关重要。本文的一个重点是共空间回流如何降低这些加速电子携带的能量通量。我们针对与太阳耀斑相关的各种电子束和等离子体参数,系统地计算了这种减少。我们的一维模型考虑了束流和等离子体电子之间的碰撞、回流电场减速、热目标近似的热化以及失控电子的贡献。结果侧重于经典(斯皮策)机制,为能量通量的减少及其程度提供了宝贵的基准。对于最低的非热通量,回流损失可以忽略不计。我们计算了回流损失变得显著的条件,并估算了它们对光束能量通量密度的影响程度。我们还计算了较高注入通量时出现的两个附加条件:(1) 电子失控变得重要;(2) 电流驱动的不稳定性可能变得重要,这就需要一个能够自洽地解释这些不稳定性的模型。所有结果都取决于光束和共空间质点参数。我们还研究了回流电场对束流电子反射的重要性。我们表明,需要重新审视对耀斑数量的解释,以考虑回流的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reduction of the downward energy flux of non-thermal electrons in the solar flare corona due to co-spatial return current losses
High energy electrons carry much of a solar flare's energy. Therefore, understanding changes in electron beam distributions during their propagation is crucial. A key focus of this paper is how the co-spatial return current reduces the energy flux carried by these accelerated electrons. We systematically compute this reduction for various beam and plasma parameters relevant to solar flares. Our 1D model accounts for collisions between beam and plasma electrons, return current electric-field deceleration, thermalization in a warm target approximation, and runaway electron contributions. The results focus on the classical (Spitzer) regime, offering a valuable benchmark for energy flux reduction and its extent. Return current losses are only negligible for the lowest nonthermal fluxes. We calculate the conditions for return current losses to become significant and estimate the extent of the modification to the beam's energy flux density. We also calculate two additional conditions which occur for higher injected fluxes: (1) where runaway electrons become significant, and (2) where current-driven instabilities might become significant, requiring a model that self-consistently accounts for them. Condition (2) is relaxed and the energy flux losses are reduced in the presence of runaway electrons. All results are dependent on beam and co-spatial plasma parameters. We also examine the importance of the reflection of beam electrons by the return-current electric field. We show that the interpretation of a number of flares needs to be reviewed to account for the effects of return currents.
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