论文标题

太阳风中电子热通量不稳定性的替代高血浆β机制

Alternative high plasma beta regimes of electron heat-flux instabilities in the solar wind

论文作者

López, R. A., Lazar, M., Shaaban, S. M., Poedts, S., Moya, P. S.

论文摘要

太阳风中的热传输由外电子种群(即脆弱的光环和与场对准的光束/strahl)主导,具有高能量,并且沿磁场沿着抗动脉沿着磁场漂移。它们的进化可能会提供合理的解释,以通过太阳风膨胀来快速减少热通量,通常称为自我生成的不稳定性或所谓的热通量不稳定性(HFIS)。本文提供了对HFI的完整范围的统一描述,如线性动力学理论所规定的高β条件($β_E\ gg 0.1 $)和上列的不同相对漂移($ u $)。区分不同性质的HFI,即电磁,静电或杂交,并平行或倾斜到磁场等,及其相互作用(共存)或优势。 HFIS的这些替代方案相互补充,可能是超电子电子的不同相对漂移以及太阳风中各种条件的特征,例如,在慢速或快速的风,流相互作用区域和行星际冲击中。此外,这些结果强烈表明,热通量调节可能不仅涉及一个,而是及时或连续的几个HFI。单个,明确定义的不稳定性的条件对超颗粒电子以及隐式磁通量的影响似乎非常有限。 Whistler HFI更可能发生,但仅是针对较小的漂移(也是最近的观察结果报道),这可能解释了其调节中的适度含义,这​​已经显示在准线性研究和数值模拟中。

The heat transport in the solar wind is dominated by the suprathermal electron populations, i.e., a tenuous halo and a field-aligned beam/strahl, with high energies and antisunward drifts along the magnetic field. Their evolution may offer plausible explanations for the rapid decrease of the heat flux with the solar wind expansion, typically invoked being the self-generated instabilities, or the so-called heat flux instabilities (HFIs). The present paper provides a unified description of the full spectrum of HFIs, as prescribed by the linear kinetic theory for high beta conditions ($β_e \gg 0.1$) and different relative drifts ($U$) of the suprathermals. HFIs of different nature are distinguished, i.e., electromagnetic, electrostatic or hybrid, propagating parallel or obliquely to the magnetic field, etc., as well as their regimes of interplay (co-existence) or dominance. These alternative regimes of HFIs complement each other and may be characteristic to different relative drifts of suprathermal electrons and various conditions in the solar wind, e.g., in the slow or fast winds, streaming interaction regions and interplanetary shocks. Moreover, these results strongly suggest that heat flux regulation may not involve only one but several HFIs, concomitantly or successively in time. Conditions for a single, well defined instability with major effects on the suprathermal electrons and, implicitly, the heat flux, seem to be very limited. Whistler HFIs are more likely to occur but only for minor drifts (as also reported by recent observations), which may explain a modest implication in their regulation, shown already in quasilinear studies and numerical simulations.

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