不平衡太阳风湍流中小离子的极端加热

Michael F. Zhang, Matthew W. Kunz, Jonathan Squire, Kristopher G. Klein
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摘要

日冕中的小离子被加热到极高的温度,远远超过构成等离子体主体的电子和质子的温度。这些高度非热分布使小离子成为潜在的无碰撞加热过程的灵敏探测器,这对日冕加热和太阳风的产生至关重要。最近发现的 "螺旋屏障 "提供了一种机制,即低贝塔等离子体中不平衡的Alfv\'enic 湍流会优先加热质子而不是电子,从而产生高频质子-周期共振波动。我们使用混合动力粒子-胞内代码 Pegasus++ 来驱动三维低贝塔等离子体中的不平衡 Alfv\'en 湍流,其中包含额外的被动离子物种 He$^{2+}$ 和 O$^{5+}$。自然形成了螺旋屏障,随后出现了斜离子-回旋波加热的周期相空间特征,以及来自不平衡阿尔夫波动的兰道共振加热。前者导致了特征性的弧形离子速度分布函数,线性ALPS计算表明,弧形离子速度分布函数的双麦克斯韦特征是加热过程的关键。其他特征包括:陡峭的过渡范围电磁频谱、存在向不平衡方向传播的离子-回旋波、质子-电子热比显著增强、各向异性的离子温度(与磁场的垂直度显著增加)以及较重物质的极度加热,其方式与通过测量获得的经验质量标度一致。在平衡湍流的等效模拟中,这些特征无一实现。如果同时出现在快速太阳风中,这些螺旋障碍的特征将证明有必要将湍流不平衡纳入太阳风演化的完整理论中。
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Extreme heating of minor ions in imbalanced solar-wind turbulence
Minor ions in the solar corona are heated to extreme temperatures, far in excess of those of the electrons and protons that comprise the bulk of the plasma. These highly non-thermal distributions make minor ions sensitive probes of the underlying collisionless heating processes, which are crucial to coronal heating and the creation of the solar wind. The recent discovery of the "helicity barrier" offers a mechanism where imbalanced Alfv\'enic turbulence in low-beta plasmas preferentially heats protons over electrons, generating high-frequency, proton-cyclotron-resonant fluctuations. We use the hybrid-kinetic particle-in-cell code, Pegasus++, to drive imbalanced Alfv\'enic turbulence in a 3D low-beta plasma with additional passive ion species, He$^{2+}$ and O$^{5+}$. A helicity barrier naturally develops, followed by clear phase-space signatures of oblique ion-cyclotron-wave heating and Landau-resonant heating from the imbalanced Alfv\'enic fluctuations. The former results in characteristically arced ion velocity distribution functions, whose non-bi-Maxwellian features are shown by linear ALPS calculations to be critical to the heating process. Additional features include a steep transition-range electromagnetic spectrum, the presence of ion-cyclotron waves propagating in the direction of imbalance, significantly enhanced proton-to-electron heating ratios, anisotropic ion temperatures that are significantly more perpendicular with respect to magnetic field, and extreme heating of heavier species in a manner consistent with empirically derived mass scalings informed by measurements. None of these features are realized in an otherwise equivalent simulation of balanced turbulence. If seen simultaneously in the fast solar wind, these signatures of the helicity barrier would testify to the necessity of incorporating turbulence imbalance in a complete theory for the evolution of the solar wind.
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