论文标题

密度不均匀性对电子束等离子体无线电波发射的影响

The effects of density inhomogeneities on the radio wave emission in electron beam plasmas

论文作者

Yao, Xin, Muñoz, Patricio A., Büchner, Jörg, Zhou, Xiaowei, Liu, Siming

论文摘要

III型无线电爆发是与太阳耀斑相关的无线电排放。它们被认为是由从太阳能电晕到太阳风传播的电子束引起的。在太阳耀斑过程中,磁重新连接是电子梁的可能加速器,因为它会导致不稳定的分布功能和密度不均匀性(腔)。电子梁在不均匀环境中发射的无线电发射的性能仍然很少了解。我们通过利用完全旋转的粒子中的粒子(PIC)代码数值模拟来捕获非均匀等离子体中光束相关无线电排放的非线性动力学等离子体过程。我们的模型考虑了初始电子速度分布函数(EVDF),因为它们应该通过磁重新连接而产生。我们将分析集中在具有强磁场的低密度区域上。假定的EVDF允许无线电波排放的两种不同的机制:由于波波相互作用和所谓的电子回旋马仪发射(ECME)引起的血浆排放,这是由于直接波颗粒相互作用引起的。我们研究了密度不均匀性对通过等离子体发射和ECME的静电和电磁波的能量转化为静电波和电磁波能量的影响,以及梁EVDF中垂直渐变渐变引起的电子共振的频率移动。我们最重要的发现是,由于存在密度不均匀性,Langmuir波的谐波数量增加。 Langmuir波的附加谐波是由光束生成的Langmuir波及其谐波的合并产生的。

Type III radio bursts are radio emissions associated with solar flares. They are considered to be caused by electron beams traveling from the solar corona to the solar wind. Magnetic reconnection is a possible accelerator of electron beams in the course of solar flares since it causes unstable distribution functions, and density inhomogeneities (cavities). The properties of radio emission by electron beams in an inhomogeneous environment are still poorly understood. We capture the non-linear kinetic plasma processes of generation of beam-related radio emissions in inhomogeneous plasmas by utilizing fully-kinetic Particle-In-Cell (PIC) code numerical simulations. Our model takes into account initial electron velocity distribution functions (EVDFs) as they are supposed to be created by magnetic reconnection. We focus our analysis on low-density regions with strong magnetic fields. The assumed EVDFs allow two distinct mechanisms of radio wave emissions: plasma emissions due to wave-wave interactions and so-called electron cyclotron maser emissions (ECME) due to direct wave-particle interactions. We investigate the effects of density inhomogeneities on the conversion of free energy from the electron beams into the energy of electrostatic and electromagnetic waves via plasma emission and ECME, as well as the frequency shift of electron resonances caused by perpendicular gradients in the beam EVDFs. Our most important finding is that the number of harmonics of Langmuir waves increases due to the presence of density inhomogeneities. The additional harmonics of Langmuir waves are generated by a coalescence of beam-generated Langmuir waves and their harmonics.

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