论文标题
在太阳风中的准平行惠斯勒波
On quasi-parallel whistler waves in the solar wind
论文作者
论文摘要
最近的模拟表明,惠斯勒的热通量不稳定性大概会在太阳风中产生大部分准平行的连贯惠斯勒波,在调节电子热传导方面并不有效。此外,最近的航天器测量表明,太阳风中的一定一部分相干惠斯勒波可能会由于垂直于电子上的垂直温度各向异性而产生的与电子热通量的抗平行。我们介绍了对原始太阳风典型的外电子电子的电子热通量和温度各向异性的平行和反平行惠斯勒波不稳定的性质的分析。假设电子种群由反向流的密集热核和脆弱的外晕圈种群组成,我们进行线性稳定性分析,以证明与平行的惠斯勒波相比,预计反平行的惠斯勒波的频率和生长速率较小。稳定性分析在核心和光晕电子种群的广泛参数上进行。使用准线性缩放关系,我们表明,反平行的惠斯勒波在一个比并联惠斯勒波小的幅度幅度下饱和,该幅度的幅度小于$ 10^{ - 3} \; b_0 $在原始太阳风中。分析表明,与平行的惠斯勒波相比,由于较低的频率和较小的振幅,原始太阳风中的反平行惠斯勒波更可能被湍流磁场波动所掩盖。提出的结果对于太阳风中电子热通量调节的数值模拟也将很有价值。
The recent simulations showed that the whistler heat flux instability, which presumably produces the most of quasi-parallel coherent whistler waves in the solar wind, is not efficient in regulating the electron heat conduction. In addition, recent spacecraft measurements indicated that some fraction of coherent whistler waves in the solar wind may propagate anti-parallel to the electron heat flux, being produced due to a perpendicular temperature anisotropy of suprathermal electrons. We present analysis of properties of parallel and anti-parallel whistler waves unstable at electron heat fluxes and temperature anisotropies of suprathermal electrons typical of the pristine solar wind. Assuming the electron population consisting of counter-streaming dense thermal core and tenuous suprathermal halo populations, we perform a linear stability analysis to demonstrate that anti-parallel whistler waves are expected to have smaller frequencies, wave numbers and growth rates compared to parallel whistler waves. The stability analysis is performed over a wide range of parameters of core and halo electron populations. Using the quasi-linear scaling relation we show that anti-parallel whistler waves saturate at amplitudes of one order of magnitude smaller than parallel whistler waves, which is at about $10^{-3}\;B_0$ in the pristine solar wind. The analysis shows that the presence of anti-parallel whistler waves in the pristine solar wind is more likely to be obscured by turbulent magnetic field fluctuations, because of lower frequencies and smaller amplitudes compared to parallel whistler waves. The presented results will be also valuable for numerical simulations of the electron heat flux regulation in the solar wind.