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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Oblique proton fire hose instability in the expanding solar wind: Hybrid simulations
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Oblique proton fire hose instability in the expanding solar wind: Hybrid simulations

机译:斜质子消防水带的不稳定太阳风:扩张混合模拟

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Oblique fire hose instability is investigated using hybrid simulations for proton betas of the order of one and for proton parallel temperatures sufficiently greater than the perpendicular ones. The simulations confirm previous simulation results showing that this instability has self-destructing properties and efficiently reduces the proton temperature anisotropy. A parametric study using one-dimensional standard hybrid simulations shows that stronger changes in the temperature anisotropy and stronger wave emissions appear for larger initial temperature anisotropies. An ideal, slow plasma expansion, modeled by a two-dimensional hybrid expanding box simulation, leads to a generation of proton temperature anisotropy. The anisotropy leads first to destabilization of the dominant parallel fire hose, which interacts mainly with minor supra-Alfvénic protons, whereas the evolution of core protons is determined by expansion. Consequently, the effective anisotropy is only slightly reduced and the system eventually becomes unstable with respect to the oblique fire hose instability. The oblique fire hose strongly scatters the protons and removes the anisotropy disrupting the parallel fire hose. An important portion of the fluctuating wave energy is dissipated to protons, and only long wavelength waves remain in the system. The system with low wave activity then develops again larger temperature anisotropies, and the evolution repeats itself. It is concluded that both parallel and oblique proton fire hose instabilities constrain the proton temperature anisotropy in the expanding solar wind, with the latter one constituting a final frontier for the anisotropy. These results give a possible explanation of some apparent discrepancies between observations and linear predictions. In addition, a simple bounded anisotropy model is developed to include some of the kinetic effects of the fire hose instabilities in fluid models.
机译:斜消防水带不稳定了使用混合模拟质子的贝塔的顺序和质子并行的温度足够大于垂直的。前仿真模拟证实结果表明,这种不稳定性毁的属性和有效降低了质子温度各向异性。使用一维标准参数研究混合模拟显示更强的变化温度各向异性和更强的波排放出现较大的初始温度各向异性现象。由一个二维混合扩大盒子模拟,会导致一代质子温度各向异性。第一个不稳定的占主导地位的平行消防水带,主要与次要交互supra-Alfvenic质子,而进化的核心质子是由扩张。因此,只有有效各向异性稍微降低,最终系统变得不稳定对斜火软管不稳定。散射各向异性的质子和删除扰乱并行消防水带。部分的脉动波能量质子消散,只长波长波保持系统中。然后再发展更大的波活动温度各向异性,而进化重复。并行计算和斜质子消防水带不稳定约束质子的温度各向异性的扩大太阳风,后者构成的最后边界各向异性。解释一些明显的差异观察与线性预测。此外,一个简单的有界各向异性模型开发包括一些动态效果消防水带的不稳定流动模型。

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