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Nonresonant electromagnetic instabilities in space plasmas : interplay of Weibel and firehose instabilities

机译:空间等离子体中的非共振电磁不稳定性:Weibel和火管不稳定性的相互作用

摘要

In coronal outflows and solar winds, the presence of the interplanetary magnetic field and heat fluxes combined with jets and shock waves give rise to important thermal anisotropies and energetic counterstreaming motions of plasma shells. Such anisotropic structures of plasma quickly lead to the onset of the kinetic electromagnetic instabilities which are dependent solely on bulk properties of the plasma and not on resonant interaction with charged particles. Here the interplay between the Weibel and firehose instabilities, both driven by an excess of kinetic energy in the direction of the ambient magnetic field, is considered. Their growth rates and thresholds are evaluated and compared for the electron temperature anisotropies in the solar wind. It is shown that the instability of the Weibel-type, which is improperly known as the “oblique firehose” instability, is the most efficient mechanism of isotropisation limiting the increase of particle velocity anisotropy and thus confirming the observations. These instabilities can explain the origin of interplanetary magnetic field fluctuations, which are expected to enhance along the temperature anisotropy thresholds.
机译:在日冕流和太阳风中,行星际磁场和热通量与射流和冲击波的结合会引起重要的热各向异性和等离子壳的高能逆流运动。等离子体的这种各向异性结构迅速导致动力学电磁不稳定性的发生,该动力学电磁不稳定性仅取决于等离子体的整体性质,而不取决于与带电粒子的共振相互作用。在这里,考虑了在环境磁场方向上都由过剩的动能驱动的Weibel和流管不稳定性之间的相互作用。对它们的增长率和阈值进行了评估,并针对太阳风中的电子温度各向异性进行了比较。结果表明,Weibel型的不稳定性被不恰当地称为“斜火水管”不稳定性,是各向同性的最有效机制,它限制了粒子速度各向异性的增加,从而证实了这一观点。这些不稳定性可以解释行星际磁场波动的起因,预计该波动会随着温度各向异性阈值而增加。

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