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Effects of suprathermal electrons on the proton temperature anisotropy in space plasmas: Electromagnetic ion-cyclotron instability

机译:超热电子对空间等离子体中质子温度各向异性的影响:电磁离子回旋加速器不稳定性

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In collision-poor plasmas from space, e.g., the solar wind and planetary magnetospheres, the kinetic anisotropy of the plasma particles is expected to be regulated by the kinetic instabilities. Driven by an excess of ion (proton) temperature perpendicular to the magnetic field (T-perpendicular to > T-parallel to), the electromagnetic ion-cyclotron (EMIC) instability is fast enough to constrain the proton anisotropy, but the observations do not conform to the instability thresholds predicted by the standard theory for bi-Maxwellian models of the plasma particles. This paper presents an extended investigation of the EMIC instability in the presence of suprathermal electrons which are ubiquitous in these environments. The analysis is based on the kinetic (Vlasov-Maxwell) theory assuming that both species, protons and electrons, may be anisotropic, and the EMIC unstable solutions are derived numerically providing an accurate description for conditions typically encountered in space plasmas. The effects of suprathermal populations are triggered by the electron anisotropy and the temperature contrast between electrons and protons. For certain conditions the anisotropy thresholds exceed the limits of the proton anisotropy measured in the solar wind considerably restraining the unstable regimes of the EMIC modes.
机译:在来自太空(例如太阳风和行星磁层)的碰撞较弱的等离子体中,等离子体颗粒的动力学各向异性有望通过动力学的不稳定性来调节。在垂直于磁场(T垂直于> T平行于T)的过量离子(质子)温度的驱动下,电磁离子回旋加速器(EMIC)的不稳定性足够快以限制质子各向异性,但观察结果并未如此符合标准理论所预测的血浆颗粒双麦克斯韦模型的不稳定性阈值。本文介绍了在这些环境中普遍存在的超热电子存在下EMIC不稳定性的扩展研究。该分析基于动力学(Vlasov-Maxwell)理论,假设质子和电子都可能是各向异性的,并且EMIC不稳定解的数值得到了数值化,从而提供了对空间等离子体中通常遇到的条件的准确描述。电子粒子的各向异性和电子与质子之间的温度反差触发了超热粒子的效应。对于某些条件,各向异性阈值超过了在太阳风中测得的质子各向异性的极限,从而极大地抑制了EMIC模式的不稳定状态。

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