磁场相对较弱的热木星型系外行星等离子体层中电子的加速

IF 0.7 4区 地球科学 Q4 GEOCHEMISTRY & GEOPHYSICS Geomagnetism and Aeronomy Pub Date : 2025-01-16 DOI:10.1134/S0016793224700038
V. V. Zaitsev, V. E. Shaposhnikov, A. A. Kuznetsov, T. V. Simonova
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引用次数: 0

摘要

以系外行星HD 189733b的等离子层为例,类比于木星-木卫一系统中实现的加速机制,讨论了电子加速机制。当带有恒星磁场的迎面而来的恒星风流到达有足够数量的中性粒子的大气区域时,恒星电子和离子与中性粒子碰撞的不同频率保证了电荷分离,并产生电荷分离电场。在这个过程中,系外行星等离子层电导率的各向异性发挥了重要作用,它最终导致了一个强大的电场,这个电场在磁场的方向上有一个投影,并导致电子加速。估计了系外行星HD 189733b的加速电子的特征能量和通量。从系外行星大气中等离子体不稳定的发生和在地球上记录所必需的无线电发射通量的产生的角度讨论了这种加速机制的可能性。最后得出了观测该系外行星射电辐射的加速机制的能量充分性的结论。另外两颗研究最多的热木星型系外行星wasp 12b和HD 209458 b也讨论了实现上述电子加速机制的可能性。
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Acceleration of Electrons in Plasmospheres of Hot Jupiter-Type Exoplanets with a Relatively Weak Magnetic Field

In analogy with the acceleration mechanism implemented in the Jupiter–Io system, the electron acceleration mechanism is discussed with the example of the plasmasphere of exoplanet HD 189733b. Under conditions when the oncoming stellar wind flow with the stellar magnetic field included in it reaches a region of the atmosphere with a sufficient number of neutral particles, the different frequencies of collisions of stellar electrons and ions with neutrals ensure charge separation and the emergence of an electric field of charge separation. In this process, an important role is played by the anisotropy of the conductivity of the exoplanet’s plasmasphere, which ultimately leads to a powerful electric field, that has a projection on the direction of the magnetic field and causes electron acceleration. The characteristic energies and fluxes of accelerated electrons for exoplanet HD 189733b are estimated. The possibilities of this acceleration mechanism are discussed from the viewpoint of the occurrence of plasma instability in the atmosphere of the exoplanet and generation of a radio emission flux necessary for recording on Earth. A conclusion is drawn about the energy sufficiency of the proposed acceleration mechanism for observing the radio emission of this exoplanet. The possibilities of implementing the electron acceleration mechanism described above for the other two most studied hot Jupiter-type exoplanets—WASP 12 b and HD 209458 b—are also discussed.

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来源期刊
Geomagnetism and Aeronomy
Geomagnetism and Aeronomy Earth and Planetary Sciences-Space and Planetary Science
CiteScore
1.30
自引率
33.30%
发文量
65
审稿时长
4-8 weeks
期刊介绍: Geomagnetism and Aeronomy is a bimonthly periodical that covers the fields of interplanetary space; geoeffective solar events; the magnetosphere; the ionosphere; the upper and middle atmosphere; the action of solar variability and activity on atmospheric parameters and climate; the main magnetic field and its secular variations, excursion, and inversion; and other related topics.
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