Vortex Dynamics in the Wake of Planetary Ionospheres

H. Pérez-de-Tejada, R. Lundin
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Abstract

Measurements conducted with spacecraft around Venus and Mars have shown the presence of vortex structures in their plasma wake. Such features extend across distances of the order of a planetary radius and travel along their wake with a few minutes rotation period. At Venus, they are oriented in the counterclockwise sense when viewed from the wake. Vortex structures have also been reported from measurements conducted by the solar wind-Mars ionospheric boundary. Their position in the Venus wake varies during the solar cycle and becomes located closer to Venus with narrower width values during minimum solar cycle conditions. As a whole there is a tendency for the thickness of the vortex structures to become smaller with the downstream distance from Venus in a configuration similar to that of a corkscrew flow in fluid dynamics and that gradually becomes smaller with increasing distance downstream from an obstacle. It is argued that such process derives from the transport of momentum from vortex structures to motion directed along the Venus wake and that it is driven by the thermal expansion of the solar wind. The implications of that momentum transport are examined to stress an enhancement in the kinetic energy of particles that move along the wake after reducing the rotational kinetic energy of particles streaming in a vortex flow. As a result, the kinetic energy of plasma articles along the Venus wake becomes enhanced by the momentum of the vortex flow, which decreases its size in that direction. Particle fluxes with such properties should be measured with increasing distance downstream from Venus. Similar conditions should also be expected in vortex flows subject to pressure forces that drive them behind an obstacle.
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行星电离层尾迹中的涡旋动力学
航天器在金星和火星周围进行的测量显示,在它们的等离子体尾流中存在漩涡结构。这些特征在行星半径数量级的距离上延伸,并以几分钟的旋转周期沿着它们的尾迹传播。在金星上,当从尾流上看时,它们是逆时针方向的。在太阳风-火星电离层边界进行的测量中也报告了涡旋结构。它们在金星尾流中的位置随着太阳活动周期的变化而变化,在太阳活动周期最小的情况下,它们离金星更近,宽度值更窄。总的来说,旋涡结构的厚度随着离金星下游距离的增加而变小,其结构类似于流体动力学中的螺旋状流动,并且随着离障碍物下游距离的增加而逐渐变小。有人认为,这一过程源于动量从涡旋结构转移到沿金星尾迹方向的运动,并由太阳风的热膨胀驱动。研究了动量输运的含义,以强调在降低了在涡流中流动的粒子的旋转动能后,沿着尾迹运动的粒子的动能的增强。因此,沿金星尾迹的等离子体粒子的动能由于涡流的动量而增强,从而减小了该方向的尺寸。具有这种性质的粒子通量应该随着离金星下游距离的增加而测量。类似的情况也应该出现在受压力驱使的涡流中,这种压力驱使它们躲在障碍物后面。
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Vortex Dynamics in the Wake of Planetary Ionospheres The Propagation of Vortex Beams in Random Mediums Relaxation Dynamics of Point Vortices
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