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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >The First Direct Observational Confirmation of Kinematic Collisionless Relaxation in Very Low Mach Number Shocks Near the Earth
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The First Direct Observational Confirmation of Kinematic Collisionless Relaxation in Very Low Mach Number Shocks Near the Earth

机译:第一个直接观察确认运动在非常低的无碰撞的放松马赫数冲击接近地球

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Collisionless shocks are ubiquitous throughout the known universe. They mainly convert the energy of the directed ion flow into heating. Upon crossing the shock front, the ion distribution becomes nongyrotropic. Relaxation to gyrotropy then occurs mainly via kinematic collisionless gyrophase mixing and interaction with waves. The theory of collisionless relaxation predicts that the downstream pressure of each ion species varies quasi-periodically with the distance from the shock transition layer and the amplitude of the variations gradually decrease. The oscillations due to each species have their own spatial period and damping scale. Pressure balance requires that the variations in the total plasma pressure should cause anticorrelating variations in the magnetic pressure. This process should occur at all Mach numbers, but its observation is difficult at moderate-/high-Mach numbers. In contrast, such magnetic oscillations have been observed at low Mach number cases of the Venusian bow shock and interplanetary shocks. In this paper, simultaneous in situ magnetic field and plasma measurements from the THEMIS-B and THEMIS-C spacecraft are used to study, for the first time, the anticorrelated total ion and magnetic pressure spatial variations at low-Mach number shocks. It is found that kinematic collisionless relaxation is the dominant process in the formation of the downstream ion distribution and in shaping the downstream magnetic profile of the observed shocks, confirming fundamental theoretical results. Comparison with the results from numerical models allows the role of the different ion species to be investigated and confirms the role heavy ions play in forming the downstream magnetic profile.
机译:无碰撞的冲击中无处不在已知的宇宙。定向离子流入加热。激震前沿、离子分布nongyrotropic。主要是通过运动无碰撞的发生与波gyrophase混合和交互。无碰撞的弛豫理论预测每个离子的下游压力的物种不同quasi-periodically距离冲击过渡层的振幅差异逐渐减少。由于每一个物种都有自己的振荡空间周期和阻尼的规模。平衡要求的变化等离子体的压力应该引起anticorrelating磁压力的变化。应该发生在所有的马赫数,但其吗中等/超音速观察是很困难的数字。曾被观察到在低马赫数情况下的的金星弓形激波与星际冲击。本文同时原位磁从THEMIS-B场和等离子体测量和THEMIS-C飞船是用于研究,第一次,anticorrelated总离子和磁压力在low-Mach空间变化数量的冲击。无碰撞的放松是占主导地位的过程在下游离子的形成分布和在塑造下游磁剖面的观察到的冲击,确认基本理论的结果。与数值模型的结果进行比较允许不同的离子物种的角色调查和证实了重离子的角色在下游形成磁剖面。

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