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压缩等离子体在磁场中的行为。

Behavior of compressed plasmas in magnetic fields.

作者信息

Ganguli Gurudas, Crabtree Chris, Fletcher Alex, Amatucci Bill

机构信息

Plasma Physics Division, Naval Research Laboratory, Washington, DC, 20375 USA.

出版信息

Rev Mod Plasma Phys. 2020;4(1):12. doi: 10.1007/s41614-020-00048-4. Epub 2020 Nov 26.

DOI:10.1007/s41614-020-00048-4
PMID:33283043
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC7714268/
Abstract

Plasma in the earth's magnetosphere is subjected to compression during geomagnetically active periods and relaxation in subsequent quiet times. Repeated compression and relaxation is the origin of much of the plasma dynamics and intermittency in the near-earth environment. An observable manifestation of compression is the thinning of the plasma sheet resulting in magnetic reconnection when the solar wind mass, energy, and momentum floods into the magnetosphere culminating in the spectacular auroral display. This phenomenon is rich in physics at all scale sizes, which are causally interconnected. This poses a formidable challenge in accurately modeling the physics. The large-scale processes are fluid-like and are reasonably well captured in the global magnetohydrodynamic (MHD) models, but those in the smaller scales responsible for dissipation and relaxation that feed back to the larger scale dynamics are often in the kinetic regime. The self-consistent generation of the small-scale processes and their feedback to the global plasma dynamics remains to be fully explored. Plasma compression can lead to the generation of electromagnetic fields that distort the particle orbits and introduce new features beyond the purview of the MHD framework, such as ambipolar electric fields, unequal plasma drifts and currents among species, strong spatial and velocity gradients in gyroscale layers separating plasmas of different characteristics, etc. These boundary layers are regions of intense activity characterized by emissions that are measurable. We study the behavior of such compressed plasmas and discuss the relaxation mechanisms to understand their measurable signatures as well as their feedback to influence the global scale plasma evolution.

摘要

在地球磁层中,等离子体在地磁活动期间会受到压缩,而在随后的平静时期则会松弛。反复的压缩和松弛是近地环境中许多等离子体动力学和间歇性现象的起源。压缩的一个可观测表现是等离子体片变薄,当太阳风的质量、能量和动量涌入磁层并最终导致壮观的极光显示时,会引发磁重联。这种现象在所有尺度大小上都蕴含着丰富的物理过程,这些过程存在因果联系。这给准确模拟其物理过程带来了巨大挑战。大规模过程类似流体,在全球磁流体动力学(MHD)模型中能得到较好的描述,但那些负责耗散和松弛并反馈到更大尺度动力学的较小尺度过程通常处于动力学 regime。小尺度过程的自洽产生及其对全球等离子体动力学的反馈仍有待充分探索。等离子体压缩会导致产生电磁场,这些电磁场会扭曲粒子轨道,并引入MHD框架范围之外的新特征,例如双极电场、不同物种间不等的等离子体漂移和电流、在分隔不同特性等离子体的陀螺尺度层中存在的强烈空间和速度梯度等。这些边界层是活动剧烈的区域,其特征是有可测量的发射。我们研究此类压缩等离子体的行为,并讨论松弛机制,以了解它们的可测量特征以及它们对全球尺度等离子体演化的反馈影响。

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本文引用的文献

1
Lower-Hybrid Drift Waves Driving Electron Nongyrotropic Heating and Vortical Flows in a Magnetic Reconnection Layer.低杂波漂移波驱动磁重联层中的电子非各向同性加热和涡旋流
Phys Rev Lett. 2020 Jul 10;125(2):025103. doi: 10.1103/PhysRevLett.125.025103.
2
Kinetic Equilibrium of Dipolarization Fronts.双极化前沿的动力学平衡
Sci Rep. 2018 Nov 21;8(1):17186. doi: 10.1038/s41598-018-35349-9.
3
Two states of magnetotail dipolarization fronts: A statistical study.磁尾极化前沿的两种状态:一项统计研究。
J Geophys Res Space Phys. 2015 Feb;120(2):1096-1108. doi: 10.1002/2014JA020380. Epub 2015 Feb 16.
4
Deep learning.深度学习。
Nature. 2015 May 28;521(7553):436-44. doi: 10.1038/nature14539.
5
Plasma response to a varying degree of stress.血浆对不同程度的压力的反应。
Phys Rev Lett. 2013 Oct 4;111(14):145002. doi: 10.1103/PhysRevLett.111.145002. Epub 2013 Oct 2.
6
Spontaneous electromagnetic emission from a strongly localized plasma flow.强局域化等离子体流中的自发电磁辐射。
Phys Rev Lett. 2011 May 6;106(18):185001. doi: 10.1103/PhysRevLett.106.185001.
7
Nonlinear dynamics of magnetic islands imbedded in small-scale turbulence.嵌入小尺度湍流中的磁岛的非线性动力学。
Phys Rev Lett. 2009 Oct 2;103(14):145001. doi: 10.1103/PhysRevLett.103.145001. Epub 2009 Sep 29.
8
Reducing the dimensionality of data with neural networks.使用神经网络降低数据维度。
Science. 2006 Jul 28;313(5786):504-7. doi: 10.1126/science.1127647.
9
Drift-wave instability excited by field-aligned ion flow velocity shear in the absence of electron current.在无电子电流情况下由场向离子流速度剪切激发的漂移波不稳定性。
Phys Rev Lett. 2003 Mar 28;90(12):125001. doi: 10.1103/PhysRevLett.90.125001. Epub 2003 Mar 24.
10
Observation of inverse ion-cyclotron damping induced by parallel-velocity shear.
Phys Rev Lett. 2002 Sep 2;89(10):105001. doi: 10.1103/PhysRevLett.89.105001. Epub 2002 Aug 14.