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多组分离子镜像与回旋不稳定性研究进展

马玉端 杨有军 阿力木·艾力木 王卫

马玉端, 杨有军, 阿力木·艾力木, 王卫. 多组分离子镜像与回旋不稳定性研究进展[J]. 空间科学学报. doi: 10.11728/cjss2026.05.2025-0176
引用本文: 马玉端, 杨有军, 阿力木·艾力木, 王卫. 多组分离子镜像与回旋不稳定性研究进展[J]. 空间科学学报. doi: 10.11728/cjss2026.05.2025-0176
MA Yuduan, YANG Youjun, AILIMU·Alimu, WANG Wei. Progress in Research on Mirror and Electromagnetic Cyclotron Instabilities of Multi-component Ions (in Chinese). Chinese Journal of Space Science, 2026, 46(5): 1-12 doi: 10.11728/cjss2026.05.2025-0176
Citation: MA Yuduan, YANG Youjun, AILIMU·Alimu, WANG Wei. Progress in Research on Mirror and Electromagnetic Cyclotron Instabilities of Multi-component Ions (in Chinese). Chinese Journal of Space Science, 2026, 46(5): 1-12 doi: 10.11728/cjss2026.05.2025-0176

多组分离子镜像与回旋不稳定性研究进展

doi: 10.11728/cjss2026.05.2025-0176 cstr: 32142.14.cjss.2025-0176
基金项目: 国家自然科学基金项目(42374202)和太阳活动与空间天气全国重点实验室专项基金资助项目共同资助
详细信息
    作者简介:
    • 马玉端 女, 1977年8月出生于河南省周口市, 北京航空航天大学空间与地球科学学院副教授, 主要研究方向为地球磁尾离子高速流、磁暴和亚暴. E-mail: ydma@buaa.edu.cn
  • 中图分类号: P354

Progress in Research on Mirror and Electromagnetic Cyclotron Instabilities of Multi-component Ions

  • 摘要: 由离子垂直温度各向异性驱动的镜像(mirror)不稳定性和电磁离子回旋(EMIC)不稳定性在空间等离子体中普遍存在, 且在亚暴、磁暴的演化过程中具有非常重要的作用. 本文概述了磁流体力学和动理论下两种不稳定性物理机制, 回顾了单一离子成分(质子)条件下两种不稳定性的基础理论研究成果; 进一步梳理了多组分离子中两种不稳定性的研究进展, 重点探讨了地球磁层中重离子(He+, O+)的引入对两种不稳定性产生的影响; 总结了多组分等离子体中不稳定性阈值与增长率的理论推导及数值模拟成果, 分析了当前研究中存在的挑战, 并对未来理论研究、数值模拟和卫星观测提出展望, 以期全面揭示多离子组分中该两种不稳定性的调控作用及其在全局动理学中的意义.

     

  • 图  1  电磁离子回旋不稳定性(虚线曲线)和镜像(实线曲线)不稳定性的最大增长率随$ {N}_{{α}}/{N}_{\text{p}} $的变化[39]

    Figure  1.  Maximum growth rates of the electromagnetic ion cyclotron (dashed curves) and mirror (solid curves) instabilities as a function of $ {N}_{{α}}/{N}_{\text{p}} $[39]

    图  2  09:00-24:00 UT期间三种离子和EMIC波段的演化[49]

    Figure  2.  Evolution of three ion species and three EMIC bands from 09:00 UT to 24:00 UT[49]

    图  3  在$ {n}_{{{\text{H}}^{+}}}=0.9 $, $ {n}_{{{\text{He}}^{+}}}=0.9 $, $ {n}_{{{\text{o}}^{+}}}=0.9 $和$ {T}_{\bot }/{T}_{\parallel }=8 $时不同$ {\kappa }_{\text{p}} $指数下增长率与波矢$ {K}_{\parallel } $的变化[51]

    Figure  3.  Variation of growth rate versus wave vector $ {K}_{\parallel } $ for different values of distribution indices $ {\kappa }_{\text{p}} $, at particle density $ {n}_{{{\text{H}}^{+}}}=0.9 $, $ {n}_{{{\text{He}}^{+}}}=0.9 $, $ {n}_{{{\text{o}}^{+}}}=0.9 $ and $ {T}_{\bot }/{T}_{\parallel }=8 $[51]

    图  4  (a)磁场强度(黑线)和离子$ \beta $值(红线); (b)热压(品红线), 磁压(红线)和总压(蓝线); (c)离子温度各向异性; (d)镜像不稳定性阈值$ R $[57]

    Figure  4.  (a) Magnetic field strength (black) and ion plasma β (red), (b) thermal pressure (magenta), magnetic pressure (red), and their summation (blue), (c) temperature anisotropy of ions, (d) threshold of mirror mode instability[57]

    图  5  (a)热离子温度各向异性, (b)热离子数密度, (c)EMIC不稳定性参数, (d)波幅[57]

    Figure  5.  (a) Temperature anisotropy of hot ions, (b) number density of hot ions, (c) EMIC instability parameters, (d) wave amplitude[57]

    图  6  (a)波功率谱, (b)坡印廷通量, (c)坡印廷角通量, (d)波法向角, (e)波的椭圆度, (f)环境磁场分析[59]

    Figure  6.  (a) Wave power spectra, (b) Poynting flux spectra, (c) Poynting flux angle, (d) wave normal angle, (e) wave ellipticity, (f) ambient magnetic field analysis[59]

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  • 收稿日期:  2025-10-18
  • 修回日期:  2026-01-16
  • 网络出版日期:  2026-01-19

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