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火星空间磁场低频波动

金泰峰,李磊,张艺腾

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金泰峰, 李磊, 张艺腾. 火星空间磁场低频波动[J]. 深空探测学报(中英文), 2019, 6(2): 134-141. doi: 10.15982/j.issn.2095-7777.2019.02.004
引用本文: 金泰峰, 李磊, 张艺腾. 火星空间磁场低频波动[J]. 深空探测学报(中英文), 2019, 6(2): 134-141.doi:10.15982/j.issn.2095-7777.2019.02.004
JIN Taifeng, LI Lei, ZHANG Yiteng. Low-Frequency Magnetic Field Fluctuations in the Martian Space[J]. Journal of Deep Space Exploration, 2019, 6(2): 134-141. doi: 10.15982/j.issn.2095-7777.2019.02.004
Citation: JIN Taifeng, LI Lei, ZHANG Yiteng. Low-Frequency Magnetic Field Fluctuations in the Martian Space[J].Journal of Deep Space Exploration, 2019, 6(2): 134-141.doi:10.15982/j.issn.2095-7777.2019.02.004

火星空间磁场低频波动

doi:10.15982/j.issn.2095-7777.2019.02.004

Low-Frequency Magnetic Field Fluctuations in the Martian Space

  • 摘要:波动是无碰撞等离子体中能量重新分配的重要途径。对波动的研究有助于更准确地认识太阳风与火星的相互作用,认识火星空间环境的特征。介绍了火星空间中常见的几种磁场低频波动,包括离子回旋波(Ion-CyclotronWave,ICW)、磁流体动力学(MagnetoHydro Dynamic,MHD)波、镜像模波、哨声波以及磁场锯齿状波动,总结了这几类波动的特征和可能的形成机制,说明不同种类的波动所反映的不同的物理过程。由于波粒相互作用在火星离子逃逸的过程中起到了重要作用,波动可影响火星环境的演化。
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    [9] ROMANELLI N,BERTUCCI C,GOMEZ D,et al. Proton cyclotron waves upstream from Mars:observations from mars global surveyor[J]. Planetary and Space Science,2013(76):1-9.
    [10] WEI H Y,COWEE M M,RUSSELL C T,et al. Ion cyclotron waves at Mars:occurrence and wave properties[J]. Journal of Geophysical Research:Space Physics,2014,119(7):5244-5258.
    [11] BERTUCCI C,ROMANELLI N,CHAUFRAY J,et al. A temporal variability of waves at the proton cyclotron frequency upstream from Mars:implications for Mars distant hydrogen exosphere[J]. Geophysical Research Letters,2013,40(15):3809-3813.
    [12] ROMANELLI N,MAZELLE C,CHAUFRAY J Y,et al. Proton cyclotron waves occurrence rate upstream from Mars observed by MAVEN:associated variability of the Martian upper atmosphere[J]. Journal of Geophysical Research:Space Physics,2016,121(11):11113-11128.
    [13] SAUER K,BAUMGILRTEL K,AXNⅡS I,et al. Fluid simulation of the AMPTE Solar wind lithium release[J]. Advance in Space Research,1990,10(7):95-98.
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    [15] LUI A T Y,GOODRICH C C,MANKOFSKY A. Papadopoulos K early time interaction of lithium ions with the Solar wind in the AMPTE mission[J]. Journal of Geophysical Research,1986(91):1333-1338.
    [16] FOWLER C M,ANDERSSON L,ERGUN R E,et al. MAVEN observations of Solar wind-driven magnetosonic waves heating the martian dayside ionosphere[J]. Journal of Geophysical Research:Space Physics,2018(123):4129-4149.
    [17] COLLINSON G,WILSON L B Ⅲ,OMIDI N,et al. Solar wind induced waves in the skies of Mars:ionospheric compression, energization,and escape resulting from the impact of ultralow frequency magnetosonic waves generated upstream of the Martian bow shock[J]. Journal of Geophysical Research:Space Physics, 2018,123(9):7241-7256.
    [18] RUHUNUSIRI S,HALEKAS J S,ESPLEY J R,et al. One-Hertz waves at Mars:MAVEN observations[J]. Journal of Geophysical Research:Space Physics,2018(123):3460-3476.
    [19] HARADA Y,ANDERSSON L,FLOWER C M,et al. MAVEN observations of electron-induced whistler mode waves in the Martian magnetosphere[J]. Journal of Geophysical Research:Space Physics, 2016,121(10):9717-9731.
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  • 收稿日期:2018-10-15
  • 修回日期:2019-01-15
  • 刊出日期:2019-04-01

火星空间磁场低频波动

doi:10.15982/j.issn.2095-7777.2019.02.004

摘要:波动是无碰撞等离子体中能量重新分配的重要途径。对波动的研究有助于更准确地认识太阳风与火星的相互作用,认识火星空间环境的特征。介绍了火星空间中常见的几种磁场低频波动,包括离子回旋波(Ion-CyclotronWave,ICW)、磁流体动力学(MagnetoHydro Dynamic,MHD)波、镜像模波、哨声波以及磁场锯齿状波动,总结了这几类波动的特征和可能的形成机制,说明不同种类的波动所反映的不同的物理过程。由于波粒相互作用在火星离子逃逸的过程中起到了重要作用,波动可影响火星环境的演化。

English Abstract

金泰峰, 李磊, 张艺腾. 火星空间磁场低频波动[J]. 深空探测学报(中英文), 2019, 6(2): 134-141. doi: 10.15982/j.issn.2095-7777.2019.02.004
引用本文: 金泰峰, 李磊, 张艺腾. 火星空间磁场低频波动[J]. 深空探测学报(中英文), 2019, 6(2): 134-141.doi:10.15982/j.issn.2095-7777.2019.02.004
JIN Taifeng, LI Lei, ZHANG Yiteng. Low-Frequency Magnetic Field Fluctuations in the Martian Space[J]. Journal of Deep Space Exploration, 2019, 6(2): 134-141. doi: 10.15982/j.issn.2095-7777.2019.02.004
Citation: JIN Taifeng, LI Lei, ZHANG Yiteng. Low-Frequency Magnetic Field Fluctuations in the Martian Space[J].Journal of Deep Space Exploration, 2019, 6(2): 134-141.doi:10.15982/j.issn.2095-7777.2019.02.004
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