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多层太阳大气模式中Alfvén波的传播
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作者 李波 王水 《空间科学学报》 CAS CSCD 北大核心 2001年第2期97-104,共8页
将实际的太阳大气划分为多个等温层次,导出了均匀倾斜磁场下线性Alfvén波通过任意多等温层的能量透射率.结果表明,两等温层模式与三等温层模式的结果存在本质的区别.在两等温层中,温度的跃变式增高对Alfvén波... 将实际的太阳大气划分为多个等温层次,导出了均匀倾斜磁场下线性Alfvén波通过任意多等温层的能量透射率.结果表明,两等温层模式与三等温层模式的结果存在本质的区别.在两等温层中,温度的跃变式增高对Alfvén波起着高通滤波的作用;而三等温层中在高频端Alfvén波的透射率显示为振荡形态.对实际大气温度模式的计算结果表明,太阳低层大气更适合于周期为数秒的Alfvén波的能量传输. 展开更多
关键词 太阳大气 ALFVEN波 日冕加热 能量透射率 传播 太阳风加速
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动力Alfven波加热日冕和加速太阳风的耗散长度
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作者 宋礼庭 肖池阶 冯学尚 《中国科学(A辑)》 CSCD 2000年第z1期51-53,共3页
动力Alfven波高频分支在冕洞中沿磁场方向传播时, 其Landau阻尼可以给出可观的加热效果. 从理论上计算出波能通量的耗散形式和耗散长度, 与经验模型给出的耗散长度一致, 从而给出经验模型中耗散长度的理论根据.
关键词 动力Alfven波 日冕加热 太阳风加速
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Particle acceleration and transport in the inner heliosphere
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作者 LI Gang 《Science China Earth Sciences》 SCIE EI CAS CSCD 2017年第8期1440-1465,共26页
In the solar system, our Sun is Nature's most efficient particle accelerator. In large solar flares and fast coronal mass ejections(CMEs), protons and heavy ions can be accelerated to over ~GeV/nucleon. Large flar... In the solar system, our Sun is Nature's most efficient particle accelerator. In large solar flares and fast coronal mass ejections(CMEs), protons and heavy ions can be accelerated to over ~GeV/nucleon. Large flares and fast CMEs often occur together. However there are clues that different acceleration mechanisms exist in these two processes. In solar flares, particles are accelerated at magnetic reconnection sites and stochastic acceleration likely dominates. In comparison, at CME-driven shocks,diffusive shock acceleration dominates. Besides solar flares and CMEs, which are transient events, acceleration of particles has also been observed in other places in the solar system, including the solar wind termination shock, planetary bow shocks, and shocks bounding the Corotation Interaction Regions(CIRs). Understanding how particles are accelerated in these places has been a central topic of space physics. However, because observations of energetic particles are often made at spacecraft near the Earth,propagation of energetic particles in the solar wind smears out many distinct features of the acceleration process. The propagation of a charged particle in the solar wind closely relates to the turbulent electric field and magnetic field of the solar wind through particle-wave interaction. A correct interpretation of the observations therefore requires a thorough understanding of the solar wind turbulence. Conversely, one can deduce properties of the solar wind turbulence from energetic particle observations. In this article I briefly review some of the current state of knowledge of particle acceleration and transport in the inner heliosphere and discuss a few topics which may bear the key features to further understand the problem of particle acceleration and transport. 展开更多
关键词 Solar energetic particles Diffusive shock acceleration Perpendicular diffusion coefficient
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