• DocumentCode
    1089462
  • Title

    Laser Plasma Experiments to Simulate Coronal Mass Ejections During Giant Solar Flare and Their Strong Impact on Magnetospheres

  • Author

    Ponomarenko, Arnold G. ; Zakharov, Yuri P. ; Antonov, Vladimir M. ; Boyarintsev, Eduard L. ; Melekhov, Alexandr V. ; Posukh, Vitaliy G. ; Shaikhislamov, Ildar F. ; Vchivkov, Konstantin V.

  • Author_Institution
    Russian Acad. of Sci., Novosibirsk
  • Volume
    35
  • Issue
    4
  • fYear
    2007
  • Firstpage
    813
  • Lastpage
    821
  • Abstract
    Giant solar flares are the most powerful phenomenon in the solar system, which can strongly affect various geospheres and technical systems in the near Earth´s space or its surface. During the space era, only few events with a total energy of more than 1034 erg happened, and probably, only one of these ldquowas directedrdquo to the Earth (August 4, 1972). In this paper, we report on the first attempts to simulate in a laboratory both the initial (at the Sun) and final (near the Earth) stages of relevant interaction processes between the plasma flows and magnetic fields. By using laser-produced plasmas and intense magnetic dipole, we performed two types of simulation experiments: 1) on the interaction of ejected solar plasma flows with/in dipole magnetic field and 2) on the extreme (three fold) compression of the Earth´s magnetopause by giant coronal mass ejections from the Sun. General physical conditions of these phenomena are briefly described, and the developed methods of laboratory simulation and numerical modeling of various explosive processes in collisionless space plasmas are discussed on the basis of relevant dimensionless criteria of the problems.
  • Keywords
    astrophysical plasma; interplanetary magnetic fields; magnetosphere; plasma magnetohydrodynamics; solar activity; solar wind; solar-terrestrial relationships; AD 1972 08 04; dipole magnetic field; ejected solar plasma flows; extreme magnetopause compression; giant coronal mass ejections; giant solar flare; intense magnetic dipole; laser plasma experiments; magnetic fields; magnetospheres; Earth; Extraterrestrial phenomena; Laboratories; Laser theory; Magnetic fields; Magnetosphere; Numerical simulation; Plasma simulation; Solar system; Sun; Laboratory simulation; laser plasma; magnetic fields; magnetosphere; solar and geophysical transient phenomena;
  • fLanguage
    English
  • Journal_Title
    Plasma Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0093-3813
  • Type

    jour

  • DOI
    10.1109/TPS.2007.902633
  • Filename
    4287074