Magnetic Reconnection, Turbulence, and Collisionless Shock

被引:0
|
作者
Hantao Ji
Russell Kulsrud
Masaaki Yamada
机构
[1] Princeton Plasma Physics Laboratory,Center for Magnetic Self
来源
关键词
magnetic reconnection; plasma instability; turbulence; collisionless shock; laboratory experiment;
D O I
暂无
中图分类号
学科分类号
摘要
A short summary of recent progress in measuring and understanding turbulence during magnetic reconnection in laboratory plasmas is given. Magnetic reconnection is considered as a primary process to dissipate magnetic energy in laboratory and astrophysical plasmas. A central question concerns why the observed reconnection rates are much faster than predictions made by classical theories, such as the Sweet–Parker model based on MHD with classical Spitzer resistivity. Often, the local resistivity is conjectured to be enhanced by turbulence to accelerate reconnection rates either in the context of the Sweet–Parker model or by facilitating setup of the Pestchek model. Measurements at a dedicated laboratory experiment, called MRX or Magnetic Reconnection Experiment, have indicated existence of strong electromagnetic turbulence in current sheets undergoing fast reconnection. The origin of the turbulence has been identified as right-hand polarized whistler waves, propagating obliquely to the reconnecting field, with a phase velocity comparable to the relative drift velocity. These waves are consistent with an obliquely propagating electromagnetic lower-hybrid drift instability driven by drift speeds large compared to the Alfven speed in high-beta plasmas. Interestingly, this instability may explain electromagnetic turbulence also observed in collisionless shocks, which are common in energetic astrophysical phenomena.
引用
收藏
页码:219 / 226
页数:7
相关论文
共 50 条
  • [1] Magnetic reconnection, turbulence, and collisionless shock
    Ji, HT
    Kulsrud, R
    Yamada, M
    [J]. ASTROPHYSICS AND SPACE SCIENCE, 2005, 298 (1-2) : 219 - 226
  • [2] The onset of turbulence in collisionless magnetic reconnection
    Rogers, BN
    Drake, JF
    Shay, MA
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2000, 27 (19) : 3157 - 3160
  • [3] Plasmoid-Induced Turbulence in Collisionless Magnetic Reconnection
    Fujimoto, Keizo
    Sydora, Richard D.
    [J]. PHYSICAL REVIEW LETTERS, 2012, 109 (26)
  • [4] Enhanced Energy Conversion by Turbulence in Collisionless Magnetic Reconnection
    Jin, Runqing
    Zhou, Meng
    Yi, Yongyuan
    Man, Hengyan
    Zhong, Zhihong
    Pang, Ye
    Deng, Xiaohua
    [J]. ASTROPHYSICAL JOURNAL, 2024, 965 (01):
  • [5] Disruption of Alfvenic turbulence by magnetic reconnection in a collisionless plasma
    Mallet, Alfred
    Schekochihin, Alexander A.
    Chandran, Benjamin D. G.
    [J]. JOURNAL OF PLASMA PHYSICS, 2017, 83 (06)
  • [6] The link between shocks, turbulence, and magnetic reconnection in collisionless plasmas
    Karimabadi, H.
    Roytershteyn, V.
    Vu, H. X.
    Omelchenko, Y. A.
    Scudder, J.
    Daughton, W.
    Dimmock, A.
    Nykyri, K.
    Wan, M.
    Sibeck, D.
    Tatineni, M.
    Majumdar, A.
    Loring, B.
    Geveci, B.
    [J]. PHYSICS OF PLASMAS, 2014, 21 (06)
  • [7] Collisionless magnetic reconnection
    Califano, F.
    Faganello, M.
    Pegoraro, F.
    [J]. PLASMA PHYSICS AND CONTROLLED FUSION, 2007, 49 (12B) : B439 - B446
  • [8] Collisionless magnetic reconnection
    Porcelli, F
    Califano, F
    Grasso, D
    Ottaviani, M
    Pegoraro, F
    [J]. THEORY OF FUSION PLASMAS, 1999, 18 : 269 - 282
  • [9] Collisionless Reconnection in Magnetohydrodynamic and Kinetic Turbulence
    Loureiro, Nuno F.
    Boldyrev, Stanislav
    [J]. ASTROPHYSICAL JOURNAL, 2017, 850 (02):
  • [10] Role of current sheet instabilities in collisionless magnetic reconnection and plasma turbulence
    Jain, Neeraj
    Buechner, Joerg
    [J]. 2019 URSI ASIA-PACIFIC RADIO SCIENCE CONFERENCE (AP-RASC), 2019,