Theory and Modeling for the Magnetospheric Multiscale Mission

被引:0
作者
M. Hesse
N. Aunai
J. Birn
P. Cassak
R. E. Denton
J. F. Drake
T. Gombosi
M. Hoshino
W. Matthaeus
D. Sibeck
S. Zenitani
机构
[1] NASA Goddard Space Flight Center,
[2] Institute for Research in Astrophysics and Planetology,undefined
[3] Space Science Institute,undefined
[4] West Virginia University,undefined
[5] Dartmouth College,undefined
[6] University of Maryland,undefined
[7] University of Michigan,undefined
[8] University of Tokyo,undefined
[9] University of Delaware,undefined
[10] National Astronomical Observatory of Japan,undefined
来源
Space Science Reviews | 2016年 / 199卷
关键词
Magnetic reconnection; Magnetospheric multiscale; Particle acceleration; Dissipation; Turbulence; Plasma theory;
D O I
暂无
中图分类号
学科分类号
摘要
The Magnetospheric Multiscale (MMS) mission will provide measurement capabilities, which will exceed those of earlier and even contemporary missions by orders of magnitude. MMS will, for the first time, be able to measure directly and with sufficient resolution key features of the magnetic reconnection process, down to the critical electron scales, which need to be resolved to understand how reconnection works. Owing to the complexity and extremely high spatial resolution required, no prior measurements exist, which could be employed to guide the definition of measurement requirements, and consequently set essential parameters for mission planning and execution. Insight into expected details of the reconnection process could hence only been obtained from theory and modern kinetic modeling. This situation was recognized early on by MMS leadership, which supported the formation of a fully integrated Theory and Modeling Team (TMT). The TMT participated in all aspects of mission planning, from the proposal stage to individual aspects of instrument performance characteristics. It provided and continues to provide to the mission the latest insights regarding the kinetic physics of magnetic reconnection, as well as associated particle acceleration and turbulence, assuring that, to the best of modern knowledge, the mission is prepared to resolve the inner workings of the magnetic reconnection process. The present paper provides a summary of key recent results or reconnection research by TMT members.
引用
收藏
页码:577 / 630
页数:53
相关论文
共 427 条
  • [1] Antiochos S.K.(1999)A model for solar coronal mass ejections Astrophys. J. 510 485-1210
  • [2] DeVore C.R.(1978)Field-line merging and slippage Geophys. Res. Lett. 5 465-23
  • [3] Klimchuk J.A.(2013)Electron nongyrotropy in the context of collisionless magnetic reconnection Phys. Plasmas 20 799-85
  • [4] Atkinson G.(2011)A nanoflare explanation for the heating of coronal loops observed by Yohkoh J. Geophys. Res. 478 1583-964
  • [5] Aunai N.(2012)A comparison of analytical and numerical models for steadily driven magnetic reconnection Space Sci. Rev. 25 869-1716
  • [6] Hesse M.(2013)Evidence for a flux transfer event generated by multiple X-line reconnection at the magnetopause J. Geophys. Res. 22 16101-907
  • [7] Kuznetsova M.(2006)Hybrid simulations of collisionless ion tearing J. Geophys. Res. 37 1207-222
  • [8] Birn J.(1997)The structure of the electron outflow jet in collisionless magnetic reconnection Astrophys. J. 20 3-222
  • [9] Nakamura R.(2003)The diffusion region in collisionless magnetic reconnection J. Geophys. Res. 15 2852-3762
  • [10] Panov E.V.(2008)Self-consistent calculation of the motion of a sheet of ions in the magnetosphere J. Geophys. Res. 160 L35-541