Published August 1975 | Version v1
Journal article

Energy balance in a magnetically confined coronal structure observed by OSO-7

  • 1. National Aeronautics and Space Administration, Greenbelt, Md. (USA). Goddard Space Flight Center
  • 2. National Center for Atmospheric Research, Boulder, Colo. (USA)
  • 3. American Science and Engineering, Inc., Cambridge, Mass.

Description

A model of a coronal region of enhanced FeXV and FeXVI emission is developed and its energy balance is examined using extreme ultraviolet observations from OSO-7 together with calculations of possible force-free coronal magnetic field configurations. The coronal emissions overlying the photospheric boundary between regions of opposite magnetic polarity are found to be associated with generally non-potential (current-carrying) magnetic fields in the forms of arches with footpoints in regions of opposite polarity. The orientation of these arches relative to the neutral line changes with degree of ionization of the emitting ion (which is inferred from limb observations to be a function of height) and may be evidence of differing electric currents along various field lines. The appearance of a coronal arch, seen side-on, can conveniently be represented by a parabola and a detailed analysis shows this to be a realistic approximation that should be generally useful in analyzing two-dimensional pictures of coronal structures. Applying this analysis to the most prominent coronal region observed in the radiations of FeXV and FeXVI, a maximum is found in the electron temperature, Tsub(e), of 2.6 x 106K at the top of arches whose heights are 20000-40000 km and whose footpoints are separated by approximately 100000 km. A temperature gradient of approximately 5 x 10-5K cm-1 is found in this coronal structure. Radiative losses are typically fifteen times greater than conductive losses and the energy deposition required to maintain the coronal feature is nearly uniformly distributed along its length. (Auth.)

Additional details

Identifiers

Publishing Information

Journal Title
Solar Physics
Journal Volume
43
Journal Issue
2
Series
Sol. Phys.
Journal Page Range
359-376
ISSN
0038-0938

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