Structures of Interplanetary Magnetic Flux Ropes and Comparison with Their Solar Sources
arXiv:1408.1470 · doi:10.1088/0004-637X/793/1/53
Abstract
Magnetic reconnection is essential to release the flux rope during its ejection. The question remains: how does the magnetic reconnection change the flux rope structure? Following the original study of \citet{Qiu2007}, we compare properties of ICME/MC flux ropes measured at 1 AU and properties of associated solar progenitors including flares, filaments, and CMEs. In particular, the magnetic field-line twist distribution within interplanetary magnetic flux ropes is systematically derived and examined. Our analysis shows that for most of these events, the amount of twisted flux per AU in MCs is comparable with the total reconnection flux on the Sun, and the sign of the MC helicity is consistent with the sign of helicity of the solar source region judged from the geometry of post-flare loops. Remarkably, we find that about one half of the 18 magnetic flux ropes, most of them being associated with erupting filaments, have a nearly uniform and relatively low twist distribution from the axis to the edge, and the majority of the other flux ropes exhibit very high twist near the axis, of up to turns per AU, which decreases toward the edge. The flux ropes are therefore not linear force free. We also conduct detailed case studies showing the contrast of two events with distinct twist distribution in MCs as well as different flare and dimming characteristics in solar source regions, and discuss how reconnection geometry reflected in flare morphology may be related to the structure of the flux rope formed on the Sun.
to appear in ApJ
References in corpus (1)
Cited by in corpus (12)
- On the twists of interplanetary magnetic flux ropes observed at 1 AU
- Magnetohydrodynamic Simulation of the X2.2 Solar Flare on 2011 February 15: II. Dynamics Connecting the Solar Flare and the Coronal Mass Ejection
- Elongation of Flare Ribbons
- 3D magnetic reconnection and its application to solar flares
- Flux-Rope Twist in Eruptive Flares and CMEs: due to Zipper and Main-Phase Reconnection
- Heliospheric Evolution of Magnetic Clouds
- Evolution of Magnetic Helicity During Eruptive Flares and Coronal Mass Ejections
- A Helicity-Based Method to Infer the CME Magnetic Field Magnitude in Sun and Geospace: Generalization and Extension to Sun-Like and M-Dwarf Stars and Implications for Exoplanet Habitability
- Comparison of magnetic properties in a magnetic cloud and its solar source on April 11-14 2013
- Relationship between the Magnetic Flux of Solar Eruptions and the Ap Index of Geomagnetic Storms
- The Grad-Shafranov Reconstruction of Toroidal Magnetic Flux Ropes: Method Development and Benchmark Studies
- The Grad-Shafranov Reconstruction of Toroidal Magnetic Flux Ropes: First Applications