4.7 Article

SLOW RISE AND PARTIAL ERUPTION OF A DOUBLE-DECKER FILAMENT. I. OBSERVATIONS AND INTERPRETATION

期刊

ASTROPHYSICAL JOURNAL
卷 756, 期 1, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/756/1/59

关键词

Sun: coronal mass ejections (CMEs); Sun: filaments, prominences; Sun: flares

资金

  1. Thousand Young Talents Program of China
  2. NSFC [41131065, 41121003]
  3. 973 key project [2011CB811403]
  4. CAS Key Research Program [KZZD-EW-01-4]
  5. fundamental research funds for the central universities [WK2080000031]
  6. NASA [NNX08-AJ23G, NNX08-AQ90G]
  7. NSF [ATM-0849453, ATM-0819662]
  8. DFG
  9. STFC
  10. NASA's HTP program
  11. NASA's LWS program
  12. NASA's SRT program
  13. CISM (an NSF Science and Technology Center)
  14. Key Laboratory of Solar Activity, National Astronomical Observatories of Chinese Academy of Sciences [KLSA201201]
  15. STFC [ST/H00260X/1] Funding Source: UKRI
  16. Science and Technology Facilities Council [ST/H00260X/1] Funding Source: researchfish
  17. Div Atmospheric & Geospace Sciences
  18. Directorate For Geosciences [0839216] Funding Source: National Science Foundation
  19. Div Atmospheric & Geospace Sciences
  20. Directorate For Geosciences [1153226] Funding Source: National Science Foundation

向作者/读者索取更多资源

We study an active-region dextral filament that was composed of two branches separated in height by about 13 Mm, as inferred from three-dimensional reconstruction by combining SDO and STEREO-B observations. This double-decker configuration sustained for days before the upper branch erupted with a GOES-class M1.0 flare on 2010 August 7. Analyzing this evolution, we obtain the following main results. (1) During the hours before the eruption, filament threads within the lower branch were observed to intermittently brighten up, lift upward, and then merge with the upper branch. The merging process contributed magnetic flux and current to the upper branch, resulting in its quasi-static ascent. (2) This transfer might serve as the key mechanism for the upper branch to lose equilibrium by reaching the limiting flux that can be stably held down by the overlying field or by reaching the threshold of the torus instability. (3) The erupting branch first straightened from a reverse S shape that followed the polarity inversion line and then writhed into a forward S shape. This shows a transfer of left-handed helicity in a sequence of writhe-twist-writhe. The fact that the initial writhe is converted into the twist of the flux rope excludes the helical kink instability as the trigger process of the eruption, but supports the occurrence of the instability in the main phase, which is indeed indicated by the very strong writhing motion. (4) A hard X-ray sigmoid, likely of coronal origin, formed in the gap between the two original filament branches in the impulsive phase of the associated flare. This supports a model of transient sigmoids forming in the vertical flare current sheet. (5) Left-handed magnetic helicity is inferred for both branches of the dextral filament. (6) Two types of force-free magnetic configurations are compatible with the data, a double flux rope equilibrium and a single flux rope situated above a loop arcade.

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