4.6 Article

Sunspot Light Walls Suppressed by Nearby Brightenings

期刊

ASTROPHYSICAL JOURNAL LETTERS
卷 843, 期 1, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.3847/2041-8213/aa7b2c

关键词

Sun: chromosphere; Sun: photosphere; Sun: UV radiation; sunspots

资金

  1. ESA
  2. Norwegian Space Centre
  3. National Natural Science Foundations of China [11673035, 11533008, 11373004]
  4. Youth Innovation Promotion Association of CAS [2014043]
  5. STFC (UK)
  6. Royal Society
  7. Chinese Academy of Sciences Presidents International Fellowship Initiative [2016VMA045]
  8. National Postdoctoral Program for Innovative Talents [BX201600159]
  9. STFC [ST/M000826/1, ST/J001430/1] Funding Source: UKRI
  10. Science and Technology Facilities Council [ST/M000826/1, ST/J001430/1] Funding Source: researchfish

向作者/读者索取更多资源

Light walls, as ensembles of oscillating bright structures rooted in sunspot light bridges, have not been well studied, although they are important for understanding sunspot properties. Using the Interface Region Imaging Spectrograph and Solar Dynamics Observatory observations, here we study the evolution of two oscillating light walls each within its own active region (AR). The emission of each light wall decays greatly after the appearance of adjacent brightenings. For the first light wall, rooted within AR 12565, the average height, amplitude, and oscillation period significantly decrease from 3.5 Mm, 1.7 Mm, and 8.5 minutes to 1.6 Mm, 0.4 Mm, and 3.0 minutes, respectively. For the second light wall, rooted within AR 12597, the mean height, amplitude, and oscillation period of the light wall decrease from 2.1 Mm, 0.5 Mm, and 3.0 minutes to 1.5 Mm, 0.2 Mm, and 2.1 minutes, respectively. Particularly, a part of the second light wall even becomes invisible after the influence of a nearby brightening. These results reveal that the light walls are suppressed by nearby brightenings. Considering the complex magnetic topology in light bridges, we conjecture that the fading of light walls may be caused by a drop in the magnetic pressure, where the flux is canceled by magnetic reconnection at the site of the nearby brightening. Another hypothesis is that the wall fading is due to the suppression of driver source (p-mode oscillation), resulting from the nearby avalanche of downward particles along reconnected brightening loops.

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