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thumb | right | alt=Illustration of a bright plume coming out of a star | Artist's impression of a superflare from EV Lacertae Superflares are very strong explosions observed on stars with energies up to ten thousand times that of typical solar flares. The stars in this class satisfy conditions which should make them solar analogues, and would be expected to be stable over very long time scales. The original nine candidates were detected by a variety of methods. No systematic study was possible until the launch of the Kepler space telescope, which monitored a very large number of solar-type st

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16 sections
Contents
  • Superflare stars
  • Original superflare candidates
  • Kepler discoveries
  • G-type stars
  • K and M type stars
  • Hot Jupiters as an explanation
  • Spectroscopic observations of superflare stars
  • Detecting past superflares on the Sun
  • Nitrate concentrations in polar ice
  • Single events from cosmogenic isotopes
  • Historical records
  • General solar activity in the past
  • Effects of a hypothetical solar superflare
  • Probability of a hypothetical solar superflare
  • See also
  • References

thumb | right | alt=Illustration of a bright plume coming out of a star | Artist's impression of a superflare from EV Lacertae Superflares are very strong explosions observed on stars with energies up to ten thousand times that of typical solar flares. The stars in this class satisfy conditions which should make them solar analogues, and would be expected to be stable over very long time scales. The original nine candidates were detected by a variety of methods. No systematic study was possible until the launch of the Kepler space telescope, which monitored a very large number of solar-type stars with very high accuracy for an extended period. This showed that a small proportion of stars had violent outbursts. In many cases there were multiple events on the same star. Younger stars were more likely to flare than old ones, but strong events were seen on stars as old as the Sun.

The flares were initially explained by postulating giant planets in very close orbits, such that the magnetic fields of the star and planet were linked. The orbit of the planet would warp the field lines until the instability released magnetic field energy as a flare. However, no such planet has shown up as a Kepler transit and this theory has been abandoned.

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