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HandWiki. Nanoflares. Encyclopedia. Available online: https://encyclopedia.pub/entry/37268 (accessed on 14 September 2026).
HandWiki. Nanoflares. Encyclopedia. Available at: https://encyclopedia.pub/entry/37268. Accessed September 14, 2026.
HandWiki. "Nanoflares" Encyclopedia, https://encyclopedia.pub/entry/37268 (accessed September 14, 2026).
HandWiki. (2022, November 30). Nanoflares. In Encyclopedia. https://encyclopedia.pub/entry/37268
HandWiki. "Nanoflares." Encyclopedia. Web. 30 November, 2022.
Nanoflares
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A nanoflare is a very small episodic heating event which happens in the corona, the external atmosphere of the Sun. The hypothesis of small impulsive heating events as a possible explanation of the coronal heating was first suggested by Thomas Gold and then later developed and dubbed "nanoflares" by Eugene Parker. According to Parker a nanoflare arises from an event of magnetic reconnection which converts the energy stored in the solar magnetic field into the motion of the plasma. The plasma motion (thought as fluid motion) occurs at length-scales so small that it is soon damped by the turbulence and then by the viscosity. In such a way the energy is quickly converted into heat, and conducted by the free electrons along the magnetic field lines closer to the place where the nanoflare switches on. In order to heat a region of very high X-ray emission, over an area 1" x 1", a nanoflare of 1017 J should happen every 20 seconds, and 1000 nanoflares per second should occur in a large active region of 105 x 105 km2. On the basis of this theory, the emission coming from a big flare could be caused by a series of nanoflares, not observable individually. The nanoflare model has long suffered from a lack of observational evidence. Simulations predict that nanoflares produce a faint, hot (~10 MK) component of the emission measure. Unfortunately, current instruments, such as the Extreme-Ultraviolet Imaging Spectrometer on board Hinode, are not adequately sensitive to the range in which this faint emission occurs, making a confident detection impossible. Recent evidence from the EUNIS sounding rocket has provided some spectral evidence for non-flaring plasma at temperatures near 9 MK in active region cores.

solar magnetic field model magnetic reconnection

References

  1. Datlowe, D.W.; Elcan, M. J.; Hudson, H. S. (1974). "OSO-7 observations of solar x-rays in the energy range 10?100 keV". Solar Physics 39 (1): 155–174. doi:10.1007/BF00154978. Bibcode: 1974SoPh...39..155D.  https://dx.doi.org/10.1007%2FBF00154978
  2. Lin, R. P.; Schwartz, R. A.; Kane, S. R.; Pelling, R. M. et al. (1984). "Solar hard X-ray microflares". The Astrophysical Journal 283: 421. doi:10.1086/162321. Bibcode: 1984ApJ...283..421L.  https://dx.doi.org/10.1086%2F162321
  3. Dennis, Brian R. (1985). "Solar hard X-ray bursts". Solar Physics 100 (1–2): 465–490. doi:10.1007/BF00158441. Bibcode: 1985SoPh..100..465D. https://zenodo.org/record/1232391. 
  4. Porter, J. G.; Fontenla, J. M.; Simnett, G. M. (1995). "Simultaneous ultraviolet and X-ray observations of solar microflares". The Astrophysical Journal 438: 472. doi:10.1086/175091. Bibcode: 1995ApJ...438..472P.  https://dx.doi.org/10.1086%2F175091
  5. Hudson; H.S. (1991). "Solar flares, microflares, nanoflares, and coronal heating". Solar Physics 133 (2): 357. doi:10.1007/BF00149894. Bibcode: 1991SoPh..133..357H.  https://dx.doi.org/10.1007%2FBF00149894
  6. Withbroe, G. L.; Noyes, R. W. (1977). "Mass and energy flow in the solar chromosphere and corona". Annual Review of Astronomy and Astrophysics 15: 363–387. doi:10.1146/annurev.aa.15.090177.002051. Bibcode: 1977ARA&A..15..363W.  https://dx.doi.org/10.1146%2Fannurev.aa.15.090177.002051
  7. Priest, Eric (1982). Solar Magneto-hydrodynamics. D.Reidel Publishing Company, Dordrecht, Holland. p. 208. 
  8. Poletto G; Vaiana GS; Zombeck MV; Krieger AS et al. (Sep 1975). "A comparison of coronal X-ray structures of active regions with magnetic fields computed from photospheric observations". Solar Physics 44 (9): 83–99. doi:10.1007/BF00156848. Bibcode: 1975SoPh...44...83P.  https://dx.doi.org/10.1007%2FBF00156848
  9. Rappazzo, A. F.; Velli, M.; Einaudi, G.; Dahlburg, R. B. (2008). "Nonlinear Dynamics of the Parker Scenario for Coronal Heating". The Astrophysical Journal 677 (2): 1348–1366. doi:10.1086/528786. Bibcode: 2008ApJ...677.1348R.  https://dx.doi.org/10.1086%2F528786
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