
High-energy whirlpoolsĀ speckleĀ the sunās surface.Ā
New telescope images showĀ characteristicĀ swirls of magnetized plasmaĀ acrossĀ aĀ 19-kilometer-wideĀ patch of theĀ sunās surface. The observations, reported August 5 inĀ Nature, are the most detailed taken of the sunĀ to date.Ā The images alsoĀ provide evidence for a type of fluid instability thatĀ might explainĀ the sunās outbursts,Ā such asĀ solarĀ flaresĀ and eruptions.Ā Ā
āThis instability occurs everywhere at the boundaries of solar magnetic elements,āĀ saysĀ astrophysicist David KuridzeĀ ofĀ theĀ National Solar Observatory headquartered in Boulder, Colo.Ā Ā
Solar magnetic elementsĀ are regions of highly magnetized plasma on the sunās surface. There are millions of them, andĀ energyĀ from their magnetized plasmaĀ canĀ be transferred,Ā stabilizedĀ and transformed byĀ swirlingĀ motionsĀ āĀ a phenomenonĀ called theĀ Kelvin-Helmholtz instability.Ā Ā
Kelvin-HelmholtzĀ instability, or KHI,Ā occurs when two fluid layers moveĀ nextĀ to each other at different speeds. A small disruption in the balance of these two forces can causeĀ curling motions that roll up into waves.Ā TheĀ instabilityĀ has beenĀ observedĀ inĀ some ocean waves, clouds, Jupiterās atmosphereĀ and even the sunās atmosphere.Ā Ā
ButĀ itĀ has never been directlyĀ observedĀ onĀ the sunāsĀ surfaceĀ āĀ until now.Ā
TheĀ Daniel K. Inouye Solar TelescopeĀ captured the new images. The telescope,Ā locatedĀ near the summit of the HaleakalÄ volcano in Maui, Hawaii, is theĀ largestĀ solar observatoryĀ in the worldĀ andĀ sports a mirror measuring 4 meters in diameter.Ā It canĀ take images ofĀ the sunās surface at a higher resolution than was previously possible.Ā Ā
The new images show that on theĀ sunās magnetized surface,Ā theĀ Kelvin-HelmholtzĀ instabilityĀ can convertĀ swirlingĀ plasma, which acts as a fluid, into tension that twists the magnetic field. ThatĀ createsĀ energy that can cause a solar explosion.Ā
āDetecting these KHI structures requires resolving [structures] down to the 20-kilometer scale, a level of detail that was simply invisible until now,ā Kuridze says.Ā Ā
ToĀ get such a crisp view, engineers also incorporated anĀ adaptive system that corrects blurring caused by Earthās turbulent atmosphere.Ā This was crucial forĀ fixingĀ distortions that would have otherwise destroyed such fine resolution images, says Leon Ofman, an astrophysicist at the Catholic University of America in Washington, D.C., who was not involved in the study.Ā
Understanding how magnetic structures on the sunās surfaceĀ transfer energy in fluidlike motion couldĀ provideĀ insights into how solar activity develops.Ā Ā
āWe are now beginning to understand that we need to study this process in order to understand all the stages of the transfer of energy from theĀ interior [of theĀ sun], going to the surface ⦠and then affecting us on Earth and beyond,ā OfmanĀ says.Ā


