All posts tagged: Max Planck Institute for Solar System Research

Small whirlpool-like structures reveal how the Sun stores and releases energy

Small whirlpool-like structures reveal how the Sun stores and releases energy

Scientists using the Inouye Solar Telescope discovered tiny whirlpool-like vortices forming along magnetic boundaries on the Sun’s visible surface. Observations, computer simulations, and theoretical models all identify the same cause: the Kelvin-Helmholtz instability, a phenomenon also seen in ocean waves and cloud formations. The newly observed vortices may twist magnetic fields, redistribute magnetic energy, help heat the Sun’s atmosphere, and improve forecasts of space weather. The Sun’s surface is not smooth. It boils with bright cells of rising plasma, yet along the edges of some magnetic regions, that familiar pattern breaks into tiny swirls and dark, fast-moving stripes. Images from the NSF Daniel K. Inouye Solar Telescope have now exposed those structures at scales near 19 kilometers. The observations offer the first clear view of Kelvin-Helmholtz instability in the solar photosphere, the layer seen as the Sun’s visible surface. The telescope observed an active region near a sunspot on April 14, 2025. Its four-meter mirror and high-resolution imaging system captured magnetic boundaries that looked sharply different from those seen through smaller telescopes. A solar boundary …

Mysterious dust ring beyond Jupiter formed many of our Solar System’s earliest worlds

Mysterious dust ring beyond Jupiter formed many of our Solar System’s earliest worlds

In the young Solar System, a dust trap beyond Jupiter may have built wildly different meteorite parent bodies over two million years. New simulations suggest the same ring-shaped region sorted and recycled material by time, helping explain why carbonaceous chondrites differ so sharply. When Jupiter finished clearing out its neighborhood, it may have done more than carve a gap in the young Solar System. Just beyond that gap, according to new simulations, a ring of dust and gas became one of the most productive nurseries for early planetary building blocks, and one of the most versatile. The new work argues that this region outside Jupiter’s orbit did not produce just one kind of planetesimal. Over roughly two million years, it may have generated several distinct families, each with different mixtures of fine-grained dust and tougher, heat-processed solids. Those differences matter because many meteorites that land on Earth are fragments of these long-lost bodies, preserving a record of how the Solar System assembled itself. Researchers at the Max Planck Institute for Solar System Research in Germany …