Uploaded September 2024 | Updated September 2026, 2 hours ago
Solar wind is a never-ending stream of charged particles coming from the Sun. Rather than a constant breeze, this wind is rather gusty. As solar wind particles travel through space, they interact with the Sun's variable magnetic field, creating chaotic and fluctuating motion known as turbulence.
This video confirms something long suspected: the turbulent motion of solar wind begins very close to the Sun, inside the solar atmosphere known as the corona. Small disturbances affecting solar wind in the corona are carried outward and expand, generating turbulent flow further out in space.
By blocking out direct light coming from the Sun, the Metis coronagraph instrument on Solar Orbiter (https://www.esa.int/Science_Exploration/Space_Science/Solar_Orbiter) is able to capture the fainter visible and ultraviolet light coming from the solar corona. Its high-resolution images show the detailed structure and movement within the corona, revealing how solar wind motion already becomes turbulent at its roots.
The red-tinted ring in the video shows Metis observations made on 12 October 2022. At the time, the spacecraft was just 43.4 million km from the Sun, less than a third of the Sun–Earth distance. The video of the Sun in the centre of the video was recorded by Solar Orbiter’s Extreme Ultraviolet Imager (EUI) on the same day. (Read more about Solar Orbiter’s instruments here: https://www.esa.int/ESA_Multimedia/Images/2020/01/Solar_Orbiter_Instruments)
“This new analysis provides the first-ever evidence for the onset of fully developed turbulence in the Sun’s corona. Solar Orbiter’s Metis coronagraph was able to detect it very close to the Sun, closer than any spacecraft could approach the Sun and make local measurements,” explains Daniel Müller, ESA’s Solar Orbiter Project Scientist.
Turbulence affects how solar wind is heated, how it moves through the Solar System and how it interacts with the magnetic fields of planets and moons it passes through. Understanding solar wind turbulence is crucial for predicting space weather (https://www.esa.int/Space_Safety/Space_weather) and its effects on Earth.
‘Metis observation of the onset of fully developed turbulence in the solar corona’ by Daniele Telloni et al. was published today in Astrophysical Journal Letters.
Credit: ESA & NASA/Solar Orbiter/Metis & EUI Teams and D. Telloni/INAF
#Sun #SolarOrbiter #ESA
Solar wind is a never-ending stream of charged particles coming from the Sun. Rather than a constant breeze, this wind is rather gusty. As solar wind particles travel through space, they interact with the Sun's variable magnetic field, creating chaotic and fluctuating motion known as turbulence.
This video confirms something long suspected: the turbulent motion of solar wind begins very close to the Sun, inside the solar atmosphere known as the corona. Small disturbances affecting solar wind in the corona are carried outward and expand, generating turbulent flow further out in space.
By blocking out direct light coming from the Sun, the Metis coronagraph instrument on Solar Orbiter (https://www.esa.int/Science_Exploration/Space_Science/Solar_Orbiter) is able to capture the fainter visible and ultraviolet light coming from the solar corona. Its high-resolution images show the detailed structure and movement within the corona, revealing how solar wind motion already becomes turbulent at its roots.
The red-tinted ring in the video shows Metis observations made on 12 October 2022. At the time, the spacecraft was just 43.4 million km from the Sun, less than a third of the Sun–Earth distance. The video of the Sun in the centre of the video was recorded by Solar Orbiter’s Extreme Ultraviolet Imager (EUI) on the same day. (Read more about Solar Orbiter’s instruments here: https://www.esa.int/ESA_Multimedia/Images/2020/01/Solar_Orbiter_Instruments)
“This new analysis provides the first-ever evidence for the onset of fully developed turbulence in the Sun’s corona. Solar Orbiter’s Metis coronagraph was able to detect it very close to the Sun, closer than any spacecraft could approach the Sun and make local measurements,” explains Daniel Müller, ESA’s Solar Orbiter Project Scientist.
Turbulence affects how solar wind is heated, how it moves through the Solar System and how it interacts with the magnetic fields of planets and moons it passes through. Understanding solar wind turbulence is crucial for predicting space weather (https://www.esa.int/Space_Safety/Space_weather) and its effects on Earth.
‘Metis observation of the onset of fully developed turbulence in the solar corona’ by Daniele Telloni et al. was published today in Astrophysical Journal Letters.
Credit: ESA & NASA/Solar Orbiter/Metis & EUI Teams and D. Telloni/INAF
#Sun #SolarOrbiter #ESA
![Jupiter’s Great Red Spot Is Shaking
Jupiter’s iconic Great Red Spot, a storm larger than Earth, has fascinated astronomers for over 150 years. But thanks to NASA’s Hubble Space Telescope, we’re now seeing this legendary storm in a whole new light. Recent observations show that the Great Red Spot is wobbling and fluctuating in size.
Captured in high-resolution images over 90 days, Hubble’s data reveals the storm speeding up, slowing down, and changing shape—surprising even seasoned scientists. The team predicts that the storm will continue to shrink and eventually stabilize, but right now, it’s still full of dynamic surprises.
Discover how these new findings could help us understand extreme weather not just on Jupiter, but on Earth and distant exoplanets too. Watch the video to see Hubble’s latest footage of this mysterious storm!
For more information, visit https://nasa.gov/hubble.
Credit: NASAs Goddard Space Flight Center
Paul Morris: Lead Producer
Music Credit:
“Digital Discovery” by Claude Samard [SACEM], and Universal Production Music.
#Astronomy #Hubble #NASA Jupiter’s Great Red Spot Is Shaking](https://i.ytimg.com/vi/I9oByGVrCSs/mqdefault.jpg)









