Showing posts with label storms. Show all posts
Showing posts with label storms. Show all posts

Wednesday, November 12, 2014

Astronomers thrilled by extreme storms on Uranus

These are infrared images of Uranus (1.6 and 2.2 microns) obtained on Aug. 6, 2014, with adaptive optics on the 10-meter Keck telescope. 

The white spot is an extremely large storm that was brighter than any feature ever recorded on the planet in the 2.2 micron band. 

The cloud rotating into view at the lower-right limb grew into the large storm that was seen by amateur astronomers at visible wavelengths. 

Credit: Imke de Pater (UC Berkeley) & Keck Observatory images.

The normally bland face of Uranus has become increasingly stormy, with enormous cloud systems so bright that for the first time ever, amateur astronomers are able to see details in the planet's hazy blue-green atmosphere.

Imke de Pater
"The weather on Uranus is incredibly active," said Imke de Pater, professor and chair of astronomy at the University of California, Berkeley, and leader of the team that first noticed the activity when observing the planet with adaptive optics on the W. M. Keck II Telescope in Hawaii.

"This type of activity would have been expected in 2007, when Uranus's once every 42-year equinox occurred and the sun shined directly on the equator," noted co-investigator Heidi Hammel of the Association of Universities for Research in Astronomy.

"But we predicted that such activity would have died down by now. Why we see these incredible storms now is beyond anybody's guess."

Heidi Hammel
In all, de Pater, Hammel and their team detected eight large storms on Uranus's northern hemisphere when observing the planet with the Keck Telescope on August 5 and 6.

One was the brightest storm ever seen on Uranus at 2.2 microns, a wavelength that senses clouds just below the tropopause, where the pressure ranges from about 300 to 500 mbar, or half the pressure at Earth's surface.

The storm accounted for 30 percent of all light reflected by the rest of the planet at this wavelength.

When amateur astronomers heard about the activity, they turned their telescopes on the planet and were amazed to see a bright blotch on the surface of a normally boring blue dot.

'I got it!'

French amateur astronomer Marc Delcroix processed the amateur images and confirmed the discovery of a bright spot on an image by French amateur Régis De-Bénedictis, then in others taken by fellow amateurs in September and October.

He had his own chance on Oct. 3 and 4 to photograph it with the Pic du Midi one-meter telescope, where on the second night, "I caught the feature when it was transiting, and I thought, 'Yes, I got it!'" said Delcroix.

"I was thrilled to see such activity on Uranus. Getting details on Mars, Jupiter or Saturn is now routine, but seeing details on Uranus and Neptune are the new frontiers for us amateurs and I did not want to miss that," said Delcroix, who works for an auto parts supplier in Toulouse and has been observing the skies, Jupiter in particular, with his backyard telescope since 2006 and, since 2012, occasionally with the Pic du Midi telescope.

"I was so happy to confirm myself these first amateur images on this bright storm on Uranus, feeling I was living a very special moment for planetary amateur astronomy."

These are optical images of Uranus on Sept. 19 and Oct. 2, showing the dramatic appearance of a bright storm on a planet that normally displays only a diffuse bright polar region. 

Credit: Photo by Anthony Wesley, Murrumbateman, Australia.

Interestingly, the extremely bright storm seen by Keck in the near infrared is not the one seen by the amateurs, which is much deeper in the atmosphere than the one that initially caused all the excitement. De Pater's colleague Larry Sromovsky, a planetary scientist at the University of Wisconsin, Madison, identified the amateur spot as one of the few features on the Keck images from August 5 that was only seen at 1.6 microns, and not at 2.2 microns.

The 1.6 micron light is emitted from deeper in the atmosphere, which means that this feature is below the uppermost cloud layer of methane-ice in Uranus's atmosphere.

"The colours and morphology of this cloud complex suggests that the storm may be tied to a vortex in the deeper atmosphere similar to two large cloud complexes seen during the equinox," Sromovsky said.

Such vortices could be anchored much deeper in the atmosphere and extend over large vertical distances, as inferred from similar vortices on Jupiter, including its Great Red Spot.

An expanded team of astronomers led by Kunio M. Sayanagi, an Assistant Professor at Hampton University in Virginia, leveraged the amateur observations to activate a "Target of Opportunity" proposal on the Hubble Space Telescope, which imaged the entire planet on Oct. 14.

Observing at a variety of wavelengths, HST revealed multiple storm components extending over a distance of more than 9,000 kilometers (5,760 miles) and clouds at a variety of altitudes.

De Pater, Sromovsky, Hammel and Pat Fry of the University of Wisconsin will report the details of their observations on Nov. 12 at a meeting of the American Astronomical Society's Division of Planetary Sciences in Tucson, Ariz.

Ice giant

This is an animation showing the movement of the bright spot as Uranus rotated over a two hour period on Oct. 4, 2014. 

The infrared images were taken at the Pic du Midi telescope in the French Pyrénées. 

Credit: Marc Delcroix and F. Colas (S2P).

Uranus is an ice giant, about four times the diameter of Earth, with an atmosphere of hydrogen and helium, with just a bit of methane to give it a blue tint.

Because it is so distant, 30 times farther from the sun than Earth, astronomers were able to see little detail on its surface until adaptive optics on the Keck telescopes revealed features much like those on Jupiter.

De Pater and her colleagues have been following Uranus for more than a decade, charting the weather on the planet, including bands of circulating clouds, massive swirling storms and convective features at its north pole.

Bright clouds are probably caused by gases such as methane rising in the atmosphere and condensing into highly reflective clouds of methane ice.

Because Uranus has no internal source of heat, its atmospheric activity was thought to be driven solely by sunlight, which is now weak in the northern hemisphere. Hence astronomers were surprised when these observations showed such intense activity.

Observations taken with the Keck telescope by Christoph Baranec, an Assistant Professor at the University of Hawaii on Manoa, revealed that the storm was still active, but had a different morphology and possibly reduced intensity.

"If indeed these features are high-altitude clouds generated by flow perturbations associated with a deeper vortex system, such drastic fluctuations in intensity would indeed be possible," Sromovsky added.

"These unexpected observations remind us keenly of how little we understand about atmospheric dynamics in outer planet atmospheres," the authors wrote in their paper.

Wednesday, March 26, 2014

New storms on Jupiter look like Mickey Mouse

A full view of Jupiter on February 25, 2014 showing several features including three storms that in combination look like Mickey Mouse. 

Credit: Damian Peach

We told you this was going to be a good season to observe Jupiter, and astro-photographers in the northern hemisphere have been making the most of this time of opposition where Jupiter has been riding high in the sky.

What we didn't know was that there was going to be a familiar face staring back at us.

A combination of three storms has been noted throughout this Jupiter observing season for its resemblance to Mickey Mouse's face (at least in outline).

Damian has also put together a stunning movie (below) showing about three hours of rotation of the king of the planets.


Damian explained the Mickey Mouse storms are two anticyclones (high pressure regions) that form the ears while a longer elongated cyclone (low pressure) forms the face.

The abundance of storms on Jupiter are a result of the planet's dense atmosphere of hydrogen and helium and large gravitational field. Storms on this planet are likely the strongest in the Solar System.

Jupiter reached its most northern point for 2014 at a declination of +23.3 degrees on March 11, but it's still easily visible since it is the brightest starlike object in the evening sky.

Jupiter’s Great Red Spot and the ‘Mickey Mouse’ storms on February 25, 2014. 

Credit: Damian Peach.

Thursday, April 12, 2012

ESO UK Astronomers Discover Sandstorms in Space

Astronomers have discovered sandstorms in space, according to a report published in the Nature journal.

Astronomers from the University of Sydney and the University of Manchester have discovered sandstorms in space while observing three red giant stars.

They have used one of the powerful telescopes in European Southern Observatory in Northern Chile to observe the stars.

The study revealed that super strong sand storms were responsible for removing massive amounts of dust grains around the red stars and the existence of dust grains of nearly a millionth of a metre across, big enough to be pushed out by dying stars' light, according to BBC report.

"The winds that stream from the upper atmosphere of the red giant stars are responsible for removing massive amounts of matter," said Barnaby Norris, researcher at the University of Sydney, in a statement.

According to the astronomers, star grains themselves are transparent like powdered glass, but so incredibly fine so as to appear like smoke.

These grains contain majority of the chemical elements critical to the formation of earth-like planets and life come from the winds driven from dying red giant stars.

They claim that Earth and everybody living on it are probably made of the stardust.

The ultimate fate of the star itself can hinge upon the efficiency of the wind. The mass removed by the wind can bring a somewhat heavier star below the critical threshold required to fuel a cataclysmic supernova explosion, defusing the bomb and allowing it to fade away as a white dwarf star.

Researchers claim that this new discovery will give more information about the red giant stars death and it will give us more information on how these old, dying stars manage to drive such powerful winds.

"The grains that we have discovered here will come as a real shock to the accepted wisdom in the field. They are both much larger and much closer to the stellar surface than anyone expected," said Norris.

"Hopefully our findings will help to illuminate a key step in the grand cycle as matter is expelled from stars into the galaxy only to seed new generations of stellar and planetary birth," he concluded.

Wednesday, May 12, 2010

A Great Image of the awesome prower of Lightning: MIKE HOLLINGSHEAD

Spectacular shot of the North Omaha Tower being 'struck' by lightning. In fact, those bolts are going upwards, off the towers.

Masts and aerials are a common target in lightning storms and this group were 'struck' at least five times in 15 minutes.

The second picture shows more lightning strikes at the North Omaha tower.

You can see more of Mike's work on his website

Credit Picture: MIKE HOLLINGSHEAD / SOLENT

Monday, August 24, 2009

Lightning Jets and Sprites


The ancient Greeks might have thought Zeus was furious with heaven itself. The power of lightning strikes and Sprites, that shoot upwards from storm clouds has been measured for the first time – and they turn out to be every bit as powerful as normal lightning.

First caught on camera in 2003, "gigantic jets" shoot upwards from thunderclouds and can reach altitudes above 80 kilometres. But it wasn't until 21 July last year that Steven Cummer at Duke University in Durham, North Carolina, and his colleagues managed to measure the electrical discharge from a single gigantic jet, released from tropical storm Cristobal.

"No one had been very close to one with the right radio instrumentation before," Cummer says. "So we didn't know whether they just petered out without doing anything much, or whether they actually took some charge and dumped it somewhere."