Tag: photo

  • Big Mystery: Jupiter Loses a Stripe

    Lost: A giant belt of brown clouds big enough to swallow Earth twenty times over. If found, please return to Jupiter. In a development that has transformed the appearance of the solar system’s largest planet, one of Jupiter’s two main cloud belts has completely disappeared.

    “This is a big event,” says planetary scientist Glenn Orton of NASA’s Jet Propulsion Lab. “We’re monitoring the situation closely and do not yet fully understand what’s going on.”

    These side by side images of Jupiter taken by Australian astrophotographer Anthony Wesley show the SEB in August 2009, but not in May 2010. Credit: Anthony Wesley

    Known as the South Equatorial Belt (SEB), the brown cloudy band is twice as wide as Earth and more than twenty times as long. The loss of such an enormous “stripe” can be seen with ease halfway across the solar system.

    “In any size telescope, or even in large binoculars, Jupiter’s signature appearance has always included two broad equatorial belts,” says amateur astronomer Anthony Wesley of Australia. “I remember as a child seeing them through my small backyard refractor and it was unmistakable. Anyone who turns their telescope on Jupiter at the moment, however, will see a planet with only one belt–a very strange sight.”

    Wesley is a veteran observer of Jupiter, famous for his discovery of a comet hitting the planet in 2009. Like many other astronomers, he noticed the belt fading late last year, “but I certainly didn’t expect to see it completely disappear,” he says. “Jupiter continues to surprise.”

    Orton thinks the belt is not actually gone, but may be just hiding underneath some higher clouds.

    “It’s possible,” he hypothesizes, “that some ‘ammonia cirrus’ has formed on top of the SEB, hiding the SEB from view.” On Earth, white wispy cirrus clouds are made of ice crystals. On Jupiter, the same sort of clouds can form, but the crystals are made of ammonia (NH3) instead of water (H20).

    What would trigger such a broad outbreak of “ammonia cirrus”? Orton suspects that changes in global wind patterns have brought ammonia-rich material into the clear, cold zone above the SEB, setting the stage for formation of the high-altitude, icy clouds.

    “I’d love to send a probe in there to find out what’s really going on.”

    Without the SEB present, Jupiter’s Great Red Spot is surrounded by almost uninterrupted white. Anthony Wesley took this picture on May 18, 2010. Credit: Anthony Wesley

    Indeed, Jupiter’s atmosphere is a mysterious place which would benefit from exploration. No one knows, for instance, why the Great Red Spot is red—or what has sustained the raging storm for so many years. Neither does theory explain why the twin equatorial belts are brown, nor why one should vanish while the other remains. “We have a long list of questions,” says Orton.

    This isn’t the first time the SEB has faded out.

    “The SEB fades at irregular intervals, most recently in 1973-75, 1989-90, 1993, 2007, 2010,” says John Rogers, director of the British Astronomical Association’s Jupiter Section. “The 2007 fading was terminated rather early, but in the other years the SEB was almost absent, as at present.”

    The return of the SEB can be dramatic.

    “We can look forward to a spectacular outburst of storms and vortices when the ‘SEB Revival’ begins,” says Rogers. “It always begins at a single point, and a disturbance spreads out rapidly around the planet from there, often becoming spectacular even for amateurs eyeballing the planet through medium-sized telescopes. However we can’t predict when or where it will start. On historical precedent it could be any time in the next 2 years. We hope it will be in the next few months so that everyone can get a good view.

    “I’ll be watching every chance I get,” says Wesley. “The revival will likely be sudden and dramatic, with planet-circling groups of storms appearing over the space of just a week or so.”

    Indeed, says Orton, “anyone could be the first to spot the return of the SEB.”

    via spacefellowship.com

  • Astronomy Picture of the Day | Hubble Observes the Large Magellanic Cloud

    The massive, young stellar grouping, called R136, is only a few million years old and resides in the 30 Doradus Nebula, a turbulent star-birth region in the Large Magellanic Cloud (LMC), a satellite galaxy of our Milky Way. Many of the stars are among the most massive known. Several of them are over 100 times more massive than our Sun. These hefty stars are destined to become supernovae in a few million years.

    Hubble Observes the Large Magellanic Cloud’s Star-Forming Region, 30 Doradus. Credit: NASA, ESA, and F. Paresce (INAF-IASF, Bologna, Italy)

    via spacefellowship.com

    The image, taken by Hubble’s Wide Field Camera 3, spans about 100 light-years. The nebula is close enough to Earth that Hubble can resolve individual stars, giving astronomers important information about the stars’ birth and evolution.

    The brilliant stars are carving deep cavities in the surrounding material by unleashing a torrent of ultraviolet light, and hurricane-force stellar winds (streams of charged particles), which are etching away the enveloping hydrogen gas cloud in which the stars were born. The image reveals a fantasy landscape of pillars, ridges, and valleys, as well as a dark region in the center that roughly looks like the outline of a holiday tree. Besides sculpting the gaseous terrain, the brilliant stars can also help create a successive generation of offspring. When the winds hit dense walls of gas, they create shocks, which may be generating a new wave of star birth.

    The movement of the LMC around the Milky Way may have triggered the massive cluster’s formation in several ways. The gravitational tug of the Milky Way and the companion Small Magellanic Cloud may have compressed gas in the LMC. Also, the pressure resulting from the LMC plowing through the Milky Way’s halo may have compressed gas in the satellite. The cluster is a rare, nearby example of the many super star clusters that formed in the distant, early universe, when star birth and galaxy interactions were more frequent. Previous Hubble observations have shown astronomers that super star clusters in faraway galaxies are ubiquitous. The LMC is located 170,000 light-years away and is a member of the Local Group of Galaxies, which also includes the Milky Way.

    The Hubble image was taken at infrared wavelengths (1.1 microns and 1.6 microns). Hubble sees through the dusty nebula, revealing many stars that cannot be seen in visible light. The large bright star just above the center of the image is in the 30 Doradus nebula. The Hubble observations of 30 Doradus were made October 20-27, 2009.

    Posted via web from Monicks: Unleashed

  • Hubble Pictures of the Week

    IC4634’s Glowing Waves

    This striking Hubble image of the planetary nebula IC 4634 reveals two shining, S-shaped ejections from a dying star. This star, awash in glowing material at the centre of the picture, bloated as it aged and launched its outer layers off into space. The star’s very hot, exposed core has since beamed intense ultraviolet radiation at these lost shells of gas, making them glow in rich colours.

    This process has been far from orderly or calm, however, as revealed by the distinct, separate waves of thrown-off gases. One is more distant and therefore was spewed first, followed by a more recently ejected tide of matter that formed the tighter S-shape. The result is remarkably symmetric on each side of the central star.

    The NASA/ESA Hubble Space Telescope’s Wide Field Planetary Camera 2 (WFPC2) captured this image of IC 4634, which is found more than about 7500 light-years away in the constellation of Ophiuchus (the Serpent Holder). IC 4634 and other objects like it are known as planetary nebulae due to their appearance through early telescopes as rounded, faintly luminous discs similar to the distant planets Uranus and Neptune. The picture was created from images through five different filters (F487N, F502N, F574M, F656N and F658N) that captured light emitted by different elements in the gaseous features. The total aggregate exposure time was 4000 seconds and the field of view is just 29 arcseconds across.

    A Clump of Galaxy Misfits

    That galaxies come in very different shapes and sizes is dramatically demonstrated by this striking Hubble image of the Hickson Compact Group 59. Named by astronomer Paul Hickson in 1982, this is the 59th such collection of galaxies in his catalogue of unusually close groups. What makes this image interesting is the variety on display. There are two large spiral galaxies, one face-on with smooth arms and delicate dust tendrils, and one highly inclined, as well as a strangely disorderly galaxy featuring clumps of blue young stars. We can also see many apparently smaller, probably more distant, galaxies visible in the background. Hickson groups display many peculiarities, often emitting in the radio and infrared and featuring active star-forming regions. In addition their galaxies frequently contain Active Galactic Nuclei powered by supermassive black holes, as well large quantities of dark matter.

    The NASA/ESA Hubble Space Telescope’s Advanced Camera for Surveys, using the Wide Field Channel, captured this image of HCG059 in 2007. The picture was created from images taken through blue, yellow and near-infrared filters (F435W, F606W and F814W). The total exposure times per filter were 57 minutes, 41 minutes and 35 minutes respectively. The field of view is about 3.4 arcminutes across.

    Credit: ESA/Hubble and NASA

    Posted via web from Monicks: Unleashed