lundi 29 avril 2013

Cassini Probe Gets Close Views of Large Saturn Hurricane












NASA / ESA - Cassini Mission to Saturn patch.

April 29, 2013

 Mysterious Hurricane at Saturn's North Pole

Video above: Narrated video about a hurricane-like storm seen at Saturn's north pole by NASA's Cassini spacecraft.

Cassini spacecraft has provided scientists the first close-up, visible-light views of a behemoth hurricane swirling around Saturn's north pole.

In high-resolution pictures and video, scientists see the hurricane's eye is about 1,250 miles (2,000 kilometers) wide, 20 times larger than the average hurricane eye on Earth. Thin, bright clouds at the outer edge of the hurricane are traveling 330 mph(150 meters per second). The hurricane swirls inside a large, mysterious, six-sided weather pattern known as the hexagon.

"We did a double take when we saw this vortex because it looks so much like a hurricane on Earth," said Andrew Ingersoll, a Cassini imaging team member at the California Institute of Technology in Pasadena. "But there it is at Saturn, on a much larger scale, and it is somehow getting by on the small amounts of water vapor in Saturn's hydrogen atmosphere."


Image above: The spinning vortex of Saturn's north polar storm resembles a deep red rose of giant proportions surrounded by green foliage in this false-color image from NASA's Cassini spacecraft. Image credit: NASA/JPL-Caltech/SSI.

Scientists will be studying the hurricane to gain insight into hurricanes on Earth, which feed off warm ocean water. Although there is no body of water close to these clouds high in Saturn's atmosphere, learning how these Saturnian storms use water vapor could tell scientists more about how terrestrial hurricanes are generated and sustained.

Both a terrestrial hurricane and Saturn's north polar vortex have a central eye with no clouds or very low clouds. Other similar features include high clouds forming an eye wall, other high clouds spiraling around the eye, and a counter-clockwise spin in the northern hemisphere.

A major difference between the hurricanes is that the one on Saturn is much bigger than its counterparts on Earth and spins surprisingly fast. At Saturn, the wind in the eye wall blows more than four times faster than hurricane-force winds on Earth. Unlike terrestrial hurricanes, which tend to move, the Saturnian hurricane is locked onto the planet's north pole. On Earth, hurricanes tend to drift northward because of the forces acting on the fast swirls of wind as the planet rotates. The one on Saturn does not drift and is already as far north as it can be.


Image above: The north pole of Saturn, in the fresh light of spring, is revealed in this color image from NASA's Cassini spacecraft. Image credit: NASA/JPL-Caltech/SSI.

"The polar hurricane has nowhere else to go, and that's likely why it's stuck at the pole," said Kunio Sayanagi, a Cassini imaging team associate at Hampton University in Hampton, Va.

Scientists believe the massive storm has been churning for years. When Cassini arrived in the Saturn system in 2004, Saturn's north pole was dark because the planet was in the middle of its north polar winter. During that time, the Cassini spacecraft's composite infrared spectrometer and visual and infrared mapping spectrometer detected a great vortex, but a visible-light view had to wait for the passing of the equinox in August 2009. Only then did sunlight begin flooding Saturn's northern hemisphere. The view required a change in the angle of Cassini's orbits around Saturn so the spacecraft could see the poles.

"Such a stunning and mesmerizing view of the hurricane-like storm at the north pole is only possible because Cassini is on a sportier course, with orbits tilted to loop the spacecraft above and below Saturn's equatorial plane," said Scott Edgington, Cassini deputy project scientist at NASA's Jet Propulsion Laboratory in Pasadena, Calif. "You cannot see the polar regions very well from an equatorial orbit. Observing the planet from different vantage points reveals more about the cloud layers that cover the entirety of the planet."


Image above: This spectacular, vertigo inducing, false-color image from NASA's Cassini mission highlights the storms at Saturn's north pole. Image credit: NASA/JPL-Caltech/SSI.

Cassini changes its orbital inclination for such an observing campaign only once every few years. Because the spacecraft uses flybys of Saturn's moon Titan to change the angle of its orbit, the inclined trajectories require attentive oversight from navigators. The path requires careful planning years in advance and sticking very precisely to the planned itinerary to ensure enough propellant is available for the spacecraft to reach future planned orbits and encounters.

A Saturn Hurricane

The Cassini-Huygens mission is a cooperative project of NASA, the European Space Agency and the Italian Space Agency. JPL, a division of the California Institute of Technology, Pasadena, manages the Cassini-Huygens mission for NASA's Science Mission Directorate in Washington. The Cassini orbiter and its two onboard cameras were designed, developed and assembled at JPL. The imaging team consists of scientists from the United States, the United Kingdom, France and Germany. The imaging operations center is based at the Space Science Institute in Boulder, Colo.

For more information about Cassini and its mission, visit: http://www.nasa.gov/cassini and http://saturn.jpl.nasa.gov and http://www.esa.int/Our_Activities/Space_Science/Cassini-Huygens

Images (mentioned), Videos, Text, Credits: ESA / NASA / Dwayne Brown / JPL / Jia-Rui Cook.

Best regards, Orbiter.ch

vendredi 26 avril 2013

China launches high-definition earth observation satellite














CASC - China Aerospace Science and Technology Corporation logo / EXA - NEE 01 Pegaso patch.

April 26, 2013

It is also the 19th launch of a Long March-2D, and the 175th of the Long March rocket series.

Long March-2D launch

China successfully sent high-definition earth observation satellite "Gaofen-1" into space at 12:13 p.m. Beijing time on Friday, announced the State Administration of Science, Technology and Industry for National Defence (SASTIND).

Launch of Gaofen-1 & other secondary payloads on Long March-2D

The mission was carried by a Long March-2D carrier rocket from northwest China's Jiuquan Satellite Launch Center. The rocket also carried three small satellites made by Ecuador, Argentina and Turkey as well as two satellite splitters from the Netherlands.

Launched together with Gaofen-1 were three small CubeSats: NEE-01 Pegaso, Turksat-3USAT and CubeBug-1 ‘Capitán Beto’. NEE 01 Pegaso is a 1U CubeSat and is the first satellite to be launched for Ecuador.

NEE-01 Pegaso, first Ecuador satellite

It is also the 19th launch of a Long March-2D, and the 175th of the Long March rocket series.

Developed by the China Academy of Space Technology, Gaofen-1 is the first of five or six satellites to be launched for the high-definition earth observation system (HDEOS) between 2011 and 2016.

The system could play an important role in disaster prevention and relief, climate change monitoring, geographical mapping, environment and resource surveying as well as precision agriculture.

The major users of the satellite will be the Ministry of Land and Resources, Ministry of Environmental Protection and Ministry of Agriculture, said the SASTIND, adding that the launch is of great significance in improving China's satellite development level and increasing its degree of self-sufficiency in high-definition remote sensing data.

Gaofen-1 satellite

There are over 50 countries to date that own or operate earth observation satellites, and the data they collect is widely used for economic and social activities and in other science research fields.

High-definition earth observation technology is an important method to obtain information rapidly, a field that all major space powers are developing.

China set up the special project for the HDEOS development in 2006. It received government approval and was initiated in 2010.

According to the project, the country will establish an earth observation system capable of great precision in time, space and spectral aspects, and integrate it with other measures to build an observation system with all-weather, round-the-clock and global coverage.

For more information about China Aerospace Science and Technology Corporation (CASC), visit: http://english.spacechina.com/n16421/index.html

Images, Video, Text, Credits: CASC / ANI / EXA / Chinanews.com / Orbiter.ch Aerospace.

Greetings, Orbiter.ch

Docking of Progress at the ISS will occur despite a broken antenna










ROSCOSMOS - Russian Vehicles patch.

April 26, 2013

 Progress docking at ISS

On Friday, April 26, the Russian spacecraft "Progress" has successfully docked with the ISS, despite a broken antenna systems "course." BBC News website conducted a live online broadcast.

Docking of Progress at the ISS will occur despite a broken antenna (in Russian)

The space "Truck" delivered to the ISS more than 2.5 tonnes of cargo, including food, water, air tanks and oxygen, sanitary facilities, fuel and equipment for the station modules. In addition, the crew received a parcel from home and psychologists.

Russian Orbital Segment description

Among other things, "Progress M-19M" brought Pavel Vinogradov, Alexander Misurkin, Roman Romanenko, Christopher Cassidy, Thomas Mashburn and Chris Hadfield fresh fruit and vegetables, as well as their favorite foods and drinks.

For more information about International Space Station (ISS), visit: http://www.nasa.gov/mission_pages/station/main/index.html

For more information about ROSCOSMOS, visit: http://www.federalspace.ru/main.php?lang=ru

Images, Video, Text, Credits: Roscosmos TV / ROSCOSMOS / Translation: Orbiter.ch Aerospace.

Cheers, Orbiter.ch

The launch of a spacecraft Glonass-M












ROSCOSMOS - Glonass Mission patch.

26.04.2013

 Soyuz-2.1b with the upper stage Fregat and navigation spacecraft Glonass-M launch

April 26 at 9:00 MSK 23 minutes from Launch Complex 43 area state test launch site of the Ministry of Defense of the Russian Federation (cosmodrome Plesetsk) is made of a space rocket launch of "Soyuz-2.1b" with the upper stage (RB) "Fregat" and spacecraft ( KA) "Glonass-M". Start calculation made a joint Russian Defense Ministry experts and enterprises of the rocket-space industry.

According to the flight cyclogram Glonass-M (manufactured by JSC "ISS them. Academician Reshetnev" Zheleznogorsk) launched into the target orbit and adopted by the management. He will join the existing constellation of Russian global navigation satellite system GLONASS.

Work on preparing the spacecraft "Glonass-M"

Rocket "Soyuz-2.1b" is created in the Federal State Unitary Enterprise "SRP" TsSKB-Progress "(Samara), upper stage" Fregat "made in FSUE" NPO. Lavochkin. "

Nominal orbital group of the GLONASS system consists of 24 satellites placed in three orbital planes are separated by the longitude of the ascending node at 120 °. In each orbital plane should be placed evenly 8 spacecraft, which will provide a steady signal. Orbit navigation satellites have the following characteristics: height above the surface of the Earth - 19,100 km, inclination - 64,8 °, orbital period around the Earth - 11 hours 15 minutes.

GLONASS-M spacecraft

This configuration allows you to provide continuous and global coverage of the Earth's surface and near-earth space.

The scheme GLONASS constellation

The GLONASS system is defined as a dual-use system that provides the solution of problems in the interests of the Russian Defense Ministry and civilian users. Access to civilian navigation signals of global navigation satellite system GLONASS available to Russian and foreign customers at no cost and without restrictions.

The GLONASS system: http://www.federalspace.ru/main.php?id=24#gl

Original text in Russian: http://www.federalspace.ru/main.php?id=2&nid=20062

Images, Tex, Credits: Press Service of the Russian Federal Space Agency (Roscosmos PAO) / ROSCOSMOS / Translation: Orbiter.ch Aerospace.

Greetings, Orbiter.ch

jeudi 25 avril 2013

Entire galaxies feel the heat from newborn stars












ESA - Hubble Space Telescope logo.

25 April 2013

Bursts of star birth can curtail future galaxy growth

Artist's impression of a galaxy undergoing a starburst

Astronomers using the NASA/ESA Hubble Space Telescope have shown for the first time that bursts of star formation have a major impact far beyond the boundaries of their host galaxy. These energetic events can affect galactic gas at distances of up to twenty times greater than the visible size of the galaxy — altering how the galaxy evolves, and how matter and energy is spread throughout the Universe.

When galaxies form new stars, they sometimes do so in frantic episodes of activity known as starbursts. These events were commonplace in the early Universe, but are rarer in nearby galaxies.

During these bursts, hundreds of millions of stars are born, and their combined effect can drive a powerful wind that travels out of the galaxy. These winds were known to affect their host galaxy — but this new research now shows that they have a significantly greater effect than previously thought.

Probing a galactic halo with Hubble

An international team of astronomers observed 20 nearby galaxies, some of which were known to be undergoing a starburst. They found that the winds accompanying these star formation processes were capable of ionising [1] gas up to 650 000 light-years from the galactic centre — around twenty times further out than the visible size of the galaxy. This is the first direct observational evidence of local starbursts impacting the bulk of the gas around their host galaxy, and has important consequences for how that galaxy continues to evolve and form stars.

“The extended material around galaxies is hard to study, as it’s so faint,” says team member Vivienne Wild of the University of St. Andrews. “But it’s important — these envelopes of cool gas hold vital clues about how galaxies grow, process mass and energy, and finally die. We’re exploring a new frontier in galaxy evolution!”

The team used the Cosmic Origins Spectrograph (COS) instrument [2] on the NASA/ESA Hubble Space Telescope to analyse light from a mixed sample of starburst and control galaxies. They were able to probe these faint envelopes by exploiting even more distant objects — quasars, the intensely luminous centres of distant galaxies powered by huge black holes. By analysing the light from these quasars after it passed through the foreground galaxies, the team could probe the galaxies themselves.

Animation of a starburst galaxy (artist’s impression)

“Hubble is the only observatory that can carry out the observations necessary for a study like this,” says lead author Sanchayeeta Borthakur, of Johns Hopkins University. “We needed a space-based telescope to probe the hot gas, and the only instrument capable of measuring the extended envelopes of galaxies is COS.”

The starburst galaxies within the sample were seen to have large amounts of highly ionised gas in their halos — but the galaxies that were not undergoing a starburst did not. The team found that this ionisation was caused by the energetic winds created alongside newly forming stars.

This has consequences for the future of the galaxies hosting the starbursts. Galaxies grow by accreting gas from the space surrounding them, and converting this gas into stars. As these winds ionise the future fuel reservoir of gas in the galaxy’s envelope, the availability of cool gas falls — regulating any future star formation.

“Starbursts are important phenomena — they not only dictate the future evolution of a single galaxy, but also influence the cycle of matter and energy in the Universe as a whole,” says team member Timothy Heckman, of Johns Hopkins University. “The envelopes of galaxies are the interface between galaxies and the rest of the Universe — and we’re just beginning to fully explore the processes at work within them.”

The team's results will appear in the 1 May 2013 issue of The Astrophysical Journal.

Notes:

[1] A gas is said to be ionised when its atoms have lost one or more electrons — in this case by energetic winds exciting galactic gas and knocking electrons out of the atoms within.

[2] Spectrographs are instruments that break light into its constituent colours and measure the intensity of each colour, revealing information about the object emitting the light — such as its chemical composition, temperature, density, or velocity.

More information:

The Hubble Space Telescope is a project of international cooperation between ESA and NASA.

The research is presented in a paper entitled “The Impact of Starbursts on the Circumgalactic Medium”, published in the 1 May 2013 issue of The Astrophysical Journal.

The international team of astronomers in this study consists of: S. Borthakur (Johns Hopkins University, USA), T. Heckman (Johns Hopkins University, USA), D. Strickland (Johns Hopkins University, USA), V. Wild (University of St. Andrews, UK), D. Schiminovich (Columbia University, USA).

Links:

Research paper: http://www.spacetelescope.org/static/archives/releases/science_papers/heic1308.pdf

Images of Hubble: http://www.spacetelescope.org/images/archive/category/spacecraft/

Hubble's Instruments: COS — Cosmic Origins Spectrograph: http://www.spacetelescope.org/about/general/instruments/cos/

Images, Text, Credits: ESA, NASA, L. Calçada.

Greetings, Orbiter.ch

Einstein Was Right — So Far












ESO - European Southern Observatory logo.

25 April 2013

Record-breaking pulsar takes tests of general relativity into new territory

Artist’s impression of the pulsar PSR J0348+0432 and its white dwarf companion

Astronomers have used ESO’s Very Large Telescope, along with radio telescopes around the world, to find and study a bizarre stellar pair consisting of the most massive neutron star confirmed so far, orbited by a white dwarf star. This strange new binary allows tests of Einstein’s theory of gravity — general relativity — in ways that were not possible up to now. So far the new observations exactly agree with the predictions from general relativity and are inconsistent with some alternative theories. The results will appear in the journal Science on 26 April 2013.

An international team has discovered an exotic double object that consists of a tiny, but unusually heavy neutron star that spins 25 times each second, orbited every two and a half hours by a white dwarf star. The neutron star is a pulsar that is giving off radio waves that can be picked up on Earth by radio telescopes. Although this unusual pair is very interesting in its own right it is also a unique laboratory for testing the limits of physical theories.

Artist’s impression of the pulsar PSR J0348+0432 and its white dwarf companion

This pulsar is named PSR J0348+0432 and is the remains of a supernova explosion. It is twice as heavy as the Sun, but just 20 kilometres across. The gravity at its surface is more than 300 billion times stronger than that on Earth and at its centre every sugar-cubed-sized volume has more than one billion tonnes of matter squeezed into it. Its companion white dwarf star is only slightly less exotic; it is the glowing remains of a much lighter star that has lost its atmosphere and is slowly cooling.

“I was observing the system with ESO’s Very Large Telescope, looking for changes in the light emitted from the white dwarf caused by its motion around the pulsar,” says John Antoniadis, a PhD student at the Max Planck Institute for Radio Astronomy (MPIfR) in Bonn and lead author of the paper. “A quick on-the-spot analysis made me realise that the pulsar was quite a heavyweight. It is twice the mass of the Sun, making it the most massive neutron star that we know of and also an excellent laboratory for fundamental physics.”

Artist’s impression of the pulsar PSR J0348+0432 and its white dwarf companion

Einstein’s general theory of relativity, which explains gravity as a consequence of the curvature of spacetime created by the presence of mass and energy, has withstood all tests since it was first published almost a century ago. But it cannot be the final explanation and must ultimately break down [1].

Physicists have devised other theories of gravity that make different predictions from general relativity. For some of these alternatives, these differences would only show up in extremely strong gravitational fields that cannot be found in the Solar System. In terms of gravity, PSR J0348+0432 is a truly extreme object, even compared to the other pulsars that have been used in high precision tests of Einstein’s general relativity [2]. In such strong gravitational fields small increases in the mass can lead to large changes in the spacetime around such objects. Up to now astronomers had no idea what would happen in the presence of such a massive neutron star as PSR J0348+0432. It offers the unique opportunity to push tests into new territory.


Video above: Artist’s impression of the pulsar PSR J0348+0432 and its white dwarf companion.

The team combined Very Large Telescope observations of the white dwarf with very precise timing of the pulsar from radio telescopes [3]. Such a close binary radiates gravitational waves and loses energy. This causes the orbital period to change very slightly and the predictions for this change from general relativity and other competing theories are different.

“Our radio observations were so precise that we have already been able to measure a change in the orbital period of 8 millionths of a second per year, exactly what Einstein’s theory predicts,” states Paulo Freire, another team member.

This is just the start of detailed studies of this unique object and astronomers will be using it to test general relativity to ever greater precision as time goes on.

Notes:

[1] General relativity is not consistent with the other great theory of twentieth century physics, quantum mechanics. It also predicts singularities under some circumstances, where some quantities tend to infinity, such as the centre of a black hole.

[2] The first binary pulsar, PSR B1913+16, was discovered by Joseph Hooton Taylor, Jr. and Russell Hulse, for which they won the 1993 Nobel Prize in Physics. They accurately measured the changes in the properties of this remarkable object and showed that they were precisely consistent with the gravitational radiation energy losses predicted by general relativity.

[3] This work made use of data from the Effelsberg, Arecibo and Green Bank radio telescopes as well as the ESO Very Large Telescope and the William Herschel Telescope optical telescopes.

More information:

This research was presented in a paper “A Massive Pulsar in a Compact Relativistic Orbit”, by John Antoniadis et al., to appear in the journal Science on 26 April 2013.

The team is composed of John Antoniadis (Max-Planck-Institut für Radioastronomie [MPIfR], Bonn, Germany), Paulo C. C. Freire (MPIfR), Norbert Wex (MPIfR), Thomas M. Tauris (Argelander Institut für Astronomie, Bonn, Germany; MPIfR), Ryan S. Lynch (McGill University, Montreal, Canada), Marten H. van Kerkwijk (University of Toronto, Canada), Michael Kramer (MPIfR; Jodrell Bank Centre for Astrophysics, The University of Manchester, United Kingdom), Cees Bassa (Jodrell Bank), Vik S. Dhillon (University of Sheffield, United Kingdom), Thomas Driebe (Deutsches Zentrum für Luft- und Raumfahrt, Bonn, Germany), Jason W. T. Hessels (ASTRON, the Netherlands Institute for Radio Astronomy, Dwingeloo, The Netherlands; University of Amsterdam, The Netherlands), Victoria M. Kaspi (McGill University), Vladislav I. Kondratiev (ASTRON; Lebedev Physical Institute, Moscow, Russia), Norbert Langer (Argelander Institut für Astronomie), Thomas R. Marsh (University of Warwick, United Kingdom), Maura A. McLaughlin (West Virginia University), Timothy T. Pennucci (Department of Astronomy, University of Virginia) Scott M. Ransom (National Radio Astronomy Observatory, Charlottesville, USA), Ingrid H. Stairs (University of British Columbia, Vancouver, Canada), Joeri van Leeuwen (ASTRON; University of Amsterdam), Joris P. W. Verbiest (MPIfR), David G. Whelan (Department of Astronomy, University of Virginia).

ESO is the foremost intergovernmental astronomy organisation in Europe and the world’s most productive ground-based astronomical observatory by far. It is supported by 15 countries: Austria, Belgium, Brazil, the Czech Republic, Denmark, France, Finland, Germany, Italy, the Netherlands, Portugal, Spain, Sweden, Switzerland and the United Kingdom. ESO carries out an ambitious programme focused on the design, construction and operation of powerful ground-based observing facilities enabling astronomers to make important scientific discoveries. ESO also plays a leading role in promoting and organising cooperation in astronomical research. ESO operates three unique world-class observing sites in Chile: La Silla, Paranal and Chajnantor. At Paranal, ESO operates the Very Large Telescope, the world’s most advanced visible-light astronomical observatory and two survey telescopes. VISTA works in the infrared and is the world’s largest survey telescope and the VLT Survey Telescope is the largest telescope designed to exclusively survey the skies in visible light. ESO is the European partner of a revolutionary astronomical telescope ALMA, the largest astronomical project in existence. ESO is currently planning the 39-metre European Extremely Large optical/near-infrared Telescope, the E-ELT, which will become “the world’s biggest eye on the sky”.

Link:

Photos of the VLT: http://www.eso.org/public/images/archive/category/paranal/

Images, Video, Text, Credits: ESO / L. Calçada.

Best regards, Orbiter.ch

NASA / ESA Probe Observes Meteors Colliding With Saturn's Rings










NASA / ESA - Cassini Mission logo.

April 25, 2013


Five images of Saturn's rings, taken by NASA's Cassini spacecraft between 2009 and 2012, show clouds of material ejected from impacts of small objects into the rings. Image credit: NASA/JPL-Caltech/Space Science Institute/Cornell.

NASA's Cassini spacecraft has provided the first direct evidence of small meteoroids breaking into streams of rubble and crashing into Saturn's rings.

These observations make Saturn's rings the only location besides Earth, the moon and Jupiter where scientists and amateur astronomers have been able to observe impacts as they occur. Studying the impact rate of meteoroids from outside the Saturnian system helps scientists understand how different planet systems in our solar system formed.


Image above: The meteoroids that NASA's Cassini spacecraft detected crashing into Saturn's rings are comparable in size to the meteor that hurtled over Russia in February 2013. Image credit: Copyright M. Ahmetvaleev.

The solar system is full of small, speeding objects. These objects frequently pummel planetary bodies. The meteoroids at Saturn are estimated to range from about one-half inch to several yards (1 centimeter to several meters) in size. It took scientists years to distinguish tracks left by nine meteoroids in 2005, 2009 and 2012.

Details of the observations appear in a paper in the Thursday, April 25 edition of Science.

Results from Cassini have already shown Saturn's rings act as very effective detectors of many kinds of surrounding phenomena, including the interior structure of the planet and the orbits of its moons. For example, a subtle but extensive corrugation that ripples 12,000 miles (19,000 kilometers) across the innermost rings tells of a very large meteoroid impact in 1983.

"These new results imply the current-day impact rates for small particles at Saturn are about the same as those at Earth -- two very different neighborhoods in our solar system -- and this is exciting to see," said Linda Spilker, Cassini project scientist at NASA's Jet Propulsion Laboratory in Pasadena, Calif. "It took Saturn's rings acting like a giant meteoroid detector -- 100 times the surface area of the Earth -- and Cassini's long-term tour of the Saturn system to address this question."


This illustration depicts the shearing of an initially circular cloud of debris as a result of the particles in the cloud having differing orbital speeds around Saturn. Image credit: NASA/Cornell.

The Saturnian equinox in summer 2009 was an especially good time to see the debris left by meteoroid impacts. The very shallow sun angle on the rings caused the clouds of debris to look bright against the darkened rings in pictures from Cassini's imaging science subsystem.

"We knew these little impacts were constantly occurring, but we didn't know how big or how frequent they might be, and we didn't necessarily expect them to take the form of spectacular shearing clouds," said Matt Tiscareno, lead author of the paper and a Cassini participating scientist at Cornell University in Ithaca, N.Y. "The sunlight shining edge-on to the rings at the Saturnian equinox acted like an anti-cloaking device, so these usually invisible features became plain to see."

Tiscareno and his colleagues now think meteoroids of this size probably break up on a first encounter with the rings, creating smaller, slower pieces that then enter into orbit around Saturn. The impact into the rings of these secondary meteoroid bits kicks up the clouds. The tiny particles forming these clouds have a range of orbital speeds around Saturn. The clouds they form soon are pulled into diagonal, extended bright streaks.

"Saturn's rings are unusually bright and clean, leading some to suggest that the rings are actually much younger than Saturn," said Jeff Cuzzi, a co-author of the paper and a Cassini interdisciplinary scientist specializing in planetary rings and dust at NASA's Ames Research Center in Moffett Field, Calif. "To assess this dramatic claim, we must know more about the rate at which outside material is bombarding the rings. This latest analysis helps fill in that story with detection of impactors of a size that we weren't previously able to detect directly."

The Cassini-Huygens mission is a cooperative project of NASA, the European Space Agency and the Italian Space Agency. NASA's Jet Propulsion Laboratory, Pasadena, Calif., a division of the California Institute of Technology, Pasadena, manages the Cassini-Huygens mission for NASA's Science Mission Directorate in Washington. JPL designed, developed and assembled the Cassini orbiter and its two onboard cameras. The imaging team consists of scientists from the United States, England, France and Germany. The imaging operations center is based at the Space Science Institute in Boulder, Colo.

For images of the impacts and information about Cassini, visit: http://www.nasa.gov/cassini and http://saturn.jpl.nasa.gov and http://www.esa.int/Our_Activities/Space_Science/Cassini-Huygens

Images, Text, Credits: NASA / Dwayne Brown / JPL / Jia-Rui Cook.

Greetings, Orbiter.ch