mercredi 30 mars 2011

Successful Re-entry of HTV2












JAXA - HTV2 Mission patch.

March 30, 2011 (JST)

The H-II Transfer Vehicle "KOUNOTORI2" (HTV2) successfully re-entered the atmosphere after the third de-orbit maneuver at 11:44 a.m. on Wednesday, March 30, 2011 (JST).

The HTV2 successfully accomplished the main objective of shipping cargo to the International Space Station, and completed all of its missions over 67 days with today's re-entry.

 HTV2 re-entry (Artist's view)

The estimated times for re-entry and water landing are as follows: (Times are in JST)

Estimated re-entry time*:

   around 0:09 p.m. on Wednesday, March 30, 2011

Estimated water landing time:

   between 0:21 and 0:41 p.m. on Wednesday, March 30, 2011

*Altitude at 120 km


Reference link: For more details, please refer to the following website: http://iss.jaxa.jp/en/htv/

Images, Text, Credit: JAXA.

Greetings, Orbiter.ch

mardi 29 mars 2011

The Ariane 5 mission with Yahsat Y1A and Intelsat New Dawn is “go” for its March 30 liftoff

Arianespace - Launches Speak Louder Than Words patch.

March 29, 2011

Ariane Flight VA201

Arianespace’s second Ariane 5 mission of 2011 has been given the green light for its March 30 liftoff with the Yahsat Y1A and Intelsat New Dawn satellites, clearing the way for this heavy-lift vehicle’s rollout tomorrow to the Spaceport’s ELA-3 launch zone in French Guiana.

Ariane Flight VA201 launch poster

For this dual-payload mission, Ariane 5 will deploy the Yahsat Y1A and Intelsat New Dawn satellites during a flight lasting 35 minutes.  It will be the 57th launch of an Ariane 5, with a total lift performance of nearly 10,065 kg. – which includes the combined 8,965 kg. liftoff mass of the two spacecraft passengers, along with the SYLDA dual payload dispenser and integration hardware.

To be released first during this mission will be the 5,935-kg. Yahsat Y1A, which was developed for the Al Yah Satellite Communications Company to provide customized relay services for government and commercial sectors in the Middle East, Africa, Europe and Southwest Asia.  Located in the upper position of Ariane 5’s dual-passenger payload “stack,” this spacecraft is based on Astrium’s Eurostar E3000 platform, while its communications payload was supplied by Thales Alenia Space.

YAHSAT Y1A

Deployed from Ariane 5’s lower payload slot will be Intelsat New Dawn, which is the first-ever African private sector communications satellite.  Produced for a joint venture consortium led by Convergence Partners and Intelsat, the Orbital Sciences Corporation-built satellite was conceived to supply critical communications infrastructure for African customers – delivering wireless backhaul, broadband and media content.  Once at its operational geostationary orbital position, the relay platform will be operated and marketed as part of Intelsat’s global fleet.

Intelsat New Dawn logo

The March 30 mission with Yahsat Y1A and Intelsat New Dawn is one of Arianespace’s six Ariane 5 flights planned for 2011, along with the first two launches of its medium-lift Soyuz, and the lightweight Vega’s maiden flight – all from the Spaceport; as well as three Soyuz missions from Baikonur Cosmodrome in Kazakhstan.


Arianespace is maintaining the company’s launch pace to meet this goal, as two other mission campaigns currently are underway.  At the Spaceport, another Ariane 5 is taking shape for a May mission with the ST-2 and GSAT-8 satellites, while preparations are underway for an Arianespace Soyuz mission from Baikonur Cosmodrome in Kazakhstan with six second-generation Globalstar spacecraft.

      Related links:

      Follow the launch live: http://www.videocorner.tv/index.htm

      Al Yah Satellite Communications Company (Yahsat): http://www.yahsat.ae/

      EADS Astrium: http://www.astrium.eads.net/

      Thales Alenia Space: http://www.thalesgroup.com/Markets/Space/Related_Activities/Thales_Alenia_Space/

      Intelsat New Dawn: http://www.intelsatnewdawn.com/

      Orbital Sciences Corporation: http://www.orbital.com/

    * See the Arianespace launch kit for further details: http://www.arianespace.com/news-launch-kits/2006-2010-archive.asp

Images, Text, Credit: Arianespace / Thales / Alenia.

Greetings, Orbiter.ch

lundi 28 mars 2011

CERN - LHC: impressive start to 2011 run












CERN - European Organisation for Nuclear Research logo.

28 Mar 2011

After just a month of operation in 2011, the LHC has already achieved more than half the total number of proton-proton collisions delivered in 2010. The experiments have accumulated an integrated luminosity of 28 pb-1 this year. Integrated luminosity is a measure of the total number of proton-proton collisions measured by the experiments.


Image above: The CERN Control Centre's optical fibre starpoint, which serves the LHC installations and the computing centre in Meyrin. CERN’s 35,000 km of optical fibres are used to synchronise the accelerators, take measurements of the beams and to send controls to the LHC.

The impressive progress is the result of a rapid succession of LHC “fills” with increasing numbers of proton bunches. It indicates how quickly the LHC operators are now able to turn the machine around between successive fills, and how well LHC running has been incorporated into the overall operation of CERN’s accelerator complex.

Images, Text, Credit: European Organisation for Nuclear Research (CERN).

Cheers, Orbiter.ch

HTV2 to Depart from the ISS












JAXA - HTV2 Mission patch.

28.03.2011

Japanese cargo spaceship HTV-2 will depart from the International Space Station today.
The vehicle arrived at the station on Jan.27 with about 5.3t of cargo.


Departure time from the ISS and Re-entry time to the atmosphere of the H-II Transfer Vehicle "KOUNOTORI2" (HTV2) are set as follows:

Departure from the ISS: March 28, 19:45 MSK.
Re-entry to the atmosphere March 30, about 7:10 a.m. MSK.



The photos below from blog of ISS-27 Commander Dmitry Kondratiev depict the crew preparing HTV for undocking.

KOUNOTORI2 Release/Separation Live Coverage: http://iss.jaxa.jp/en/htv/mission/htv-2/

Images, Text, Credit: Roscosmos PAO.

Greetings, Orbiter.ch

vendredi 25 mars 2011

NASA Stardust Spacecraft Officially Ends Operations










NASA - Stardust-NexT Mission patch.

March 25, 2011

NASA's Stardust spacecraft sent its last transmission to Earth at 7:33 p.m. EDT Thursday, March 24, shortly after depleting fuel and ceasing operations. During an 11-year period, the venerable spacecraft collected and returned comet material to Earth and was reused after the end of its prime mission in 2006 to observe and study another comet during February 2011.

The Stardust team performed the burn to depletion, because the comet hunter was literally running on fumes. The depletion maneuver command was sent from the Stardust-NExT mission control area at Lockheed Martin Space Systems in Denver. The operation was designed to fire Stardust's rockets until no fuel remained in the tank or fuel lines. The spacecraft sent acknowledgment of its last command from approximately 194 million miles away in space.

"This is the end of the spacecraft's operations, but really just the beginnings of what this spacecraft's accomplishments will give to planetary science," said Lindley Johnson, Stardust-NExT and Discovery program executive at NASA Headquarters in Washington. "The treasure-trove of science data and engineering information collected and returned by Stardust is invaluable for planning future deep space planetary missions."

After completion of the burn, mission personnel began comparing the computed amount of fuel consumed during the engine firing with the anticipated amount based on consumption models. The models are required to track fuel levels, because there are no fully reliable fuel gauges for spacecraft in the weightless environment of space. Mission planners use approximate fuel usage by reviewing the history of the vehicle's flight, how many times and how long its rocket motors fired.

"Stardust's motors burned for 146 seconds," said Allan Cheuvront, Lockheed Martin Space Systems Company program manager for Stardust-NExT in Denver. "We'll crunch the numbers and see how close the reality matches up with our projections. That will be a great data set to have in our back pocket when we plan for future missions."

Stardust spacecraft

Launched Feb. 7, 1999, Stardust flew past the asteroid named Annefrank and traveled halfway to Jupiter to collect the particle samples from the comet Wild 2. The spacecraft returned to Earth's vicinity to drop off a sample return capsule eagerly awaited by comet scientists.

NASA re-tasked the spacecraft as Stardust-NExT to perform a bonus mission and fly past comet Tempel 1, which was struck by the Deep Impact mission in 2005. The mission collected images and other scientific data to compare with images of that comet collected by the Deep Impact mission in 2005. Stardust traveled approximately 13 million miles around the sun in the weeks after the successful Tempel 1 flyby. The Stardust-NExT mission met all mission goals, and the spacecraft was extremely successful during both missions. From launch until final rocket engine burn, Stardust travelled approximately 3.54 billion miles.

After the mileage logged in space, the Stardust team knew the end was near for the spacecraft. With its fuel tank empty and final radio transmission concluded, history's most traveled comet hunter will move from NASA's active mission roster to retired.

"This kind of feels like the end of one of those old western movies where you watch the hero ride his horse towards the distant setting sun -- and then the credits begin to roll," said Stardust-NExT project manager Tim Larson from NASA's Jet Propulsion Laboratory in Pasadena, Calif. "Only there's no setting sun in space."

Stardust and Stardust-NExT missions were managed by JPL for NASA's Science Mission Directorate in Washington. The missions were part of the Discovery Program managed at NASA's Marshall Space Flight Center in Huntsville, Ala. Joe Veverka of Cornell University was the Stardust-NExT principal investigator. Don Brownlee of the University of Washington in Seattle was the Stardust principal investigator. Lockheed Martin Space Systems built the spacecraft and managed day-to-day mission operations.

For more information about Stardust and Stardust-NExT, visit: http://stardustnext.jpl.nasa.gov

Images, Text, Credit: NASA.

Greetings, Orbiter.ch

Tycho Supernova Remnant












NASA - Chandra X-Ray Observatory logo.

03.25.11


This image comes from a very deep Chandra observation of the Tycho supernova remnant, produced by the explosion of a white dwarf star in our Galaxy. Low-energy X-rays (red) in the image show expanding debris from the supernova explosion and high energy X-rays (blue) show the blast wave, a shell of extremely energetic electrons . These high-energy X-rays show a pattern of X-ray "stripes" never previously seen in a supernova remnant. Some of the brightest stripes can also directly be seen in the full color image, on the right side of the remnant pointing from the outer rim to the interior. The stellar background is from the Digitized Sky Survey and only shows stars outside the remnant.

These stripes may provide the first direct evidence that supernova remnants can accelerate particles to energies a hundred times higher than achieved by the most powerful particle accelerator on Earth, the Large Hadron Collider. The results could explain how some of the extremely energetic particles bombarding the Earth, called cosmic rays, are produced, and they provide support for a theory about how magnetic fields can be dramatically amplified in such blast waves.

The X-ray stripes are thought to be regions where the turbulence is greater and the magnetic fields more tangled than surrounding areas. Electrons become trapped in these regions and emit X-rays as they spiral around the magnetic field lines. Regions with enhanced turbulence and magnetic fields were expected in supernova remnants, but the motion of the most energetic particles -- mostly protons -- was predicted to leave a messy network of holes and dense walls corresponding to weak and strong regions of magnetic fields, respectively. Therefore, the detection of stripes was a surprise.

The size of the holes was expected to correspond to the radius of the spiraling motion of the highest energy protons in the supernova remnant. These energies equal the highest energies of cosmic rays thought to be produced in our Galaxy. The spacing between the stripes corresponds to this size, providing evidence for the existence of these extremely energetic protons.

The Tycho supernova remnant is named for the famous Danish astronomer Tycho Brahe, who reported observing the supernova in 1572. It is located in the Milky Way, about 13,000 light years from Earth. Because of its proximity and intrinsic brightness, the supernova was so bright that it could be seen during the daytime with the naked eye.

Read more/access larger images: http://chandra.harvard.edu/photo/2011/tycho/

Images, Text, Credits: X-ray: NASA / CXC / Rutgers / K.Eriksen et al.; Optical: DSS.


Greetings, Orbiter.ch

jeudi 24 mars 2011

Suzaku Shows Clearest Picture Yet Of Perseus Galaxy Cluster









JAXA - NASA Suzaku / Astro-2e X-ray Telescopes logo.

March 24, 2011

X-ray observations made by the Suzaku observatory provide the clearest picture to date of the size, mass and chemical content of a nearby cluster of galaxies. The study also provides the first direct evidence that million-degree gas clouds are tightly gathered in the cluster's outskirts.

Suzaku is sponsored by the Japan Aerospace Exploration Agency (JAXA) with contributions from NASA and participation by the international scientific community. The findings will appear in the March 25 issue of the journal Science.

Galaxy clusters are millions of light-years across, and most of their normal matter comes in the form of hot X-ray-emitting gas that fills the space between the galaxies.

Artist's conception of Suzaku in orbit. Image credit: ISAS / JAXA

"Understanding the content of normal matter in galaxy clusters is a key element for using these objects to study the evolution of the universe," explained Adam Mantz, a co-author of the paper at NASA's Goddard Space Flight Center in Greenbelt, Md.

Clusters provide independent checks on cosmological values established by other means, such as galaxy surveys, exploding stars and the cosmic microwave background, which is the remnant glow of the Big Bang. The cluster data and the other values didn't agree.

NASA's Wilkinson Microwave Anisotropy Probe (WMAP) explored the cosmic microwave background and established that baryons -- what physicists call normal matter -- make up only about 4.6 percent of the universe. Yet previous studies showed that galaxy clusters seemed to hold even fewer baryons than this amount.

Suzaku images of faint gas at the fringes of a nearby galaxy cluster have allowed astronomers to resolve this discrepancy for the first time. The satellite's ideal target for this study was the Perseus Galaxy Cluster, which is located about 250 million light-years away and named for the constellation in which it resides. It is the brightest extended X-ray source beyond our own galaxy, and also the brightest and closest cluster in which Suzaku has attempted to map outlying gas.

"Before Suzaku, our knowledge of the properties of this gas was limited to the innermost parts of clusters, where the X-ray emission is brightest, but this left a huge volume essentially unexplored," said Aurora Simionescu, the study's lead researcher at the Kavli Institute for Particle Astrophysics and Cosmology (KIPAC) at Stanford University.

Perseus Galaxy Cluster

In late 2009, Suzaku's X-ray telescopes repeatedly observed the cluster by progressively imaging areas farther east and northwest of the center. Each set of images probed sky regions two degrees across -- equivalent to four times the apparent width of the full moon or about 9 million light-years at the cluster's distance. Staring at the cluster for about three days, the satellite mapped X-rays with energies hundreds of times greater than that of visible light.

From the data, researchers measured the density and temperature of the faint X-ray gas, which let them infer many other important quantities. One is the so-called virial radius, which essentially marks the edge of the cluster. Based on this measurement, the cluster is 11.6 million light-years across and contains more than 660 trillion times the mass of the sun. That's nearly a thousand times the mass of our Milky Way galaxy.

The researchers also determined the ratio of the cluster's gas mass to its total mass, including dark matter -- the mysterious substance that makes up about 23 percent of the universe, according to WMAP. By virtue of their enormous size, galaxy clusters should contain a representative sample of cosmic matter, with normal-to-dark-matter ratios similar to WMAP's. Yet the outer parts of the Perseus cluster seemed to contain too many baryons, the opposite of earlier studies, but still in conflict with WMAP.

To solve the problem, researchers had to understand the distribution of hot gas in the cluster, the researchers say. In the central regions, the gas is repeatedly whipped up and smoothed out by passing galaxies. But computer simulations show that fresh infalling gas at the cluster edge tends to form irregular clumps.

Not accounting for the clumping overestimates the density of the gas. This is what led to the apparent disagreement with the fraction of normal matter found in the cosmic microwave background.

"The distribution of these clumps and the fact that they are not immediately destroyed as they enter the cluster are important clues in understanding the physical processes that take place in these previously unexplored regions," said Steve Allen at KIPAC, the principal investigator of the Suzaku observations.

Goddard supplied Suzaku's X-ray telescopes and data-processing software, and it continues to operate a facility that supports U.S. astronomers who use the spacecraft.

Suzaku (Japanese for "red bird of the south") is the fifth Japanese X-ray astronomy satellite. It was launched as Astro-E2 on July 10, 2005, and renamed in orbit. The observatory was developed at JAXA's Institute of Space and Astronautical Science in collaboration with NASA and other Japanese and U.S. institutions.

For more information and images about this finding, visit: http://www.nasa.gov/astro-e2

Images, Text, Credts: NASA / JAXA / ISAS / Goddard.

Cheers, Orbiter.ch