jeudi 7 avril 2011

Breakthrough Study Confirms Cause Of Short Gamma-Ray Bursts












NASA - SWIFT Mission patch.

April 7, 2011

A new supercomputer simulation shows the collision of two neutron stars can naturally produce the magnetic structures thought to power the high-speed particle jets associated with short gamma-ray bursts (GRBs). The study provides the most detailed glimpse of the forces driving some of the universe's most energetic explosions.


Video above: State-of-the-art supercomputer models show that merging neutron stars can power a short gamma-ray burst. Credit: NASA/Goddard Space Flight Center.

The state-of-the-art simulation ran for nearly seven weeks on the Damiana computer cluster at the Albert Einstein Institute (AEI) in Potsdam, Germany. It traces events that unfold over 35 milliseconds -- about three times faster than the blink of an eye.

GRBs are among the brightest events known, emitting as much energy in a few seconds as our entire galaxy does in a year. Most of this emission comes in the form of gamma rays, the highest-energy form of light.

"For the first time, we've managed to run the simulation well past the merger and the formation of the black hole," said Chryssa Kouveliotou, a co-author of the study at NASA's Marshall Space Flight Center in Huntsville, Ala. "This is by far the longest simulation of this process, and only on sufficiently long timescales does the magnetic field grow and reorganize itself from a chaotic structure into something resembling a jet."

GRBs longer than two seconds are the most common type and are widely thought to be triggered by the collapse of a massive star into a black hole. As matter falls toward the black hole, some of it forms jets in the opposite direction that move near the speed of light. These jets bore through the collapsing star along its rotational axis and produce a blast of gamma rays after they emerge. Understanding short GRBs, which fade quickly, proved more elusive. Astronomers had difficulty obtaining precise positions for follow-up studies.

That began to change in 2004, when NASA's Swift satellite began rapidly locating bursts and alerting astronomers where to look.

"For more than two decades, the leading model of short GRBs was the merger of two neutron stars," said co-author Bruno Giacomazzo at the University of Maryland and NASA's Goddard Space Flight Center in Greenbelt, Md. "Only now can we show that the merger of neutron stars actually produces an ultrastrong magnetic field structured like the jets needed for a GRB."

A neutron star is the compressed core left behind when a star weighing less than about 30 times the sun's mass explodes as a supernova. Its matter reaches densities that cannot be reproduced on Earth -- a single spoonful outweighs the Himalayan Mountains.

The simulation began with a pair of magnetized neutron stars orbiting just 11 miles apart. Each star packed 1.5 times the mass of the sun into a sphere just 17 miles across and generated a magnetic field about a trillion times stronger than the sun's.


These images show the merger of two neutron stars recently simulated using a new supercomputer model. Redder colors indicate lower densities. Green and white ribbons and lines represent magnetic fields. The orbiting neutron stars rapidly lose energy by emitting gravitational waves and merge after about three orbits, or in less than 8 milliseconds. The merger amplifies and scrambles the merged magnetic field. A black hole forms and the magnetic field becomes more organized, eventually producing structures capable of supporting the jets that power short gamma-ray bursts. Credit: NASA/AEI/ZIB/M. Koppitz and L. Rezzolla.

In 15 milliseconds, the two neutron stars crashed, merged and transformed into a rapidly spinning black hole weighing 2.9 suns. The edge of the black hole, known as its event horizon, spanned less than six miles. A swirling chaos of superdense matter with temperatures exceeding 18 billion degrees Fahrenheit surrounded the newborn black hole. The merger amplified the strength of the combined magnetic field, but it also scrambled it into disarray.

Over the next 11 milliseconds, gas swirling close to the speed of light continued to amplify the magnetic field, which ultimately became a thousand times stronger than the neutron stars' original fields. At the same time, the field became more organized and gradually formed a pair of outwardly directed funnels along the black hole's rotational axis.

 SWIFT Satellite

This is exactly the configuration needed to power the jets of ultrafast particles that produce a short gamma-ray burst. Neither of the magnetic funnels was filled with high-speed matter when the simulation ended, but earlier studies have shown that jet formation can occur under these conditions.

"By solving Einstein's relativity equations as never before and letting nature take its course, we've lifted the veil on short GRBs and revealed what could be their central engine," said Luciano Rezzolla, the study's lead author at AEI. "This is a long-awaited result. Now it appears that neutron star mergers inevitably produce aligned jet-like structures in an ultrastrong magnetic field."

The study is available online and will appear in the May 1 edition of The Astrophysical Journal Letters.

The authors note the ultimate proof of the merger model will have to await the detection of gravitational waves -- ripples in the fabric of space-time predicted by relativity. Merging neutron stars are expected to be prominent sources, so the researchers also computed what the model's gravitational-wave signal would look like. Observatories around the world are searching for gravitational waves, so far without success because the signals are so faint.

For more information, video and images associated with this release, visit: http://www.nasa.gov/topics/universe/features/gamma-ray-engines.html

Images (mentioned), Video (mentioned), Text, Credit: NASA.

Best regards, Orbiter.ch

The Art of Making Stars









NASA - Wide-Field Infrared Survey Explorer (WISE) patch.

7 April 2011


Rho Ophiuchi might look like an abstract painting, but this splash of colors is in fact a busy star-forming complex. WISE, NASA's Wide-field Infrared Explorer captured the picturesque image of the region, which is one of the closest star-forming complexes to Earth.

The amazing variety of colors seen in this image represents different wavelengths of infrared light. The bright white nebula in the center of the image is glowing due to heating from nearby stars, resulting in what is called an emission nebula. The same is true for most of the multi-hued gas prevalent throughout the entire image, including the bluish, bow-shaped feature near the bottom right. The bright red area in the bottom right is light from the star in the center--Sigma Scorpii--that is reflected off of the dust surrounding it, creating what is called a reflection nebula. And the much darker areas scattered throughout the image are pockets of cool, dense gas that block out the background light, resulting in absorption (or 'dark') nebulae. WISE's longer wavelength detectors can typically see through dark nebulae, but these are exceptionally opaque.

The bright pink objects just left of center are young stellar objects--baby stars just beginning to form. Many of them are still enveloped in their own tiny compact nebulae. In visible light, these baby stars are completely hidden in the dark nebula that surrounds them. Also seen in this image are some of the oldest stars in our Milky Way galaxy. The first cluster, M80, is on the far right edge of the image towards the top. The second, NGC 6144, is found close to the bottom edge near the center. They both appear as small densely compacted groups of blue stars. Globular clusters such as these typically harbor some of the oldest stars known, some as old as 13 billion years, born soon after the universe formed.

Image, Text,  Credit: NASA / JPL-Caltech / UCLA.

Greetings, Orbiter.ch

mardi 5 avril 2011

Scientists Find New Type Of Mineral In Historic Meteorite








Meteorites and Comets Searches.

April 5, 2011

NASA and co-researchers from the United States, South Korea and Japan have found a new mineral named "Wassonite" in one of the most historically significant meteorites recovered in Antarctica in December 1969.

The new mineral was discovered within the meteorite officially designated Yamato 691 enstatite chondrite. The meteorite was discovered the same year as other landmark meteorites Allende and Murchison and the return of the first Apollo lunar samples. The study of meteorites helps define our understanding of the formation and history of the solar system.

The meteorite likely may have originated from an asteroid orbiting between Mars and Jupiter. Wassonite is among the tiniest, yet most important, minerals identified in the 4.5-billion-year-old sample. The research team, headed by NASA space scientist Keiko Nakamura-Messenger, added the mineral to the list of 4,500 officially approved by the International Mineralogical Association.

"Wassonite is a mineral formed from only two elements, sulfur and titanium, yet it possesses a unique crystal structure that has not been previously observed in nature," said Nakamura-Messenger.

In 1969, members of the Japanese Antarctic Research Expedition discovered nine meteorites on the blue ice field of the Yamato Mountains in Antarctica. This was the first significant recovery of Antarctic meteorites and represented samples of several different types. As a result, the United States and Japan conducted systematic follow-up searches for meteorites in Antarctica that recovered more than 40,000 specimens, including extremely rare Martian and lunar meteorites.

Researchers found Wassonite surrounded by additional unknown minerals that are being investigated. The mineral is less than one-hundredth the width of a human hair or 50x450 nanometers. It would have been impossible to discover without NASA's transmission electron microscope, which is capable of isolating the Wassonite grains and determining their chemical composition and atomic structure.

A bright field scanning transmission electron microscope (STEM) micrograph showing a Wassonite grain in dark contrast

"More secrets of the universe can be revealed from these specimens using 21st century nano-technology," said Nakamura-Messenger.

The new mineral's name was approved by the International Mineralogical Association. It honors John T. Wasson, professor at the University of California, Los Angeles (UCLA). Wasson is known for his achievements across a broad swath of meteorite and impact research, including the use of neutron activation data to classify meteorites and to formulate models for the chemical makeup of bulk chondrites.

"Meteorites, and the minerals within them, are windows to the formation of our solar system," said Lindsay Keller, space scientist at NASA's Johnson Space Center in Houston. Keller is the co-discoverer and principal investigator of the microscope used to analyze the Wassonite crystals. "Through these kinds of studies we can learn about the conditions that existed and the processes that were occurring then."

Johnson's advanced work in nanotechnology is part of the center's Astromaterial Research and Exploration Science Directorate. It is currently the location for celestial materials that would be returned to Earth from spacecraft. The facility collaborates with industry, academic and international organizations.

"The beauty of this research is that it really demonstrates how the Johnson Space Center has become a pre-eminent leader in the field of nanoscale analysis," said Simon Clemett, a space scientist at Johnson and co-discoverer of the new mineral. "In the words of the great English poet William Blake, we are now able 'to see the world in a grain of sand'.

Collaborators in the discovery of the new mineral include Clemett, Keller and Zia Rahman in the Astromaterials Research and Exploration Science Directorate at Johnson; Alan Rubin from UCLA; Byeon-Gak Choi from Seoul National University, South Korea; Shouliang Zhang from the Lunar and Planetary Institute in Houston; and Katsunari Oikawa from Tohoku University, Japan.

To see images of Wassonite, visit: http://www.nasa.gov/centers/johnson/home/wassonite.html

Image, Text, Credits: NASA / Tohoku University, Japan.

Cheers, Orbiter.ch

ESA increases availability of made-in-Europe space parts






ESA logo.

5 April 2011

Helping to ensure that future satellites are also European on the inside, ESA is extending its effort to increase the amount of high-performance European components available to forthcoming missions.

On 17 March ESA’s Council approved a €20 million budget for the next phase of the European Components Initiative (ECI), for the years 2011 to 2012, and work has started to define a long-term, sustained financing formula for presentation to the 2012 Ministerial Council.

Components are the building blocks of space missions

“This very positive decision illustrates that national delegations are well aware of the strategic importance that EEE [electrical, electronic and electro-mechanical] components have to sustain our ability to build innovative and competitive space systems,” commented Wolfgang Veith, head of ESA’s Product Assurance and Safety Department.

“Until 2006, the number of European EEE components used in European satellites was in a decade-long decline, but the Initiative has reversed this trend with an impressive portfolio of new space components that have also found success in the wider marketplace.”

From resistors to transistors, integrated circuits to monolithic microwave devices, EEE components are the fundamental building blocks of satellites. Their reliability, quality and performance play a key role in ESA missions.

ECI double-balanced mixer

Begun in 2004, the Initiative is a combined effort between ESA and national space agencies working with component manufacturers and end-users to reduce Europe’s dependence on foreign EEE items.

Such components are often subject to export restrictions, most notably the US International Traffic in Arms Regulations (ITAR). Continued reliance limits the European access to high-end EEE-component technologies, curtailing the effectiveness of future missions and diminishing the competitiveness of Europe’s space sector.

The announcement came as around 200 space components specialists were gathered at ESTEC, ESA’s technical centre in the Netherlands, for the European Space Components Conference, ESCCON 2011.

LEON2-FT microprocessor

Starting on 15 March, the three-day event was organised by the steering board of the European Space Component Coordination (ESCC), an organisation of space agencies and industry to harmonise EEE research and development activities and operate a system for qualifying European space components. The ECI serves to fill strategic gaps that are identified by the ESCC.

Wolfgang also serves as chairman of the ESCC steering board. Introducing the conference, he noted that the space programme represented a small fraction of the global EEE components market, combining low-volume demand with very high requirements on reliability, robustness and radiation resistance.

“But space has such a huge impact on our society and economy, that it is universally recognised that this niche has to be filled,” he commented.

The ECI’s initial motivation was to seek direct ‘drop in’ replacements for ITAR-controlled devices, explained Mikko Nikulainen, Head of ESA's Materials and Component Technology Division and in charge of implementing the ECI.

Herschel-Planck were 60% European

“Its second phase, from 2009 to this year, sought to develop competitive alternatives to foreign parts in terms of function, performance, cost and time to market.

“In the third phase, stretching into 2013, the focus is to ensure European access to key strategic components and enabling technologies to maintain long-term competitiveness of European space industry.”


Areas of interest include deep submicron technology (producing microcircuits with feature sizes as small as 65 nanometres, tinier than a typical bacterium), large Field Programmable Gate Arrays (FPGAs, reconfigurable circuits for varied uses) and high pin-count assembly technologies (allowing dense placement of components on printed circuit boards).

More information:

EEE Components Initiative: https://spacecomponents.org/public/eci/

What is the ECI?: http://www.esa.int/SPECIALS/Technology/SEM7NMBDNRF_0.html

ESCCON 2011: http://www.congrex.nl/11m06/

ESCC: http://spacecomponents.org/

Credits: ESA / OMMIC.

Greetings, Orbiter.ch

More power to Alphabus






ESA - ALPHAbus Satellite Communications logo.

5 April 2011

The high-power end of the communication satellite market will be better served thanks to Alphabus, Europe’s new telecommunications platform.

Jointly developed by Astrium and Thales Alenia Space under an ESA and French space agency contract, Alphabus is Europe’s coordinated response to the increasing market demand for larger payloads.

Alphabus is already available commercially to handle missions calling for up to 18 kW of payload power, but its range will now be extended to 22 kW.

Alphabus satellite

The contract for this Alphabus Extension programme, signed last week, includes increasing the payload mass from 1250 kg to 2000 kg, boosting the output to an equivalent of more than 1000 TV channels and raising the thermal rejection capacity to 19 kW from 11.5 kW.

The programme also provides opportunities for Europe’s satcom industry to develop key satellite communications technologies, such as a deployable panel radiator for increased heat dissipation and an ultra-stable antenna module for future very large Alphabus satellites.

“After the qualification of Alphabus, the Extension programme will put Europe at the forefront of the worldwide satcom market,” said Magali Vaissiere, ESA Director of Telecommunications and Integrated Applications.

“The Alphabus platform is already available for our offers addressing the high-power market, and the first satellite is in the final integration stage,” said Arnaud de Rosnay and Emmanuel Grave speaking on behalf of the industrial consortium of Astrium and Thales Alenia Space.

An extension contract to develop a more powerful Alphabus was signed in Toulouse, France on Friday, 1 April

“Now with the extension in Alphabus capacity, we will be able to further extend our offer, beyond any other product available in the worldwide market.”

A wide range of commercial payloads to provide TV broadcast, Internet access and mobile and fixed telecommunication services can be accommodated on Alphabus.

Alphasat, a public–private partnership between ESA and Inmarsat, is the first satellite to use the Alphabus platform. Its new generation of advanced geomobile communications payload will augment Inmarsat’s Broadband Global Area Network service, enabling communications across Europe, Asia, Africa and the Middle East with increased capacity.

Launch is planned for late 2012 on Ariane 5 from Europe’s Spaceport in Kourou, French Guiana.

For more information, see the links below:

Telecommunications and Integrated Applications: http://telecom.esa.int/telecom/www/language/index.cfm?flanguageid=5

ARTES 8 Alphabus/Alphasat: http://telecom.esa.int/telecom/www/area/index.cfm?fareaid=25

Images, Text, Credits: ESA / Astrium / CNES / E. Grimault.

Greetings, Orbiter.ch

lundi 4 avril 2011

Space Station Crew Launches from Birthplace of Human Spaceflight














ROSCOSMOS - Soyuz TMA-21 / 50th Gagarin Flight Commemorative Mission patch / ISS - Expedition 27 Mission patch.

April 4, 2011

One week shy of the 50th anniversary of the first human spaceflight, NASA astronaut Ron Garan and Russian cosmonauts Andrey Borisenko and Alexander Samokutyaev launched to the International Space Station at 6:18 p.m. EDT Monday (4:18 a.m. local time, April 5) from the Baikonur Cosmodrome in Kazakhstan.

Expedition 27 Crew

The Soyuz rocket that lifted Garan, Borisenko and Samokutyaev into orbit was decorated with Yuri Gagarin's name. The mission lifted off from the same launch pad used April 12, 1961, when Gagarin became the first human to journey into space.

The crew is scheduled to dock its Soyuz TMA-21 spacecraft to the station's Poisk port at 7:18 p.m. on Wednesday, April 6. The crew members will join Expedition 27 Commander Dmitry Kondratyev and Flight Engineers Cady Coleman of NASA and Paolo Nespoli of the European Space Agency, who have been aboard the orbiting laboratory since December 2010.

Soyuz TMA-21 launch

On Wednesday, NASA Television will broadcast live coverage of the docking beginning at 6:45 p.m. Coverage of the hatch opening and a welcoming ceremony aboard the station will begin at 8:45 p.m. For NASA TV streaming video, schedule and downlink information, visit: http://www.nasa.gov/ntv

Soyuz TMA-21 Launch  to ISS Expedition 27 Crew

During Expedition 27, the six-person crew will continue scientific research, perform station maintenance and welcome two visiting vehicles. In addition to space shuttle Endeavour's planned visit during the STS-134 mission, the Expedition 27 crew is expecting the arrival of the 42nd Russian Progress cargo ship near the end of April.

Kondratyev, Coleman and Nespoli are scheduled to depart the station May 16.

NASA astronaut Mike Fossum, Russian cosmonaut Sergei Volkov and Japan Aerospace Exploration Agency astronaut Satoshi Furukawa are scheduled to join Garan, Borisenko and Samokutyaev aboard the station to complete the Expedition 28 crew. Their launch is set for May 30.

For updates about the space station and Expedition 27/28 crew members, visit: http://www.nasa.gov/station

To view the new official International Space Station page on Facebook and follow crew member posts from space, visit: http://www.facebook.com/ISS

To follow Twitter updates from Expedition 27/28 crew member Garan, visit: http://twitter.com/Astro_Ron

Images, Video, Text, Credits: ROSCOSMOS / NASA.

Cheers, Orbiter.ch

Make your satnav idea a reality








ESNC 2011 logo labeled.

4 April 2011

Submit a great satnav idea and win a prize with ESA support to create your own business. Previous winning ideas today guide visitors around exhibition centres, help position offshore ships with centimetre accuracy and spot pollution in waterways.

The eighth European Satellite Navigation Competition (ESNC) began on 1 April. Inventors and entrepreneurs can propose their ideas on how to use satellite navigation technology in new applications on Earth.

Satellite Galileo

The winners will get the chance to turn them into viable businesses with the support from business incubations centres throughout Europe.

Galileo Masters competition becomes global ESNC

What began in Bavaria in 2004 as the ‘Galileo Masters’ with just three regions has turned into the global ESNC, with more than 20 high-tech regions.

Many of the thousand-plus ideas submitted have turned into new businesses in Europe.

Each region offers a prize to its winners. Special topic prizes sponsored by partners from industry and research add to the €1 million prize pool.

ESNC 2010 winners

The best overall idea is awarded the Galileo Master grand prize of
€20 000 and the opportunity to realise the project during a six-month incubation programme. Other organisations also award prizes.

The ESA Special Prize is awarded for the best idea that can be quickly nurtured into a profitable business with the technical and financial assistance from one of our five, soon to become six, ESA Business Incubation Centres. The winner will also receive a €10 000 cash award.

ESA prizes lead to business

The 2008 winner proposed pseudo-satellites for indoor navigation, where real satellite signals cannot penetrate. French company Insiteo was started and supported by ESA’s Business Incubation Centre in, the Netherlands, and ESA engineers to develop its patented solution.

Today, Insideo’s indoor navigation system is helping the six million annual visitors find their way around Expo Porte de Versailles, the largest exhibition centre in Paris.

ESA BIC start-up company Insiteo guides visitors at trade exhibitions

Two years ago, Tim Springer proposed a computation system that uses GPS and Glonass satnav signals for realtime positioning to centimetre accuracy.

Based on ESA’s NAPEOS system used in satellite control, it offers higher precision than other commercial packages. Tim’s German start-up company is now hosted at ESA’s Business Incubation Centre (BIC) in Darmstadt, Germany to complete the system and get the business going.

ESA special prize 2009 winner

“Our business plan is to commercialise NAPEOS and improve its precision significantly as well as reduce the processing time,” explains Tim. Meanwhile, Positim’s system is already being used to position off-shore ships and platforms.

Last year, the ESA Special Prize went to Rafael Olmedo and Luis Burillo, from Spain’s INTA research institute.

They proposed using the extreme accuracy of EGNOS (European Geostationary Navigation Overlay Service) to help authorities uncover illegal polluting wastewater flowing into waterways.

Irrigation channel

“Space pays handsomely back. Every euro invested in satellite manufacturing returns tens of euros downstream,” explains Frank M. Salzgeber, head of ESA’s Technology Transfer Programme Office (TTPO).

“We want to squeeze it even more and increase the return of space technologies and systems for daily life applications on Earth.”

“Ready and available, and even if developed initially for our space exploration, these often advanced technologies have turned out to provide the right answers to many problems here on Earth as well as opened up for innovative solutions and systems helping our citizens.”

Funding agriculture gets help from new system using satellite information

At the ESA BICs, winners may be assisted by ESA experts and have access to space technologies and laboratories. These centres are located in the Netherlands, Germany, Italy and the UK, with a sixth to open this year in Belgium.

But the support does not stop there. TTPO will help the companies to acquire funding through its annual ESA Investment Forum and the ESA-initiated Open Sky Technologies Fund.

ESNC 2011 opening conference

The ESNC 2011 International Kick-Off Conference to learn more about the completion will be held on 11 May and hosted by the Institute of Engineering and Technology in London. The event will be opened on the evening before with a lively 'elevator pitch' session and a warm-up party at Inmarsat, with a guided tour of their Satellite Control Centre.

“The ESNC 2011 in brief:
• Start-up aid worth €1 million
• €130 000 cash in the prize pool
• More than 20 partner regions
• Eight special prizes”

The conference will be opened by Carlo des Dorides, the new Executive Director of the European GNSS (Global Navigation Satellite Systems) Agency. Representatives of the competition's sponsors will introduce this year's special topic prizes and all the benefits ESNC can offer participants.


Experts will give an overview on financing opportunities and intellectual property rights and outline which sectors and application areas have the most potential.

Previous competition winners will be on hand to share their ESNC experience: how did winning the ESNC influence their business, what has happened since winning, and what was the result?

How to take part

The competition is open from 1 April to 30 June 2011 to companies, entrepreneurs, research institutes, universities and individuals from all over the world.

Entries should be made online at the competition website (http://www.galileo-masters.eu) where more details can be found.

ESA’s Technology Transfer Programme Office (TTPO)

The TTPO’s main mission is to facilitate the use of space technology and space systems for non-space applications and to demonstrate the benefit of the European space programme to European citizens.

The office is responsible for defining the overall approach and strategy for the transfer of space technologies, including the incubation of start-up companies and their funding. For more information, please contact:

ESA’s Technology Transfer Programme Office:

European Space Agency
Keplerlaan 1
2200 AG, Noordwijk
The Netherlands
Email: ttp@esa.int

More information:

European Satellite Navigation Competition: http://www.galileo-masters.eu/

Technology Transfer Programme Office: http://www.esa.int/SPECIALS/TTP2/

Business Incubation: http://www.esa.int/SPECIALS/Business_Incubation/index.html

Galileo: http://www.esa.int/esaNA/galileo.html

Credits: ESA / J.Huart / Simone Hörmann / European Satellite Navigation Competition / Insiteo / NEPA / Joevilliers / Wikipedia / Anwendungszentrum GmbH Oberpfaffenhofen.

Best regards, Orbiter.ch