mercredi 23 juillet 2014

Soyuz-U with Progress M-24M was launched from the Baikonur Cosmodrome











ROSCOSMOS - Russian Vehicles patch.

24.07.2014

Soyuz-U with Progress M-24M launch

July 24 at 01:44 MSK from launch complex number 1 site Baikonur cosmodrome launchers calculations of rocket-space industry Russia conducted a successful launch (ILV) Soyuz-U to transport cargo vehicle (THC) Progress M-24M.

01:53 MSK Progress M-24M cleanly separated from the third stage rocket orbiting artificial satellite.

Launch of Russian Rocket Carrying Progress M-24M for ISS

Docking TGC Progress M-24M to the ISS is scheduled for 7:30 MSK July 24, 2014.

Progress M space cargo in free flight (Progress M-23M)

TGC Progress M-24M to deliver to the International Space Station about 2.3 tons of cargo, including fuel, oxygen, food, equipment for scientific experiments and parcels for the crew.

ROSCOSMOS Press Release: http://www.federalspace.ru/20794/

Images, Video, Text, Credits: Roscosmos press service / RSOCOSMOS / TsenKi TV / Translation, screen capture: Orbiter.ch Aerospace.

Best regards, Orbiter.ch

Lives and Deaths of Sibling Stars












ESO - European Southern Observatory logo.

23 July 2014

The star cluster NGC 3293

In this striking new image from ESO’s La Silla Observatory in Chile young stars huddle together against a backdrop of clouds of glowing gas and lanes of dust. The star cluster, known as NGC 3293, would have been just a cloud of gas and dust itself about ten million years ago, but as stars began to form it became the bright group of stars we see here. Clusters like this are celestial laboratories that allow astronomers to learn more about how stars evolve.

This beautiful star cluster, NGC 3293, is found 8000 light-years from Earth in the constellation of Carina (The Keel). This cluster was first spotted by the French astronomer Nicolas-Louis de Lacaille in 1751, during his stay in what is now South Africa, using a tiny telescope with an aperture of just 12 millimetres. It is one of the brightest clusters in the southern sky and can be easily seen with the naked eye on a dark clear night.

The star cluster NGC 3293 in the constellation of Carina

Star clusters like NGC 3293 contain stars that all formed at the same time, at the same distance from Earth and out of the same cloud of gas and dust, giving them the same chemical composition. As a result clusters like this are ideal objects for testing stellar evolution theory.

Most of the stars seen here are very young, and the cluster itself is less than 10 million years old. Just babies on cosmic scales if you consider that the Sun is 4.6 billion years old and still only middle-aged. An abundance of these bright, blue, youthful stars is common in open clusters like NGC 3293, and, for example, in the better known Kappa Crucis cluster, otherwise known as the Jewel Box or NGC 4755.

Zooming in on the bright star cluster NGC 3293

These open clusters each formed from a giant cloud of molecular gas and their stars are held together by their mutual gravitational attraction. But these forces are not enough to hold a cluster together against close encounters with other clusters and clouds of gas as the cluster’s own gas and dust dissipates. So, open clusters will only last a few hundred million years, unlike their big cousins, the globular clusters, which can survive for billions of years, and hold on to far more stars.

Despite some evidence suggesting that there is still some ongoing star formation in NGC 3293, it is thought that most, if not all, of the nearly fifty stars in this cluster were born in one single event. But even though these stars are all the same age, they do not all have the dazzling appearance of a star in its infancy; some of them look positively elderly, giving astronomers the chance to explore how and why stars evolve at different speeds.

A close-up look at the star cluster NGC 3293

Take the bright orange star at the bottom right of the cluster. This huge star, a red giant, would have been born as one of the biggest and most luminous of its litter, but bright stars burn out fast. As the star used up the fuel at its core its internal dynamics changed and it began to swell and cool, becoming the red giant we now observe. Red giants are reaching the end of their life cycle, but this red giant’s sister stars are still in what is known as the pre-main-sequence — the period before the long, stable, middle period in a star’s life. We see these stars in the prime of their life as hot, bright and white against the red and dusty background.

This image was taken with the Wide Field Imager (WFI) installed on the MPG/ESO 2.2-metre telescope at ESO’s La Silla Observatory in northern Chile.

More information:

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”.

Links:

Photos of the MPG/ESO 2.2-metre telescope: http://www.eso.org/public/images/archive/search/?adv=&subject_name=mpg

Other photos taken with the MPG/ESO 2.2-metre telescope: http://www.eso.org/public/images/archive/search/?adv=&facility=15

Photos of La Silla: http://www.eso.org/public/images/archive/category/lasilla/

Images, Text, Credits: ESO/G. Beccari/IAU and Sky & Telescope/Videos: ESO/G. Beccari/N. Risinger (skysurvey.org). Music: movetwo.

Cheers, Orbiter.ch

mardi 22 juillet 2014

Hubble traces the halo of a galaxy more accurately than ever before












ESA - Hubble Space Telescope logo.

22 July 2014

An in-depth look at the giant elliptical galaxy Centaurus A

Centaurus A halo

Astronomers using the NASA/ESA Hubble Space Telescope have probed the extreme outskirts of the stunning elliptical galaxy Centaurus A. The galaxy’s halo of stars has been found to extend much further from the galaxy’s centre than expected and the stars within this halo seem to be surprisingly rich in heavy elements. This is the most remote portion of an elliptical galaxy ever to have been explored.

There is more to a galaxy than first meets the eye. Extending far beyond the bright glow of a galaxy's centre, the swirling spiral arms, or the elliptical fuzz, is an extra component: a dim halo of stars sprawling into space.

Centaurus A halo annotated

These expansive haloes are important components of a galaxy. The halo of our own galaxy, the Milky Way, preserves signatures of both its formation and evolution. Yet, we know very little about the haloes of galaxies beyond our own as their faint and spread-out nature makes exploring them more difficult. Astronomers have so far managed to detect very few starry haloes around other galaxies.

Now, by utilising the unique space-based location of the NASA/ESA Hubble Space Telescope and its sensitive Advanced Camera for Surveys and Wide Field Camera 3, a team of astronomers has probed the halo surrounding the prominent giant elliptical galaxy Centaurus A [1], also known as NGC 5128, to unprecedented distances. They have found that its halo spreads far further into space than expected and does so in an unexpected form.

Area of Centaurus A halo probed by Hubble

"Tracing this much of a galaxy's halo gives us surprising insights into a galaxy's formation, evolution, and composition," says Marina Rejkuba of the European Southern Observatory in Garching, Germany, lead author of the new Hubble study. "We found more stars scattered in one direction than the other, giving the halo a lopsided shape — which we hadn't expected!"

Along the galaxy's length the astronomers probed out 25 times further than the galaxy's radius — mapping a region some 450 000 light-years across. For the width they explored along 295 000 light-years, 16 times further than its "effective radius" [2]. These are large distances if you consider that the main visible component of the Milky Way is around 120 000 light-years in diameter. In fact, the diameter of the halo probed by this team extends across 4 degrees in the sky — equivalent to eight times the apparent width of the Moon.

Area of Centaurus A halo probed by Hubble

Alongside their unexpected uneven distribution, the stars within the halo also showed surprising properties relating to the proportion of elements heavier than hydrogen and helium found in the gas that makes up the stars. While the stars within the haloes of the Milky Way and other nearby spirals are generally low in heavy elements, the stars within Centaurus A's halo appear to be rich in heavy elements, even at the outermost locations explored.

"Even at these extreme distances, we still haven't reached the edge of Centaurus A's halo, nor have we detected the very oldest generation of stars," adds co-author Laura Greggio of INAF, Italy. "This aged generation is very important. The larger stars from it are responsible for manufacturing the heavy elements now found in the bulk of the galaxy's stars. And even though the large stars are long dead, the smaller stars of the generation still live on and could tell us a great deal."

The small quantity of heavy elements in the stellar haloes of large spiral galaxies like the Milky Way, is thought to originate from the way that the galaxies formed and evolved, slowly pulling in numerous small satellite galaxies and taking on their stars. For Centaurus A, the presence of stars rich in heavy elements in such remote locations suggests a single past merger with a large spiral galaxy. This event would have ejected stars from the spiral galaxy's disc and these are now seen as part of Centaurus A's outer halo.

"Measuring the amount of heavy elements in individual stars in a giant elliptical galaxy such as Centaurus A is uniquely the province of Hubble — we couldn't do it with any other telescope, and certainly not yet from the ground," adds Rejkuba. "These kinds of observations are fundamentally important to understanding the galaxies in the Universe around us."

These results are being published online in Astrophysical Journal on the 22 July and will appear in the 10 August 2014 issue.

Notes:

[1] As it is relatively near to Earth, Centaurus A is prominent in our night sky and is well known for its striking and beautiful appearance (heic1110, opo9814e). To see more about this galaxy, see Hubblecast 46: A tour of Centaurus A.

[2] The effective radius of a galaxy, as referenced here, is the radius of the area in which half of the galaxy’s light is emitted. Astronomers use this effective radius rather than the full radius because the galaxy becomes faint and undefined at its outskirts.

Notes for editors:

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

The international team of astronomers in this study consists of M. Rejkuba (European Southern Observatory, Germany; Excellence Cluster Universe, Germany), W. E. Harris (McMaster University, Canada), L. Greggio (INAF, Italy), G. L. H. Harris (University of Waterloo, Canada), H. Jerjen (Australian National University, Australia), O. A. Gonzalez (European Southern Observatory, Chile).

Links:

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

More on Centaurus A: heic1110, opo9814e and Hubblecast 46: A tour of Centaurus A.:

http://www.spacetelescope.org/news/heic1110/

http://www.spacetelescope.org/images/opo9814e/

http://www.spacetelescope.org/videos/heic1110a/

Research paper online in Astrophysical Journal: http://iopscience.iop.org/2041-8205/791/1/L2

Images, Text, Credits: NASA, ESA & M. Rejkuba (European Southern Observatory) / Digitized Sky Survey, MPG / ESO Acknowledgement: Davide de Martin.

Greetings, Orbiter.ch

NASA's Chandra X-ray Observatory Celebrates 15th Anniversary












NASA - Chandra X-ray Observatory patch.

July 22, 2014


Image above: STS-93 Deployment of Chandra This image of NASA's Chandra X-ray Observatory in Space Shuttle Columbia's payload bay was taken from High Definition Television (HDTV) shot by Columbia Astronaut Mission Specialist Cady Coleman. Image Credit: NASA.

Fifteen years ago, NASA's Chandra X-ray Observatory was launched into space aboard the Space Shuttle Columbia. Since its deployment on July 23, 1999, Chandra has helped revolutionize our understanding of the universe through its unrivaled X-ray vision.

Chandra, one of NASA's current "Great Observatories," along with the Hubble Space Telescope and Spitzer Space Telescope, is specially designed to detect X-ray emission from hot and energetic regions of the universe.


Image above: To celebrate Chandra's 15th anniversary, four newly processed images of supernova remnants have been released. Image Credit: NASA/CXC/SAO.

With its superb sensitivity and resolution, Chandra has observed objects ranging from the closest planets and comets to the most distant known quasars. It has imaged the remains of exploded stars, or supernova remnants, observed the region around the supermassive black hole at the center of the Milky Way, and discovered black holes across the universe. Chandra also has made a major advance in the study of dark matter by tracing the separation of dark matter from normal matter in collisions between galaxy clusters. It is also contributing to research on the nature of dark energy.

To celebrate Chandra's 15th anniversary, four new images of supernova remnants – the Crab Nebula, Tycho, G292.0+1.8, and 3C58 – are being released. These supernova remnants are very hot and energetic and glow brightly in X-ray light, which allows Chandra to capture them in exquisite detail.

Tycho supernova remnant. Image Credit: NASA/CXC/SAO

"Chandra changed the way we do astronomy. It showed that precision observation of the X-rays from cosmic sources is critical to understanding what is going on," said Paul Hertz, NASA's Astrophysics Division director in Washington. "We're fortunate we've had 15 years – so far – to use Chandra to advance our understanding of stars, galaxies, black holes, dark energy, and the origin of the elements necessary for life."

Chandra orbits far above Earth's X-ray absorbing atmosphere at an altitude up to 139,000 km (86,500 mi), allowing for long observations unobscured by Earth's shadow. When it was carried into space in 1999, it was the largest satellite ever launched by the shuttle.

Supernova remnant G292.0+1.8. Image Credit: NASA/CXC/SAO

"We are thrilled at how well Chandra continues to perform," said Belinda Wilkes, director of the Chandra X-ray Center (CXC) in Cambridge, Massachusetts. "The science and operations teams work very hard to ensure that Chandra delivers its astounding results, just as it has for the past decade and a half. We are looking forward to more ground-breaking science over the next decade and beyond."

Chandra X-ray Observatory spacecraft. Image Credit: NASA/CXC

Originally called the Advanced X-ray Astrophysics Facility (AXAF), the telescope was first proposed to NASA in 1976. Prior to its launch aboard the shuttle, the observatory was renamed in honor of the late Indian-American Nobel laureate, Subrahmanyan Chandrasekhar. Known to the world as Chandra (which means "moon" or "luminous" in Sanskrit), he was widely regarded as one of the foremost astrophysicists of the 20th century.

The Crab Nebula. Image Credit: NASA/CXC/SAO

"Chandra continues to be one of the most successful missions that NASA has ever flown as measured against any metric – cost, schedule, technical success and, most of all, scientific discoveries," said Martin Weisskopf, Chandra Project Scientist at the Marshall Space Flight Center in Huntsville, Ala. "It has been a privilege to work on developing and maintaining this scientific powerhouse, and we look forward to many years to come."

To help celebrate this anniversary, Chandra scientists – including former CXC Director, Harvey Tananbaum – will participate in a Google+ Hangout July 22 beginning at 3 p.m. EDT. For more information on this event, visit: http://go.nasa.gov/1jXcXYT

Supernova remnant 3C58. Image Credit: NASA/CXC/SAO

NASA's Marshall Space Flight Center in Huntsville, Alabama, manages the Chandra program for NASA's Science Mission Directorate in Washington. The Smithsonian Astrophysical Observatory in Cambridge, Massachusetts, controls Chandra's science and flight operations.

View all Chandra 15th anniversary photos: http://www.nasa.gov/chandra/news/chandra-15th-anniversary-photos.html

For Chandra images, multimedia and related materials, visit: http://www.nasa.gov/chandra

Additional information on Chandra and the 15th anniversary can be found at: http://chandra.si.edu/15th

Images (mentioned), Text, Credits: NASA / J.D. Harrington / Marshall Space Flight Center / Janet Anderson / Chandra X-ray Center / Megan Watzke.

Best regards, Orbiter.ch

NASA's Fermi Finds A 'Transformer' Pulsar











NASA - Fermi Gamma-ray Space Telescope logo.

July 22, 2014

In late June 2013, an exceptional binary containing a rapidly spinning neutron star underwent a dramatic change in behavior never before observed. The pulsar's radio beacon vanished, while at the same time the system brightened fivefold in gamma rays, the most powerful form of light, according to measurements by NASA's Fermi Gamma-ray Space Telescope.

NASA Fermi Catches a Transformer Pulsar

Video above: Zoom into an artist's concept of AY Sextantis, a binary star system whose pulsar switched from radio emissions to high-energy gamma rays in 2013. This transition likely means the pulsar's spin-up process is nearing its end.

"It's almost as if someone flipped a switch, morphing the system from a lower-energy state to a higher-energy one," said Benjamin Stappers, an astrophysicist at the University of Manchester, England, who led an international effort to understand this striking transformation. "The change appears to reflect an erratic interaction between the pulsar and its companion, one that allows us an opportunity to explore a rare transitional phase in the life of this binary."

A binary consists of two stars orbiting around their common center of mass. This system, known as AY Sextantis, is located about 4,400 light-years away in the constellation Sextans. It pairs a 1.7-millisecond pulsar named PSR J1023+0038 -- J1023 for short -- with a star containing about one-fifth the mass of the sun. The stars complete an orbit in only 4.8 hours, which places them so close together that the pulsar will gradually evaporate its companion.

When a massive star collapses and explodes as a supernova, its crushed core may survive as a compact remnant called a neutron star or pulsar, an object squeezing more mass than the sun's into a sphere no larger than Washington, D.C. Young isolated neutron stars rotate tens of times each second and generate beams of radio, visible light, X-rays and gamma rays that astronomers observe as pulses whenever the beams sweep past Earth. Pulsars also generate powerful outflows, or "winds," of high-energy particles moving near the speed of light. The power for all this comes from the pulsar's rapidly spinning magnetic field, and over time, as the pulsars wind down, these emissions fade.

More than 30 years ago, astronomers discovered another type of pulsar revolving in 10 milliseconds or less, reaching rotational speeds up to 43,000 rpm. While young pulsars usually appear in isolation, more than half of millisecond pulsars occur in binary systems, which suggested an explanation for their rapid spin.

"Astronomers have long suspected millisecond pulsars were spun up through the transfer and accumulation of matter from their companion stars, so we often refer to them as recycled pulsars," explained Anne Archibald, a postdoctoral researcher at the Netherlands Institute for Radio Astronomy (ASTRON) in Dwingeloo who discovered J1023 in 2007.


Images above: These artist's renderings show one model of pulsar J1023 before (top) and after (bottom) its radio beacon (green) vanished. Normally, the pulsar's wind staves off the companion's gas stream. When the stream surges, an accretion disk forms and gamma-ray particle jets (magenta) obscure the radio beam. Image Credit: NASA's Goddard Space Flight Center.

During the initial mass-transfer stage, the system would qualify as a low-mass X-ray binary, with a slower-spinning neutron star emitting X-ray pulses as hot gas raced toward its surface. A billion years later, when the flow of matter comes to a halt, the system would be classified as a spun-up millisecond pulsar with radio emissions powered by a rapidly rotating magnetic field.

To better understand J1023's spin and orbital evolution, the system was regularly monitored in radio using the Lovell Telescope in the United Kingdom and the Westerbork Synthesis Radio Telescope in the Netherlands. These observations revealed that the pulsar's radio signal had turned off and prompted the search for an associated change in its gamma-ray properties.

A few months before this, astronomers found a much more distant system that flipped between radio and X-ray states in a matter of weeks. Located in M28, a globular star cluster about 19,000 light-years away, a pulsar known as PSR J1824-2452I underwent an X-ray outburst in March and April 2013. As the X-ray emission dimmed in early May, the pulsar's radio beam emerged. 

While J1023 reached much higher energies and is considerably closer, both binaries are otherwise quite similar. What's happening, astronomers say, are the last sputtering throes of the spin-up process for these pulsars.

In J1023, the stars are close enough that a stream of gas flows from the sun-like star toward the pulsar. The pulsar's rapid rotation and intense magnetic field are responsible for both the radio beam and its powerful pulsar wind. When the radio beam is detectable, the pulsar wind holds back the companion's gas stream, preventing it from approaching too closely. But now and then the stream surges, pushing its way closer to the pulsar and establishing an accretion disk.

Gas in the disk becomes compressed and heated, reaching temperatures hot enough to emit X-rays. Next, material along the inner edge of the disk quickly loses orbital energy and descends toward the pulsar. When it falls to an altitude of about 50 miles (80 km), processes involved in creating the radio beam are either shut down or, more likely, obscured.

Fermi Gamma-ray Space Telescope. Image Credit: NASA's Goddard Space Flight Center

The inner edge of the disk probably fluctuates considerably at this altitude. Some of it may become accelerated outward at nearly the speed of light, forming dual particle jets firing in opposite directions -- a phenomenon more typically associated with accreting black holes. Shock waves within and along the periphery of these jets are a likely source of the bright gamma-ray emission detected by Fermi.

The findings were published in the July 20 edition of The Astrophysical Journal. The team reports that J1023 is the first example of a transient, compact, low-mass gamma-ray binary ever seen. The researchers anticipate that the system will serve as a unique laboratory for understanding how millisecond pulsars form and for studying the details of how accretion takes place on neutron stars.

"So far, Fermi has increased the number of known gamma-ray pulsars by about 20 times and doubled the number of millisecond pulsars within in our galaxy," said Julie McEnery, the project scientist for the mission at NASA's Goddard Space Flight Center in Greenbelt, Maryland. "Fermi continues to be an amazing engine for pulsar discoveries."

Related Links:

Paper: "A State Change In The Missing Link Binary Pulsar System PSR J1023+0038": http://iopscience.iop.org/0004-637X/790/1/39?rel=ref&relno=1

Paper: "A Radio Pulsar/X-ray Binary Link": http://arxiv.org/abs/0905.3397

"Astronomers Uncover a 'Transformer' Pulsar" (09.25.2013): http://www.nasa.gov/content/goddard/astronomers-uncover-a-transformer-pulsar/

Interactive: Fermi Pulsar Explorer: http://www.nasa.gov/externalflash/fermipulsar/

List of rotation- and accretion-powered millisecond pulsars: http://apatruno.wordpress.com/about/millisecond-pulsar-catalogue/

Images (mentioned), Video (mentioned), Text, Credits: NASA's Goddard Space Flight Center / Francis Reddy.

Greetings, Orbiter.ch

The Heart of an Astronaut, Five Years On












ISS - Expedition 40 Mission patch.

July 22, 2014

The heart of an astronaut is a much-studied thing. Scientists have analyzed its blood flow, rhythms, atrophy and, through journal studies, even matters of the heart. But for the first time, researchers are looking at how oxidative stress and inflammation caused by the conditions of space flight affect those hearts for up to five years after astronauts fly on the International Space Station. Lessons learned may help improve cardiovascular health on Earth as well.

Oxidative stress reflects an imbalance in the body’s ability to handle toxic byproducts from normal, oxygen-consuming cell metabolism. This imbalance produces peroxides and free radicals, which contribute to a number of degenerative conditions. Evidence indicates that oxidative stress and resulting inflammation can accelerate the development of atherosclerosis, a disease in which plaque builds up inside arteries. This disease can lead to heart attacks and strokes.


Image above: JAXA astronaut Koichi Wakata, Expedition 38 Flight Engineer, demonstrates the ultrasound used to collect data for the Cardio Ox investigation, in the Columbus Module. Image Credit: NASA.

For this investigation, called Cardio Ox, researchers at NASA’s Johnson Space Center in Houston will look at the function and structure of arteries along with specific biomarkers in the blood and urine that indicate inflammation and oxidative stress. These biological samples will be taken from astronauts before their launch, 15 and 60 days after launch, 15 days before returning to Earth, and within days after landing.

The crew will also take ultrasound scans of the carotid artery thickness and brachial artery dilation, recognized indicators of cardiovascular health, at the same time points, for comparison with the biomarkers. The same measurements will be taken and ultrasounds performed at the regular check-ups that all astronauts have one, three and five years after flight.

“This is the first cardiovascular study to cover such a long period,” said Steven Platts, Ph.D., principal investigator. The data will create a picture over time, allowing researchers to examine whether blood vessel changes seen during flight returned to normal sometime after flight. They’ll also be able to determine if the effects of oxidative stress grow worse over time or if astronauts experience chronic inflammation post-flight.

Many studies have looked at oxidative stress on Earth, but only astronauts are simultaneously exposed to so many factors known to cause it. The unique environment of a space mission combines a number of factors that can increase the risk of oxidative damage and inflammation, including radiation, psychological stress, reduced physical activity and, in the case of extravehicular activity, increased oxygen exposure.


Image above: NASA astronaut Reid Wiseman, currently a flight engineer aboard the International Space Station, during prelaunch ground training for use of the Ultrasound-2 device which is used for the Cardio Ox study. Image Credit: NASA.

“It’s a perfect storm of things known to cause oxidative stress all happening at the same time,” Platts explained. “So this study will enable us to answer some important questions, such as, do these factors work together to make things worse? Are any of them at high enough exposure to cause damage?” Knowing more about how space may cause changes in cardiovascular health will help scientists develop measures to counter its negative effects, in space and on Earth.

The pre-flight data provide a snapshot of an astronaut’s cardiovascular health before exposure to the space environment, which then makes it reasonable to assume that any changes are caused by exposure to the space environment and not by other factors. Other studies have looked at specific factors such as mental stress or exercise and their relationship to oxidative damage, but the space station provides a unique opportunity to integrate a variety of causes in a single person.

Typically, a study eliminates all variables except one and examines that one, but this investigation looks at how the entire workplace environment affects the body. The same factors also affect people in unique Earth-bound job environments, such as long-haul jet pilots or train engineers, those who work in a small room all day at a radiation plant, or in unique conditions such as Antarctica. Such situations subject people to stress similar to that experienced by astronauts. The disruption of daily rhythm and sleep patterns experienced in space could be extrapolated to shift workers on Earth as well.

Astronaut Scott Kelly participated in the investigation during his time in orbit and recently completed his one-year post-flight checkup. The study is continuing aboard the station, and a total of 12 astronauts in all will participate during the five-year investigation. You could say the subjects are really putting their hearts into it.

Related links:

Cardio Ox investigation: http://www.nasa.gov/mission_pages/station/research/experiments/931.html

NASA's Johnson Space Center: http://www.nasa.gov/centers/johnson/home/index.html#.U2EBk1eUOgV

For more information about the International Space Station and its current crew, visit http://www.nasa.gov/station/

Images (mentioned), Text, Credits: NASA Johnson Space Center / International Space Station Program Office / Melissa Gaskill.

Cheers, Orbiter.ch

First launch test for Angara rocket












ROSCOSMOS logo.

July 22, 2014

Angara roll-out to the launch-pad

The program for the first flight space rocket designed in modern Russia is ready. But there is still a lot of work. Out from the factory floor to the Plesetsk Cosmodrome is coming out the next Angara. In December, a satellite will be sent into orbit already as a layout - it will be a new testing stage/phase.

A historical start. Here begins the life of rocketAngara, which comes to replace the heavy veteran"Proton". It is stronger, more ecological and more versatile. Dmitry Rogozin, Russian Deputy Prime Minister, speaks more about it:"As long as we associate the rocket Angara at first with the Eastern Cosmodrome, and because this is a developing area in the territory of the Far East, it is necessary to say that it is environmentally friendly rocket and it works on a clean fuel."


Image above: Russia's first Angara rocket launches on its first test flight from the country's Plesetsk Cosmodrome on July 9, 2014. The mission launched a dummy payload into orbit during the demonstration flight.

The Angara rocket, which Russia has been developing for more than 20 years, blasted off from Plesetsk Cosmodrome in northwestern Russia Wednesday (July 9) at 4:00 p.m. local time (8:00 a.m. EDT; 1200 GMT), carrying a dummy payload on its maiden flight. The mission was a suborbital test launch only, and did not carry its payload all the way into orbit.

"We reached the right speed, the rocket flew to the point at which it was planned, on the Kamchatka Peninsula, fell almost midfield", says the General Designer of "Salute", Khrunichev Yuri Bahvalov, "So the program was carried out in its fullest potential".

First launch test of the Angara rocket

From the Cosmodrome, "Vostochnoi" will start even more powerful Angara. If the first flight was with a light rocket, in December in space will be sent indeed a heavy modification. In fact, Angara is not just one but four rockets. Literally the cubes of universal modules (or as they are called "URMy") can collect rockets with a capacity from 4 to 35 tons. What is more, the start complex is an universal one.

In 2008 the engines Angara received for the first time on tests a command "key to start". Last year, the first stage of Angara sent into orbit Korean rocket KSLV as an international cooperation with Russia.

Angara rocket technical characteristics

"Similar schemes have been used in the past, but in its pure form, we implement a modular scheme for the first time", says Yuri Bahvalov, "and by the way, incidentally, Chinese now are following us. The French soon want to go after us and the Americans as well. Here, there is a full modular scheme and, in general, what we have done is for the the first time in the world."

The first flight of the space rocket, designed in contemporary Russia represents after all a significant event. But there is still a lot of work in the first place, the creation of the most powerful modification Angara - A7. And perhaps not only the Angara.

Angara rocket family

"We have ambitious plans and behind these ambitious plans should be the right opportunities", says the head of the Federal Space Agency Oleg Ostapenko, "One powerful booster rocket - it is an opportunity to achieve whatever is not done yet. It is necessary to create an impulse for the future generations. Working for today - probably it would be, to put it mildly, incorrect."

For the decades ahead in the Russian space program there are flights to the moon and Mars. That means the heavy and possibly the extra-heavy Angara may go behind in the history as a rocket for interplanetary missions.

ROSCOSMOS Press Release: http://www.federalspace.ru/20782/

Images, Video, Text, Credits: ROSCOSMOS Press Service / ROSCOSMOS TV / Russian Ministry of Defense / Khrunichev State Research and Production Space Center / Translation: Orbiter.ch Aerospace (Eli & Philippe Borowek).

Best regards, Orbiter.ch