jeudi 24 juillet 2014

Hubble Finds Three Surprisingly Dry Exoplanets











NASA - Hubble Space Telescope patch.

July 24, 2014

Astronomers using NASA's Hubble Space Telescope have gone looking for water vapor in the atmospheres of three planets orbiting stars similar to the sun -- and have come up nearly dry.

The three planets, known as HD 189733b, HD 209458b, and WASP-12b, are between 60 and 900 light-years away from Earth and were thought to be ideal candidates for detecting water vapor in their atmospheres because of their high temperatures where water turns into a measurable vapor.

These so-called “hot Jupiters” are so close to their star they have temperatures between 1,500 and 4,000 degrees Fahrenheit, however, the planets were found to have only one-tenth to one one-thousandth the amount of water predicted by standard planet-formation theories.

"Our water measurement in one of the planets, HD 209458b, is the highest-precision measurement of any chemical compound in a planet outside our solar system, and we can now say with much greater certainty than ever before that we've found water in an exoplanet," said Nikku Madhusudhan of the Institute of Astronomy at the University of Cambridge, England. "However, the low water abundance we have found so far is quite astonishing."

Madhusudhan, who led the research, said that this finding presents a major challenge to exoplanet theory. "It basically opens a whole can of worms in planet formation. We expected all these planets to have lots of water in them. We have to revisit planet formation and migration models of giant planets, especially “hot Jupiters,” and investigate how they're formed."


Image above: This is an artistic illustration of the gas giant planet HD 209458b in the constellation Pegasus. To the surprise of astronomers, they have found much less water vapor in the hot world’s atmosphere than standard planet-formation models predict. Image Credit: NASA, ESA, G. Bacon (STScI) and N. Madhusudhan (UC).

He emphasizes that these results may have major implications in the search for water in potentially habitable Earth-sized exoplanets. Instruments on future space telescopes may need to be designed with a higher sensitivity if target planets are drier than predicted. "We should be prepared for much lower water abundances than predicted when looking at super-Earths (rocky planets that are several times the mass of Earth)," Madhusudhan said.

Using near-infrared spectra of the planets observed with Hubble, Madhusudhan and his collaborators estimated the amount of water vapor in each of the planetary atmospheres that explains the data.

The planets were selected because they orbit relatively bright stars that provide enough radiation for an infrared-light spectrum to be taken. Absorption features from the water vapor in the planet's atmosphere are detected because they are superimposed on the small amount of starlight that glances through the planet's atmosphere.

Detecting water is almost impossible for transiting planets from the ground because Earth's atmosphere has a lot of water in it, which contaminates the observation. "We really need the Hubble Space Telescope to make such observations," said Nicolas Crouzet of the Dunlap Institute at the University of Toronto and co-author of the study.

Hubble orbiting Earth

The currently accepted theory on how giant planets in our solar system formed, known as core accretion, states a planet is formed around the young star in a protoplanetary disk made primarily of hydrogen, helium, and particles of ices and dust composed of other chemical elements. The dust particles stick to each other, eventually forming larger and larger grains. The gravitational forces of the disk draw in these grains and larger particles until a solid core forms. This then leads to runaway accretion of both solids and gas to eventually form a giant planet.

This theory predicts that the proportions of the different elements in the planet are enhanced relative to those in its star, especially oxygen, which is supposed to be the most enhanced. Once the giant planet forms, its atmospheric oxygen is expected to be largely encompassed within water molecules. The very low levels of water vapor found by this research raise a number of questions about the chemical ingredients that lead to planet formation.

"There are so many things we still don't know about exoplanets, so this opens up a new chapter in understanding how planets and solar systems form," said Drake Deming of the University of Maryland, who led one of the precursor studies. "The problem is that we are assuming the water to be as abundant as in our own solar system. What our study has shown is that water features could be a lot weaker than our expectations."

The findings are published July 24 in The Astrophysical Journal Letters.

The Hubble Space Telescope is a project of international cooperation between NASA and the European Space Agency. NASA's Goddard Space Flight Center in Greenbelt, Maryland, manages the telescope. The Space Telescope Science Institute (STScI) in Baltimore conducts Hubble science operations. STScI is operated for NASA by the Association of Universities for Research in Astronomy, Inc., in Washington.

For images and more information about Hubble, visit: http://www.nasa.gov/hubble and http://hubblesite.org/news/2014/36 and http://www.spacetelescope.org

Image (mentioned), Video, Text, Credits: ESA / NASA / J.D. Harrington / Space Telescope Science Institute / Ray Villard.

Cheers, Orbiter.ch

Report on the work of the spacecraft Foton-M









ROSCOSMOS patch.

24.07.2014

July 19 at 00 hours 50 minutes Moscow time from the launch complex of the platform number 31 took the Baikonur cosmodrome launch rocket Soyuz-2.1a with the scientific technological spacecraft Foton-M4.

Soyuz-2.1a with Foton-M4 launch

In accordance with cyclogram flight 00 hours 58 minutes spacecraft Foton-M (production of Rocket and Space Center Progress, Samara) was launched into orbit.

After a few turns was broken ground control communications with the spacecraft Foton-M4 via issuing commands. On board the spacecraft telemetry data received on the operation of all systems, held its processing and analysis.

Foton-M spacecraft

The results show that all the satellite service systems operating in strict accordance with the logic of the onboard complex control of this unit.

Design and on-board the spacecraft Foton-M4 and allow for long-term performance of its operation in standalone mode.

Now experts primary operative management group is working on the restoration of communications with the spacecraft.

ROSCOSMOS Press Release: http://www.federalspace.ru/20797/

Related links:

Spacecraft Foton-M 4 successfully launched: http://orbiterchspacenews.blogspot.ch/2014/07/spacecraft-foton-m-4-successfully.html

For more information about Foton-M4, visit (in Russian) - Научный технологический космический аппарат «Фотон-М» № 4: http://www.federalspace.ru/20669/

Images, Text, Credits: Roscosmos press service / ROSCOSMOS / Translation: Orbiter.ch Aeropsace.

Greetings, Orbiter.ch

mercredi 23 juillet 2014

Spacecraft Canopus-V - the third year in orbit












ROSCOSMOS logo.

07/23/2014

Today, July 22 marks two years since the successful launch small spacecraft (ICA) "Canopus-In № 1".

Canopus-V (465 kg) is the first Russian spacecraft high-precision remote sensing (2.1 m panchromatic and 10.5 m in multispectral mode) of the new generation, designed for operational monitoring of man-made and natural disasters and created JSC "Corporation" VNIIEM "under the Federal Space program.

Currently Canopus-V operates regular shooting target areas the Earth's surface. Information received from the satellite, active demand by Russian and foreign consumers and used to solve practical problems: mapping; monitoring technological and natural disasters, including extreme weather events (flood mapping, detection and monitoring of forest fires, major pollutant emissions, etc.); evaluation snowy areas; assess ice conditions in the polar regions; inventory of agricultural land, crop condition monitoring, evaluation debris, identify pests and diseases of crops, crop yield forecasting; inventory control and infrastructure construction; environmental monitoring areas; perform scaffolding work, control and monitoring of forest and other forests. In particular, information from the spacecraft Canopus-V has been successfully used to assess the situation in the disaster areas, control of potentially dangerous objects and territories in areas of high risk of disaster, monitoring wildfires.

"Canopus-In № 1" or Canopus-V spacecraft

Within two years of successful operation was worked out more than 6000 routes taken, with the total area of ​​coverage of the surface of the Earth is more than 40 million square meters. km.

The spacecraft was built on the basis of modularity (service platform and payload). Inside platform MCA Canopus-V is universal and allows the payload for different purposes (for remote sensing survey equipment, scientific equipment for space research, etc.). Which will in the short term to create new spacecraft for various purposes with minimal costs.

Confirmation of the above is to create specialists of JSC "Corporation" VNIIEM "on the basis of the official platform has two spacecraft: MCA remote sensing for detection of small forest fires "Canopus-B-IR" commissioned by the Federal Space Agency and the ICA scientific purposes" Mikhail Lomonosov "that is created in collaboration with scientists MSU. MV University (SINP).

According to experts created and commissioned small spacecraft high spatial resolution of the new generation Canopus-V world standard spacecraft of this class meets the requirements of consumers and has no analogues in Russia.

Example of using pictures ICA to solve practical problems:

Monitoring flooding in the Altai Territory, 2014
 
Satellite monitoring of burned areas, 2013
 
Scheme covering materials SC shooting in the period from October 2012 to March 2014
 
Picture with ICA, Moscow

ROSOCOSMOS Press Release: http://www.federalspace.ru/20787/

Images, Text, Credits: Roscosmos press service /ROSCOSMOS / Tramslation: Orbiter.ch Aerospace.

Greetings, Orbiter.ch

Cargo Ship Docks to Station Less Than Six Hours After Launch











ROSCOSMOS - Russian Vehicles patch.

July 23, 2014

The ISS Progress 56 resupply spacecraft, packed with almost three tons of cargo, automatically docked to the International Space Station’s Pirs docking compartment at 11:31 p.m. EDT Wednesday, less than six hours after its launch from the Baikonur Cosmodrome in Kazakhstan.

At the time of docking, the station was soaring 259 miles over the Pacific Ocean off the west coast of South America.

 New Russian Supply Ship Arrives at the ISS

The Soyuz rocket carrying Progress 56 launched from Baikonur at 5:44 p.m. (3:44 a.m., Baikonur time) to send the cargo ship on its expedited, 4-orbit trek to the station.

The new Progress is loaded with 1,764 pounds of propellant, 48 pounds of oxygen, 57 pounds of air, 926 pounds of water and 2,910 pounds of spare parts, experiment hardware and other supplies for the Expedition 38 crew. Expedition 40 Flight Engineers Alexander Skvortsov and Max Suraev will open the hatch to Progress Thursday morning to begin unloading the cargo.


Image above: The ISS Progress 56 cargo ship approaches the International Space Station for docking. Image Credit: NASA TV.

The ISS Progress 55 cargo craft, which undocked from Pirs on Monday, is now a safe distance from the complex for a series of engineering tests prior to being sent to a destructive re-entry over the Pacific Ocean on July 31.

The station’s crew began the workday at 6 a.m. Wednesday, four hours later than the usual 2 a.m. reveille to accommodate the late-night arrival of Progress.

Commander Steve Swanson and Flight Engineer Alexander Gerst participated in more Ocular Health exams as flight surgeons track the vision health of the astronauts aboard the station. NASA recently identified that some astronauts experience changes in their vision, which might be related to effects of microgravity on the cardiovascular system. Researchers are working to understand and prevent these changes in astronauts. With guidance from the Ocular Health team on the ground, Gerst performed an ultrasound scan of Swanson’s eyes. Flight Engineer Reid Wiseman then pitched in to help out with Wednesday’s exams and conducted an ultrasound scan of Gerst’s eyes. Swanson and Gerst later measured each other’s blood pressure and collected electrocardiogram data for Ocular Health.

Swanson also temporarily removed the Multi-user Droplet Combustion Apparatus from the Combustion Integrated Rack’s combustion chamber to replace some igniter tips.

The commander then moved on to assist Wiseman, who was participating in another round of data collection for the Sprint exercise study. Sprint measures the effectiveness of high-intensity, low-volume exercise training in minimizing the loss of muscle mass and bone density that occurs during spaceflight. Station crew members currently work out around 2 ½-hours every day, and the Sprint team is looking into ways to reduce that total exercise time while maintaining crew fitness

Wiseman also set up and photographed new test samples for the Binary Colloidal Alloy Test, or BCAT. Results from this ongoing investigation of colloids – mixtures of small particles distributed throughout a liquid – will help materials scientists to develop new consumer products with unique properties and longer shelf lives.

For the ongoing Burning And Suppression of Solids experiment, or BASS, Gerst conducted a series of flame tests at reduced oxygen pressure to get a stable blue flame for a longer period of time. Housed inside the station’s Microgravity Science Glovebox, BASS is investigating the hypothesis that some materials may actually become more flammable in space. Results from BASS will help screen materials for their use aboard future spacecraft. The research also provides scientists with improved computational models that will aid in the design of fire detection and suppression systems both in space and here on Earth.

Gerst also used several dermatology tools on his forearm to collect data for the Skin B experiment, which investigates the accelerated aging of skin that seems to occur during spaceflight. Results from this study will improve the understanding of the mechanisms of skin aging as well as provide insight into the aging process of similar body tissues.


Image above: The ISS Progress 56 cargo craft launches from the Baikonur Cosmodrome in Kazakhstan.Image Credit: NASA TV.

On the Russian side of the station, Suraev and Flight Engineer Oleg Artemyev began the day with an examination of the veins in their lower legs to provide data on the body’s adaption to long-duration spaceflight.

With Progress 56 slated to arrive at the station well-past the crew’s usual bedtime, all three Russian cosmonauts aboard the station took a 4-hour nap at beginning 12:30 p.m.

The station also conducted a “deboost” Wednesday morning to steer clear of some space debris.

The engines of the station’s Zvezda service module conducted a 32-second firing at 6:57 a.m. EDT to slightly lower the orbit of the complex and steer clear of a fragment of debris from a Russian Breeze-M upper stage used in the launch of a Russian satellite in December 2011.

The “deboost” of the station was coordinated between NASA and Russian flight controllers after tracking data confirmed that the fragment would have posed a high probability of a conjunction with the station. Although last-minute tracking data indicated that the fragment would have passed a safe distance away from the station, flight controllers elected to proceed with the engine firing since it would have no impact on other activities. Earlier data indicated that if no maneuver would have been conducted, the fragment would have made its closest approach to the station at 9:16 a.m. with an estimated radial miss distance of just 1/10 of a mile and an overall miss distance of 3.6 miles.

The maneuver lowered the station’s orbit by 1.1 statute miles at apogee and 1/10 of a statute mile at perigee and left the station in an orbit of 258.8 x 256.9 statute miles.

The conjunction posed no threat to the crew, had no impact on station operations or the launch of Progress 56.

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

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

Best regards, Orbiter.ch

NEOWISE Spots a Comet That Looked Like an Asteroid











NASA - NEOWISE Mission logo.

July 23, 2014


Image above: Comet C/2013 UQ4 (Catalina) appeared to be a highly active comet one day past perihelion on July 7, 2014. Image Credit: NASA/JPL-Caltech.

Comet C/2013 UQ4 (Catalina) has been observed by NASA’s Near-Earth Object Wide-field Infrared Survey Explorer (NEOWISE) spacecraft just one day after passing through its closest approach to the sun. The comet glows brightly in infrared wavelengths, with a dust tail streaking more than 62,000 miles (100,000 kilometers) across the sky. Its spectacular activity is driven by the vaporization of ice that has been preserved from the time of planet formation 4.5 billion years ago.

"The tail forms a faint fan as the smaller dust particles are more easily pushed away from the sun by the radiation pressure of the sunlight," said James Bauer, researcher at NASA’s Jet Propulsion Laboratory in Pasadena, California.

C/2013 UQ4 takes more than 450 years to orbit the sun once and spends most of its time far away at very low temperatures. Its orbit is also retrograde, which means that the comet moves around the sun in the opposite direction to the planets and asteroids.


Image above: Comet C/2013 UQ4 (Catalina) first looked like an asteroid when NASA’s NEOWISE team first observed it on December 31, 2013. These exposures were taken that day, when the comet was at a distance of about 2.9 AU from the sun. Image Credit: NASA/JPL-Caltech.

The comet was originally thought to be an asteroid, as it appeared inactive when discovered by the Catalina Sky Survey on October 23, 2013. NEOWISE also observed the comet to be inactive on New Year's Eve, 2013, but since then the comet has become highly active, allowing astronomers around the world to observe it. The comet's activity should decline as it once again returns to the cold recesses of space.

NEOWISE spacecraft. Image Credit: NASA/JPL-Caltech

NASA’s Jet Propulsion Laboratory manages the NEOWISE mission for NASA's Science Mission Directorate in Washington. The Space Dynamics Laboratory in Logan, Utah, built the science instrument. Ball Aerospace & Technologies Corp. of Boulder, Colo., built the spacecraft. Science operations and data processing take place at the Infrared Processing and Analysis Center at the California Institute of Technology in Pasadena. Caltech manages JPL for NASA. For more information about NEOWISE, visit: http://www.nasa.gov/neowise

Images (mentioned), Text, Credits: NASA / JPL / Elizabeth Landau.

Regards, Orbiter.ch

The Most Precise Measurement of an Alien World's Size














NASA - Spitzer Space Telescope patch / NASA - Kepler Space Telescope patch.

July 23, 2014


Image above: Using data from NASA's Kepler and Spitzer Space Telescopes, scientists have made the most precise measurement ever of the size of a world outside our solar system, as illustrated in this artist's conception. Image Credit: NASA/JPL-Caltech.

Thanks to NASA's Kepler and Spitzer Space Telescopes, scientists have made the most precise measurement ever of the radius of a planet outside our solar system. The size of the exoplanet, dubbed Kepler-93b, is now known to an uncertainty of just 74 miles (119 kilometers) on either side of the planetary body.

The findings confirm Kepler-93b as a "super-Earth" that is about one-and-a-half times the size of our planet. Although super-Earths are common in the galaxy, none exist in our solar system. Exoplanets like Kepler-93b are therefore our only laboratories to study this major class of planet.

With good limits on the sizes and masses of super-Earths, scientists can finally start to theorize about what makes up these weird worlds. Previous measurements, by the Keck Observatory in Hawaii, had put Kepler-93b's mass at about 3.8 times that of Earth. The density of Kepler-93b, derived from its mass and newly obtained radius, indicates the planet is in fact very likely made of iron and rock, like Earth.

"With Kepler and Spitzer, we've captured the most precise measurement to date of an alien planet's size, which is critical for understanding these far-off worlds," said Sarah Ballard, a NASA Carl Sagan Fellow at the University of Washington in Seattle and lead author of a paper on the findings published in the Astrophysical Journal.

"The measurement is so precise that it's literally like being able to measure the height of a six-foot tall person to within three quarters of an inch -- if that person were standing on Jupiter," said Ballard.

Kepler-93b orbits a star located about 300 light-years away, with approximately 90 percent of the sun's mass and radius. The exoplanet's orbital distance -- only about one-sixth that of Mercury's from the sun -- implies a scorching surface temperature around 1,400 degrees Fahrenheit (760 degrees Celsius). Despite its newfound similarities in composition to Earth, Kepler-93b is far too hot for life.

Spitzer space telescope. Image Credit: NASA/JPL-Caltech

To make the key measurement about this toasty exoplanet's radius, the Kepler and Spitzer telescopes each watched Kepler-93b cross, or transit, the face of its star, eclipsing a tiny portion of starlight. Kepler's unflinching gaze also simultaneously tracked the dimming of the star caused by seismic waves moving within its interior. These readings encode precise information about the star's interior. The team leveraged them to narrowly gauge the star's radius, which is crucial for measuring the planetary radius.

Spitzer, meanwhile, confirmed that the exoplanet's transit looked the same in infrared light as in Kepler's visible-light observations. These corroborating data from Spitzer -- some of which were gathered in a new, precision observing mode -- ruled out the possibility that Kepler's detection of the exoplanet was bogus, or a so-called false positive.

Taken together, the data boast an error bar of just one percent of the radius of Kepler-93b. The measurements mean that the planet, estimated at about 11,700 miles (18,800 kilometers) in diameter, could be bigger or smaller by about 150 miles (240 kilometers), the approximate distance between Washington, D.C., and Philadelphia.

Spitzer racked up a total of seven transits of Kepler-93b between 2010 and 2011. Three of the transits were snapped using a "peak-up" observational technique. In 2011, Spitzer engineers repurposed the spacecraft's peak-up camera, originally used to point the telescope precisely, to control where light lands on individual pixels within Spitzer's infrared camera.

Kepler space telescope. Image Credit: NASA / JPL-Caltech

The upshot of this rejiggering: Ballard and her colleagues were able to cut in half the range of uncertainty of the Spitzer measurements of the exoplanet radius, improving the agreement between the Spitzer and Kepler measurements.

"Ballard and her team have made a major scientific advance while demonstrating the power of Spitzer's new approach to exoplanet observations," said Michael Werner, project scientist for the Spitzer Space Telescope at NASA's Jet Propulsion Laboratory, Pasadena, California.

JPL manages the Spitzer Space Telescope mission for NASA's Science Mission Directorate, Washington. Science operations are conducted at the Spitzer Science Center at the California Institute of Technology in Pasadena. Spacecraft operations are based at Lockheed Martin Space Systems Company, Littleton, Colorado. Data are archived at the Infrared Science Archive housed at the Infrared Processing and Analysis Center at Caltech. Caltech manages JPL for NASA.

NASA's Ames Research Center in Moffett Field, California, is responsible for Kepler's ground system development, mission operations and science data analysis. JPL managed Kepler mission development. Ball Aerospace & Technologies Corp. in Boulder, Colorado, developed the Kepler flight system and supports mission operations with the Laboratory for Atmospheric and Space Physics at the University of Colorado in Boulder. The Space Telescope Science Institute in Baltimore archives, hosts and distributes Kepler science data. Kepler is NASA's 10th Discovery Mission and was funded by the agency's Science Mission Directorate.

For more information about the Kepler mission, visit: http://www.nasa.gov/kepler

For more information about Spitzer, visit: http://spitzer.caltech.edu and http://www.nasa.gov/spitzer

Images (mentioned), Text, Credits: NASA / JPL / Whitney Clavin.

Greetings, Orbiter.ch

International Space Station orbit changed












ISS - International Space Station patch.

07/03/2014

July 23, 2014 an exceptional correction orbit of the International Space Station, the purpose of which was the creation of a safe flight path station.

 Zvezda description (ISS module)

In accordance with the information received from the service ballistic and navigation support MCC TsNIIMash today in 14 hours 57 minutes Moscow time included engines service module "Zvezda" who worked 30 seconds. As a result, the average height of the ISS orbit decreased by 800 m and reached 422 km.

International Space Station (ISS)

According to the service ballistic and navigation support MCC after maneuvering the ISS orbit parameters will be:

- Minimum height - 415.3 km;
- Maximum height - 430 km;
- Period - 92.82 min;
- Inclination - 51,6 °.

Image, Text, Credits: Roscosmos press service / ROSCOSMOS / Wikipedia / NASA / Translation: Orbiter.ch Aerospace.

Cheers, Orbiter.ch