mardi 12 février 2013

Mars Rock Takes Unusual Form












NASA - Mars Science Laboratory (MSL) patch.

Feb. 12, 2013


Image above: A shiny-looking Martian rock is visible in this image taken by NASA's Mars rover Curiosity's Mast Camera (Mastcam) during the mission's 173rd Martian day, or sol (Jan. 30, 2013). Image credit: NASA/JPL-Caltech/Malin Space Science Systems.

On Mars, as on Earth, sometimes things can take on an unusual appearance. A case in point is a shiny-looking rock seen in a recent image from NASA's Curiosity Mars rover.

Some casual observers might see a resemblance to a car door handle, hood ornament or some other type of metallic object. To Ronald Sletten of the University of Washington, Seattle, a collaborator on Curiosity's science team, the object is an interesting study in how wind and the natural elements cause erosion and other effects on various types of rocks.

Find out what likely caused the shiny appearance of the Martian rock, and see some examples of similar phenomena found on Earth. A PDF of the images and explanatory text is available at: http://www.jpl.nasa.gov/images/msl/20130211/ventifacts.pdf

Curiosity Rover's Self Portrait at 'John Klein' Drilling Site, Cropped


Image above: This rectangular version of a self-portrait of NASA's Mars rover Curiosity combines dozens of exposures taken by the rover's Mars Hand Lens Imager (MAHLI) during the 177th Martian day, or sol, of Curiosity's work on Mars (Feb. 3, 2013).

The rover is positioned at a patch of flat outcrop called "John Klein," which was selected as the site for the first rock-drilling activities by Curiosity. The self-portrait was acquired to document the drilling site.

The rover's robotic arm is not visible in the mosaic. MAHLI, which took the component images for this mosaic, is mounted on a turret at the end of the arm. Wrist motions and turret rotations on the arm allowed MAHLI to acquire the mosaic's component images. The arm was positioned out of the shot in the images or portions of images used in the mosaic.

Malin Space Science Systems, San Diego, developed, built and operates MAHLI. NASA's Jet Propulsion Laboratory, Pasadena, Calif., manages the Mars Science Laboratory Project and the mission's Curiosity rover for NASA's Science Mission Directorate in Washington. The rover was designed and assembled at JPL, a division of the California Institute of Technology in Pasadena. Image Credit:NASA/JPL-Caltech/MSSS.

JPL manages the project for NASA's Science Mission Directorate in Washington.

For images and more information about the mission, visit: http://www.nasa.gov/msl and http://mars.jpl.nasa.gov/msl/ .

You can follow the mission on Facebook and Twitter at: http://www.facebook.com/marscuriosity and http://www.twitter.com/marscuriosity

Images (mentioned), Text, Credits: NASA / JPL / Guy Webster.

Cheers, Orbiter.ch

Five years of unique science on Columbus‏













ESA - Columbus Contributors patch / ESA - Columbus Mission logo.

Feb. 12, 2013

 Installing Columbus

Since Europe’s Columbus laboratory module was attached to the International Space Station five years ago, it has offered researchers worldwide the opportunity to conduct science beyond the effects of gravity.

A total of 110 ESA-led experiments involving some 500 scientists have been conducted since 2008, spanning fluid physics, material sciences, radiation physics, the Sun, the human body, biology and astrobiology.

The Space Station allows researchers to play with a force that is fixed on Earth: gravity. ‘Turning off’ gravity and performing experiments in space over long periods can reveal the inner workings of natural phenomena.

Installing Colloid

“We focus research on achieving scientific discoveries, developing applications and benefitting people on Earth while preparing for future space exploration,” explains Martin Zell, responsible for ESA’s utilisation of the European orbital laboratory.

Studying colloids – tiny particles in liquids – is one area of research hampered by gravity. Colloids are found in many liquids such as milk, paint and even in our bodies, yet they are so small you need an electron microscope to study them. At this scale, gravity will always influence the results, but in space experiments can be run repeatedly without interference.

ESA Columbus cutaway & description

The Colloid experiment on Columbus has shown how ‘quantum forces’ can be used to control colloid structures. It confirmed the effect of these forces as predicted theoretically over 30 years ago, but observed for the first time in 2008. The findings are part of the building blocks for creating nanomaterials.

Eating on Station

Research inside Columbus is also helping scientists to understand the human body. Astronauts in space absorb more salt without absorbing more fluids – contradicting generally accepted medical knowledge.

It turns out that high-salt diets seem to be causing bone loss in astronauts. Until now, bone loss was thought to be caused by the physical effect of living in weightlessness. This new result has implications for people suffering from osteoporosis on Earth.

André Kuipers freezing samples

Delving deeper, cell research is offering clues on how to control ageing. The Roald biology experiment revealed that certain enzymes in our immune systems are more active in space, showing scientists on the ground where to look to combat premature cell death.

There are also experiments mounted outside of the Columbus module. The first of a series of Expose experiments has shown that living organisms can survive space travel.

Removing outside experiment from Columbus

A number of bacteria, seeds, lichen and algae spent 18 months outside Columbus in space with no protection from the harsh space environment. When they were returned to Earth in 2009, the lichen awoke from their dormant state, highlighting the possibility that life forms could possibly hitch a ride on asteroids to planets.

Closer to home, technology developed for Columbus research is also being used by hospitals and firefighters. A new type of thermometer designed for astronauts reads temperatures continuously via two sensors on the forehead and chest. The technology was patented as a spin-off and is of great use for heart surgery and monitoring newborn babies.

ThermoLab

“Our European laboratory in space is accessible around the clock and allows us to do outstanding research with the international science community,” says Martin. “We already have a high demand and continuously receive requests for research in Columbus, so we can expect plenty of exciting results.”

Participation in Space Station research

Read & see more:

Gallery: Columbus 5 years: http://www.esa.int/Our_Activities/Human_Spaceflight/Highlights/Columbus_5_years

Columbus operations: http://www.esa.int/Our_Activities/Operations/Columbus_operations2

Columbus Control Centre, Oberpfaffenhofen, Germany: http://www.esa.int/Our_Activities/Human_Spaceflight/Columbus/Columbus_Control_Centre_Oberpfaffenhofen_Germany

Columbus Control Centre at DLR: http://www.dlr.de/iss/en/desktopdefault.aspx/tabid-1417/2048_read-3535/

International Space Station Science Reports: http://www.esa.int/Our_Activities/Human_Spaceflight/Columbus/ESA_ISS_Science_System_-_Operations_Status_Report_137_Increment_34_12_January_2012_25_January_2013

Images, Text, Credits: ESA / NASA / Charite, ZWMB.

Greetings, Orbiter.ch

lundi 11 février 2013

Cargo spacecraft Progress M-18M has successfully docked with the ISS











ROSCOSMOS - Russian Vehicles patch.

12/02/2013


The Russian Progress 50 cargo vehicle docks to the International Space Station's Pirs docking compartment. Credit: NASA TV.

February 12 at 00:35 MSK carried out docking cargo vehicle (THC) Progress M-18M from the International Space Station (ISS).

Station Cargo Craft Docks Six Hours After Launch

Video above: The unpiloted ISS Progress 50 cargo craft docked to the International Space Station at 3:35 p.m. EST Monday, less than six hours after launching from the Baikonur Cosmodrome in Kazakhstan.

THC Progress M-18M docked to the docking bay (CO) Pirs. Convergence process was carried out in automatic mode under the control of specialists Mission Control Center TsNIImash FSUE Russian and ISS crewmembers cosmonaut Oleg Novitsky, Eugene Tarelkin and Roman Romanenko.

Ship to the ISS cargo needed to keep the ISS in manned mode and a program of scientific and applied research on board. The total weight of all goods delivered to the ISS more than 2.5 tonnes.

Artist's view of the International Space Station (ISS)

The ISS crew continues 34/35-y long expedition consisting of commander Kevin Ford (NASA), the flight engineer Oleg Novitsky, Eugene Tarelkin and Roman Romanenko (Roscosmos), Chris Hadfield (Canadian Space Agency) and Thomas Mashberna (NASA).

Original text in Russian: http://www.federalspace.ru/main.php?id=2&nid=19888

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

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

Greetings, Orbiter.ch

Landsat 5 Sets Guinness World Record For 'Longest Operating Earth Observation Satellite'









NASA - Landsat LDCM logo.

Feb. 11, 2013

Landsat 5 successfully set the new Guinness World Records title for 'Longest-operating Earth observation satellite’ as stated in an e-mail from Guinness World Records sent to NASA Goddard Space Flight Center in Greenbelt, Md. Outliving its three-year design life, Landsat 5 delivered high-quality, global data of Earth's land surface for 28 years and 10 months.

NASA launched Landsat 5 from Vandenberg Air Force base in Lompoc, Calif. on March 1, 1984. Landsat 5 was designed and built at the same time as Landsat 4 and carried the same two instruments: the Multispectral Scanner System (MSS) and the Thematic Mapper (TM).

Artist's rendition of Landsat 5. Credit: USGS

Managed by the U.S. Geological Survey (USGS) as part of the Landsat Program, it completed over 150,000 orbits and sent back more than 2.5 million images of Earth’s surface. On Dec. 21, 2012 the USGS announced Landsat 5 would be decommissioned in the coming months after the failure of a redundant gyroscope. The satellite carries three gyroscopes for attitude control and needs two to maintain control.

"This is the end of an era for a remarkable satellite, and the fact that it flew for almost three decades is a testament to the NASA engineers who launched it and the USGS team who kept it flying well beyond its expected lifetime," said Anne Castle, Department of the Interior Assistant Secretary for Water and Science in a press release.

Originally designed to be retrievable by the space shuttle, Landsat 5 was equipped with extra fuel. That extra fuel kept the satellite operating for much longer than anticipated after the space shuttle retrieval plan was thrown out.


Image above: Landsat 5 taking off from Vandenberg Air Force Base, Lompoc Calif. on March 1, 1984. Photo credit: NASA/Raytheon.

Space is a harsh environment, and Landsat 5 faced more than twenty technical issues throughout its lifetime as parts gave in to wear and age. Landsat 5's USGS Flight Operations team found engineering and operational fixes to work around the problems, which included losing batteries, star trackers, and on-board data recording capability.

"The efforts of the Landsat team were heroic. Landsat 5 could not have lasted so long without the dedication and devotion of the USGS flight operations team that overcame a number of difficult technical challenges over the last 12 years," said Jim Irons, LDCM project scientist.

Not only did they keep the satellite going, said Irons, but in doing so, "Landsat 5 saved the Landsat program. This satellite's longevity preserved the Landsat program through the loss of Landsat 6 in 1993, preventing the specter of a data gap before the launch of Landsat 7 in 1999."


Image of Mount Saint Helens: The 1980 Mount St. Helens eruption was one of the most significant natural disasters in the U.S. in the past half-century. Landsat captured the extent of, and recovery from, the destruction. Credit: NASA/USGS.

Today, the Landsat program continues to provide data used across the United States and the world for agricultural and forest monitoring and water resource management, among many other environmental applications.

NASA is launching its next successor to the still operational Landsat 7 satellite, the Landsat Data Continuity Mission (LDCM) on Feb. 11, 2013. LDCM carries two new instruments, the Operational Land Imager and the Thermal Infrared Sensor, which will collect data that are compatible with data from Landsat 5 and 7, and improve upon it with advanced instrument designs that are more sensitive to changes to the land surface, said Irons.


This image (above) shows the Columbia Glacier in Alaska one of many vanishing around the world. Glacier retreat is one of the most direct and understandable effects of climate change. Credit: NASA/USGS.

LDCM will continue the Landsat program's 40-year data record of monitoring Earth from space. Once the LDCM satellite is extensively tested and certified for its mission, it will be renamed Landsat 8 and be operated by the U.S. Geological Survey.

For more information about the Landsat Program, visit: http://www.nasa.gov/mission_pages/landsat/main/index.html

Images (mentioned), Text, Credit: NASA's Goddard Space Flight Center / Laura Betz.

Greetings, Orbiter.ch

Year Three: NASA SDO Mission Highlights












NASA - Solar Dynamics Observatory (SDO) patch.

Feb. 11, 2013

On Feb. 11, 2010, NASA launched an unprecedented solar observatory into space. NASA's Solar Dynamics Observatory (SDO) flew up on an Atlas V rocket, carrying instruments that scientists hoped would revolutionize observations of the sun. If all went according to plan, SDO would provide incredibly high-resolution data of the entire solar disk almost as quickly as once a second.

SDO: Year 3

Video above: The sun's greatest hits as captured by the Solar Dynamic Observatory from February 2012 to February 2013. Credit: NASA/GSFC.

When the science team released its first images in April of 2010, SDO's data exceeded everyone’s hopes and expectations, providing stunningly detailed views of the sun. In the three years since then, SDO's images have continued to show breathtaking pictures and movies of eruptive events on the sun. Such imagery is more than just pretty, they are the very data that scientists study. By highlighting different wavelengths of light, scientists can track how material on the sun moves. Such movement, in turn, holds clues as to what causes these giant explosions, which, when Earth-directed, can disrupt technology in space.

In its third year of observations, however, SDO has also opened up several new, unexpected doors to scientific inquiry. Over the last year scientists spent much time poring over data from comet observations. Comets that travel close to the sun – known as sun-grazers -- have long been observed as they move toward the sun, but the view was always obscured by the sun's bright light when the comets got too close. But SDO has now captured images of two comets as they passed close to the sun.


Image above: One of the highlights of NASA's Solar Dynamics Observatory (SDO) during its third year in space: observations of Venus' transit across the Sun. This image was taken just as Venus was leaving the disk of the sun at 12:15 a.m. EDT on Jun. 6, 2012. Credit: NASA/SDO/HMI.

In December 2011, Comet Lovejoy swept right through the sun's corona, with its long tail streaming behind it. SDO sent back pictures of the comet's long tail being buffeted by systems around the sun. Such comet tails move in response to the sun's otherwise invisible magnetic field, so they can also act as tracers of the complex magnetic field higher up in the corona, offering scientists a unique way of observing movement there. Observations of the comet's long trail of water vapor and the material its lost, as well as how it vaporizes in the intense radiation of the sun could also be used to study atomic material and their ratios in the corona. SDO's third year, therefore, brought two research communities together: comet researchers who can use solar observations for their studies and solar scientists who can use comet observations to study the sun.

Solar Dynamics Observatory (SDO) spacecraft

The second novel highlight of SDO's third year occurred on June 5, 2012, when Venus crossed in front of the sun, as viewed from Earth – an occurrence that will not happen again for more than 100 years. SDO cameras trained on the transit to help calibrate its instruments and to learn more about Venus's atmosphere. Since the points at which Venus first touched and later left the sun are known down to minute detail, SDO could use this information to make sure its images are oriented to true solar north – calibrating its orientation to within a tenth of a pixel. Scientists also recorded how the sun's extreme ultraviolet light traveled through Venus's atmosphere in order to learn more about what elements exist around the planet.

The third new area of SDO data came from an always-planned source, the helioseismic and magnetic imager (HMI). The instrument provides real time maps of magnetic fields of the entire surface of the sun, showing how strong they are and – for the first time ever -- in which direction they are pointing. Since HMI is providing a type of data never before collected, and so it has opened up a whole new area of inquiry. Changing and realigning magnetic fields are at the heart of the sun's eruptions, so this too is a crucial set of data. Scientists have spent time over the last year to figure out how to best create visual maps from the data – as well as how to interpret them. The HMI images have been affectionately referred to as "hedgehog pictures" since they show spiky quill like lines pointing out of – or in toward – the sun.


Image above: White lines represent magnetic field lines looping up out of the sun's surface in this image from SDO's Helioseismological and Magnetic Imager (HMI). Credit: NASA/SDO/HMI.

Studying such complex magnetic motions inside the sun can help scientists understand the complex magnetic fields around the sun, which lead to the eruptions that can cause space weather effects near Earth and other objects in the solar system. Ultimately research into these constantly changing magnetic fields may lead to advance warning of such activity, which can send radiation, particles, and magnetic fields toward Earth and sometimes disrupt technology at Earth and other planets.

SDO is the first mission in a NASA’s Living With a Star program, the goal of which is to develop the scientific understanding necessary to address those aspects of the sun-Earth system that directly affect our lives and society. NASA’s Goddard Space Flight Center in Greenbelt, Md. built, operates, and manages the SDO spacecraft for NASA's Science Mission Directorate in Washington, D.C.

For high resolution media, visit: http://svs.gsfc.nasa.gov/vis/a010000/a011200/a011203/

For more information about NASA's SDO spacecraft, visit: http://www.nasa.gov/sdo

Images (mentioned), Video (mentioned), Text, Credit: NASA’s Goddard Space Flight Center / Karen C. Fox.

Best regards, Orbiter.ch

Liftoff! LDCM Spacecraft Heading for Orbit





















ULA - Atlas V / LDCM launch poster / NASA - Landsat Data Continuity Mission (LDCM) patch.

Feb. 11, 2013

 Liftoff Atlas V rocket carrying LDCM

The future of the Landsat program is on its way to orbit. The Landsat Data Continuity Mission spacecraft is riding into space atop a United Launch Alliance Atlas V 401 rocket that lifted off from California's Vandenberg Air Force Base at 1:02 p.m. EST. The on-time liftoff comes on the heels of a smooth countdown today at Space Launch Complex 3.

Landsat Launches on Atlas V Rocket

The payload fairing that protected LDCM during the first part of ascent separated on time and has fallen away, revealing the spacecraft. The Centaur's engine has shut down to begin a 55-minute coast phase before it reignites to put LDCM into its orbit above Earth.

Landsat Data Continuity Mission (LDCM) spacecraft

NASA's Landsat Data Continuity Mission (LDCM) is the eighth satellite in the Landsat series, which began in 1972. The mission will extend more than 40 years of global land observations that are critical in many areas, such as energy and water management, forest monitoring, human and environmental health, urban planning, disaster recovery and agriculture. NASA's Launch Services Program as launched the LDCM spacecraft atop a United Launch Alliance Atlas V 401 rocket from Vandenberg Air Force Base in California.

LDCM: A New Era in Earth Observation

The Landsat Data Continuity Mission (LDCM), a collaboration between NASA and the U.S. Geological Survey, will provide moderate-resolution measurements of Earth's terrestrial and polar regions in the visible, near-infrared, short wave infrared, and thermal infrared. There are two instruments on the spacecraft, the Thermal InfraRed Sensor (TIRS) and the Operational Land Imager (OLI). LDCM will provide continuity with the nearly 40-year long Landsat land imaging data set, enabling people to study many aspects of our planet and to evaluate the dynamic changes caused by both natural processes and human practices.

For more information about the Landsat Program, visit: http://www.nasa.gov/mission_pages/landsat/main/index.html

Images, Videos, Text, Credits: NASA / NASA TV / NASA's Goddard Space Flight Center.

Cheers, Orbiter.ch

Launch of the cargo spacecraft Progress M-18M












ROSCOSMOS logo.

11/02/2013

 Progress M-18M (P50) launch

February 11 at 18:41 MSK (Moscow time) from the launch complex of the platform 1 was launched Baikonur Launch Vehicle (ILV) Soyuz-U to transport cargo ship (THC) Progress M-18M (P50).

Russian Cargo Ship Heads to Station

According to cyclogram flight spacecraft separated from the third stage of the launch vehicle and placed into the desired orbit.

Progress Launch Profile

Docking THC Progress M-18M from the International Space Station (docking bay Pirs) is scheduled for February 12.

Progress Vehicle Events

Cargo ship - the first of a planned in 2013, must be delivered to the ISS more than 2.5 tonnes of cargo - scientific equipment and spare parts for the station, the fuel to maintain its orbit, food, water and air for the astronauts.

Original text in Russian: http://www.federalspace.ru/main.php?id=2&nid=19887

Images, Video, Text, Credits: Press Service of the Russian Federal Space Agency (Roscosmos PAO) / Roscosmos TV / NASA TV / Screen captures & Translation: Orbiter.ch Aerospace.

Greetings, Orbiter.ch