jeudi 29 novembre 2012

Quasar GB 1428











NASA - Chandra X-ray Observatory patch.

Nov. 29, 2012


This composite image shows the most distant X-ray jet ever observed. X-ray data from NASA's Chandra X-ray Observatory are shown in blue, radio data from the NSF's Very Large Array are shown in purple and optical data from NASA's Hubble Space Telescope are shown in yellow. The jet was produced by a quasar named GB 1428+4217, or GB 1428 for short, and is located 12.4 billion light years from Earth. Labels for the quasar and jet can be seen by mousing over the image. The shape of the jet is very similar in the X-ray and radio data.

Giant black holes at the centers of galaxies can pull in matter at a rapid rate producing the quasar phenomenon. The energy released as particles fall toward the black hole generates intense radiation and powerful beams of high-energy particles that blast away from the black hole at nearly the speed of light. These particle beams can interact with magnetic fields or ambient photons to produce jets of radiation.

As the electrons in the jet fly away from the quasar, they move through a sea of background photons left behind after the Big Bang. When a fast-moving electron collides with one of these so-called cosmic microwave background photons, it can boost the photon’s energy into the X-ray band. Because the quasar is seen when the universe is at an age of about 1.3 billion years, less than 10% of its current value, the cosmic background radiation is a thousand times more intense than it is now. This makes the jet much brighter, and compensates in part for the dimming due to distance.

While there is another possible source of X-rays for the jet - radiation from electrons spiraling around magnetic field lines in the jet - the authors favor the idea that the cosmic background radiation is being boosted because the jet is so bright.

Chandra X-ray Observatory

The researchers think the length of the jet in GB 1428 is at least 230,000 light years, or about twice the diameter of the entire Milky Way galaxy. This jet is only seen on one side of the quasar in the Chandra and VLA data. When combined with previously obtained evidence, this suggests the jet is pointed almost directly toward us. This configuration would boost the X-ray and radio signals for the observed jet and diminish those for a jet presumably pointed in the opposite direction.

This result appeared in the Sept. 1, 2012 issue of The Astrophysical Journal Letters.

Read more/access all images: http://chandra.harvard.edu/photo/2012/gb1428/

Chandra's Flickr photoset: http://www.flickr.com/photos/nasamarshall/sets/72157606205297786/

Images, Text, Credits: X-ray: NASA / CXC / NRC / C.Cheung et al; Optical: NASA / STScI; Radio: NSF / NRAO / VLA.

Best regards, Orbiter.ch

REXUS 11 takes to the skies












REXUS / BEXUS - Student Experiment Programme patch.

29 November 2012

After a pause for 9 months, the delayed REXUS 11 sounding rocket took to the skies on 16 November 2012. It carried five student designed and built experiments, and successfully brought the programme to a close for 2012.

REXUS 11 Launch

The delayed REXUS launch resumed at 11:45 (CET) on 16 November 2012. The single-stage sounding rocket blasted off into the sky from the Esrange Space Center near Kiruna, in Northern Sweden. The payload was then recovered by helicopter and returned to the base at around 14:00 CET. It was the last launch in the REXUS (Rocket Experiments for University Students) programme in 2012.

Three experimental teams were sponsored by the Swedish National Space Board (SNSB) and ESA.

REXUS 11 payload

RAIN (Rocket deployed Atmospheric probes conducting Independent measurements in Northern Sweden) from KTH (Royal Institute of Technology), Sweden, set out to prove that high-resolution measurements of middle atmosphere’s aerosols could be made. To do this, the experiment ejected two Free Flying Units slightly before reaching 80km, the maximum altitude of its trajectory (or apogee). The units took measurements during their descent. Such data could improve our understanding of atmospheric composition, and its interaction with sunlight.

Telescobe 2 from DIT (Dublin Institute of Technology), Ireland, deployed a 1.6m boom during the flight to demonstrate that such a device could be used to mount scientific sensors. This experiment was equipped with a live-feed camera, which allowed the students and organisers in the Space Center to see the view from the rocket during part of the ascent.

GGES (Gravity Gradient Earth Sensor), from EPFL (École Polytechnique Fédérale de Lausanne), Switzerland, demonstrated a prototype sensor that used a Micro-Electro-Mechanical system to determine altitude in future CubeSats and nano-satellites.

REXUS 11 scientific payload

Two additional experiments were sponsored by the German Aerospace Center (DLR).

CaRu (Capillary under milligravity shown on Runge Pictures) from a student team of the Technical University of Dresden, Germany, examined the effect of low gravity conditions on the capillary effect and compared it with existing theoretical models. This experiment was also equipped with a live feed camera allowing a view of the inside of the module during some of the flight.

ADIOS (ADvanced Isolation On Sounding-rockets), provided by students of the FH (Fachhochschulen) Aachen in Germany, furthers a project to develop a cost-effective microgravity platform for use on sounding rockets that reduces the vibrations felt by the experiments.

ADIOS experiment

As well as the experimental results, working as part of the REXUS programme gave the students inspiration. “I have learned more from this experience than I have in any project I have ever undertaken before. The quality of engineering I have seen during the REXUS project was inspiring to say the very least. I have had the pleasure of meeting some of the finest engineers I have ever seen in action. I now have the pleasure of calling them friends,” says Jack Keegan from Telescobe 2.

The REXUS/BEXUS programme is realised under a bilateral Agency Agreement between the DLR and SNSB. The Swedish share of the payload has been made available to students from other European countries through a collaboration with the ESA.

EuroLaunch, a cooperation between the Esrange Space Center of SSC and the Mobile Rocket Base (MORABA) of DLR, is responsible for the campaign management and operations of the launch vehicles. Experts from ESA, SSC and DLR provide technical support to the student teams throughout the project.

The programme will continue next year with two more flights REXUS 13/14. The call for proposals for REXUS 15/16 closed on 22 October 2012.

Related links:

REXUS/BEXUS website: http://www.rexusbexus.net/

Esrange Space Centre: http://www.ssc.se/about-the-ssc-group/ssc-companies/ssc/esrange-space-center-3

Swedish National Space Board, SNSB: http://www.snsb.se/dyn_aktuellt.asp?languageId=2

German Aerospace Center, REXUS BEXUS: http://www.dlr.de/rd/desktopdefault.aspx/tabid-2282/3421_read-10516/

More information:

REXUS/BEXUS rocket & balloon experiments: http://www.esa.int/SPECIALS/Education/SEMTTQJV3AF_0.html

Sponsorship details: http://www.esa.int/SPECIALS/Education/SEMJVS4Y96H_0.html

Images, Text, Credits: Credits: ESA / ADIOS team.

Greetings, Orbiter.ch

mercredi 28 novembre 2012

Swirling Storms on Saturn












NASA / ESA - Cassini "Insider's" logo.

Nov.28, 2012

 Peering into the Storm

Image above: This image from NASA's Cassini mission was taken on Nov. 27, 2012, with Cassini's narrow-angle camera. Image credit: NASA/JPL-Caltech/Space Science Institute.

NASA's Cassini spacecraft has been traveling the Saturnian system in a set of inclined, or tilted, orbits that give mission scientists a vertigo-inducing view of Saturn's polar regions. This perspective has yielded images of roiling storm clouds and a swirling vortex at the center of Saturn's famed north polar hexagon.

Saturn's North Pole, Wide View

Image above: The camera was pointing toward Saturn from approximately 233,742 miles (376,171 kilometers) away. Image credit: NASA/JPL-Caltech/Space Science Institute.

These phenomena mimic what Cassini found at Saturn's south pole a number of years ago. Cassini has also seen storms circling Saturn's north pole in the past, but only in infrared wavelengths because the north pole was in darkness. (See http://www.jpl.nasa.gov/news/news.php?release=2008-192 .) But, with the change of the Saturnian seasons, the sun has begun to creep over the planet's north pole.

Vortex at Saturn's North Pole

Image above: The camera was pointing toward Saturn from approximately 248,578 miles (400,048 kilometers) away. Image credit: NASA/JPL-Caltech/Space Science Institute.

This particular set of raw, unprocessed images was taken on Nov. 27, 2012, from a distance of about 250,000 miles (400,000 kilometers) from Saturn.

Cassini spacraft. Image credit: NASA/JPL-Caltech

More raw images are available at http://saturn.jpl.nasa.gov/photos/raw/index.cfm . The Cassini-Huygens mission is a cooperative project of NASA, the European Space Agency and the Italian Space Agency. JPL, a division of the California Institute of Technology in Pasadena, manages the Cassini-Huygens mission for NASA's Science Mission Directorate, Washington. The Cassini orbiter and its two onboard cameras were designed, developed and assembled at JPL. The imaging team is based at the Space Science Institute in Boulder, Colo.

ESA Cassini-Huygens website: At Saturn and Titan: http://www.esa.int/SPECIALS/Cassini-Huygens/index.html

Images (mentioned), Text, Credits: NASA / ESA / JPL / Jia-Rui Cook / Space Science Institute / Steve Mullins.

Best regards, Orbiter.ch

International Space Station salutes the Sun












ISS - International Space Station patch.

28 November 2012

This weekend the International Space Station will turn itself to position ESA’s SOLAR instrument for a better view of the Sun. It will be the first time the Station has changed attitude for scientific reasons alone.

SOLAR has been monitoring our Sun’s output since it was installed on ESA’s Columbus laboratory module in February 2008. The package will celebrate its fifth anniversary next year.

International Space Station

“That is quite an achievement,” says Nadia This, operations engineer at the Belgian User Support and Operations Centre that controls SOLAR. “The instrument was designed to work for only 18 months.”

SOLAR needs to be in direct view of the Sun to take measurements but the Space Station’s normal orbit obscures the view for two weeks every month.

SOLAR

“We want to record a complete rotation of the Sun and that takes around 25 days,” explains Nadia.

The solution is to rotate the whole Station but moving a 450 tonne orbital outpost the size of a typical block of flats is not a simple undertaking.

Aside from calculating the correct orbit to keep SOLAR in view of the Sun, other factors need to be taken into account such as ensuring the solar panels that power the Station are not left in the dark.

Belgian support centre

Communication antennas need to be reoriented to stay in contact with Earth and other scientific experiments must be adjusted.

High-level discussions with all five Space Station partners were needed before the go-ahead was given.

SOLAR started recording a full rotation of the Sun on 19 November. On 1 December the Station will spend two hours turning about 7º so that observations can continue. It will hold this angle for ten days before returning to its original attitude. As usual, the Belgian centre will be following its progress 24 hours a day.

SOLAR on Station

SOLAR’s observations are improving our understanding of the Sun and allowing scientists to create accurate computer models and predict its behaviour. The more accurate data we acquire, the more we will understand our nearest star’s influence on Earth.

Recently, the 11-year solar cycle has shown irregularities and the next maximum is expected in 2013, so SOLAR’s spectral readings are of particular interest to scientists.

Related links: 

SOLAR: http://www.esa.int/SPECIALS/Columbus/SEMQ7UEMKBF_0.html

Research partners:

B.USOC: http://www.busoc.be/

Fraunhofer Institute for Physical Measurement Techniques: http://www.ipm.fraunhofer.de/en.html

Centre national de la recherche scientifique: http://www.cnrs.fr/index.php

LATMOS: http://www.latmos.ipsl.fr/

Images, Text, Credits: ESA / NASA / BUSOC.

Cheers, Orbiter.ch

Titan’s seasons make sharp turn












NASA / ESA - Cassini-Huygens Mission to Saturn & Titan patch.

28 November 2012

Scientists using the international Cassini spacecraft have studied the rapid change in seasons on Saturn’s moon Titan, following equinox in August 2009, which saw the formation of a swirling vortex and a build up of exotic gases at unexpectedly high altitudes.

Titan is the only other body in the Solar System with a thick nitrogen-rich atmosphere like Earth’s. Titan’s atmosphere also contains methane and hydrogen, with trace amounts of other gases including hydrocarbons that form at high altitudes as a result of reactions with sunlight.

Vortex close up

These complex molecules filter down into the lower atmosphere and eventually combine to produce an orange smog.

A separate layer of haze is found at a much higher altitude of 400–500 km and can be seen at the limb of the moon, apparently detached from the rest of the atmosphere.

This haze was thought to represent the ceiling of Titan’s ‘middle atmosphere’ circulation which extends from pole to pole in one giant cell, but new results from Cassini suggest otherwise.

When Cassini arrived in the Saturn system in 2004, Titan sported a vortex with a ‘hood’ of enriched gas and dense haze high above its north, winter pole. After equinox in August 2009, spring arrived in the moon’s northern hemisphere while the southern hemisphere headed towards autumn.

The change in solar heating was reflected by a rapid reversal in circulation direction in Titan’s single pole-to-pole atmospheric cell, with an upwelling of gases in the summer hemisphere and downwelling in the winter hemisphere.

 Titan’s changing seasons (Click on the image for enlarge)

“Even though the amount of sunlight reaching the south pole was decreasing, the first thing we saw there during the six months after equinox was actually an increase in temperature at altitudes of 400–500 km, as atmospheric gases that had been lofted to these heights were compressed as they subsequently sank into a newly forming southern vortex,” says Dr Nick Teanby from the University of Bristol, UK, and lead author of the study reported in the journal Nature.

“This heating effect is the same one that causes compressed air in a bicycle pump to heat up, and provided the smoking gun that the change in seasons was underway.”


Image above: A vortex swirls at the south pole of Saturn’s moon Titan stands out brightly at lower right in this photo.  Credit: NASA / JPL-Caltech / Space Science Institute.

In the months that followed, up to a hundred-fold increase in atmospheric gas concentration was measured over the south pole at the same high altitudes.

Cassini’s instruments found that these gas molecules were sinking through the atmosphere at a rate of 1–2 millimetres per second.

Dr Teanby’s team conclude that for the enrichment and motion to be seen throughout these altitudes, the actual source of the complex gas molecules must be higher still, and that the detached haze layer cannot signal the top of the atmospheric circulation cell.

Cassini spacecraft and Titan

The new observations instead suggest that these complex haze molecules are produced higher up, but that when they drop down to the 400–500 km level, a change in the character of the haze takes place, perhaps as individual particles clump together.

“It’s impressive to see such dramatic solar-driven seasonal changes on a world where the sunlight is nearly a hundred times weaker than it is on Earth,” adds Dr Teanby.

“Since a year on Titan is nearly 30 Earth years long, for the atmosphere to change over a period of just six months is extremely rapid.”

“Models have predicted this change in Titan’s atmospheric circulation for nearly 20 years, but Cassini has provided the first direct observations of it actually happening,” says Nicolas Altobelli, ESA’s Cassini project scientist.

Related links:

At Saturn and Titan: http://www.esa.int/SPECIALS/Cassini-Huygens/index.html

Cassini-Huygens in depth: http://sci.esa.int/huygens

NASA JPL Cassini-Huygens site: http://saturn.jpl.nasa.gov/home/index.cfm

Italian Space Agency (ASI): http://www.asi.it/

Images, Text, Credits: ESA / AOES / NASA / JPL–Caltech / Space Science Institute.

Best regards, Orbiter.ch

Biggest Black Hole Blast Discovered












ESO - European Southern Observatory logo.

28 November 2012

New ESO observations reveal most powerful quasar outflow ever found

Artist’s impression of the huge outflow ejected from the quasar SDSS J1106+1939

Astronomers using ESO’s Very Large Telescope (VLT) have discovered a quasar with the most energetic outflow ever seen, at least five times more powerful than any that have been observed to date. Quasars are extremely bright galactic centres powered by supermassive black holes. Many blast huge amounts of material out into their host galaxies, and these outflows play a key role in the evolution of galaxies. But, until now, observed quasar outflows weren’t as powerful as predicted by theorists.

Quasars are the intensely luminous centres of distant galaxies that are powered by huge black holes. This new study has looked at one of these energetic objects — known as SDSS J1106+1939 — in great detail, using the X-shooter instrument on ESO’s VLT at the Paranal Observatory in Chile [1]. Although black holes are noted for pulling material in, most quasars also accelerate some of the material around them and eject it at high speed.

“We have discovered the most energetic quasar outflow known to date. The rate that energy is carried away by this huge mass of material ejected at high speed from SDSS J1106+1939 is at least equivalent to two million million times the power output of the Sun. This is about 100 times higher than the total power output of the Milky Way galaxy — it’s a real monster of an outflow,” says team leader Nahum Arav (Virginia Tech, USA). “This is the first time that a quasar outflow has been measured to have the sort of very high energies that are predicted by theory.”

Many theoretical simulations suggest that the impact of these outflows on the galaxies around them may resolve several enigmas in modern cosmology, including how the mass of a galaxy is linked to its central black hole mass, and why there are so few large galaxies in the Universe. However, whether or not quasars were capable of producing outflows powerful enough to produce these phenomena has remained unclear until now [2].

The newly discovered outflow lies about a thousand light-years away from the supermassive black hole at the heart of the quasar SDSS J1106+1939. This outflow is at least five times more powerful than the previous record holder [3]. The team’s analysis shows that a mass of approximately 400 times that of the Sun is streaming away from this quasar per year, moving at a speed of 8000 kilometres per second.

“We couldn’t have got the high-quality data to make this discovery without the VLT’s X-shooter spectrograph,” says Benoit Borguet (Virginia Tech, USA), lead author of the new paper. “We were able to explore the region around the quasar in great detail for the first time.”

As well as SDSS J1106+1939, the team also observed one other quasar and found that both of these objects have powerful outflows. As these are typical examples of a common, but previously little studied, type of quasars [4], these results should be widely applicable to luminous quasars across the Universe. Borguet and colleagues are currently exploring a dozen more similar quasars to see if this is the case.

“I’ve been looking for something like this for a decade,” says Nahum Arav, “so it’s thrilling to finally find one of the monster outflows that have been predicted!”

ESO’s Very Large Telescope (VLT)

Notes:

[1] The team observed SDSS J1106+1939 and J1512+1119 in April 2011 and March 2012 using the X-shooter spectrograph instrument attached to ESO’s VLT. By splitting the light up into its component colours and studying in detail the resultant spectrum the astronomers could deduce the velocity and other properties of the material close to the quasar.

[2] The powerful outflow observed in SDSS J1106+1939 carries enough kinetic energy to play a major role in active galaxy feedback processes, which typically require a mechanical power input of roughly 5% of the luminosity of the quasar. The rate at which kinetic energy is being transferred by the outflow is described as its kinetic luminosity.

[3] SDSS J1106+1939 has an outflow with a kinetic luminosity of at least 1046 ergs s−1. The distances of the outflows from the central quasar (300–8000 light-years) was greater than expected suggesting that we observe the outflows far from the region in which we assume them to initially accelerated (0.03–0.4 light-years).

[4] A class known as Broad Absorption Line (BAL) quasars.

More information:

This research was presented in a paper, “Major contributor to AGN feedback: VLT X-shooter observations of SIV BAL QSO outflows”, to appear in The Astrophysical Journal.

The team is composed of B. C. J. Borguet (Virginia Tech, USA), N. Arav (Virginia Tech, USA), D. Edmonds (Virginia Tech, USA), C. Chamberlain (Virginia Tech, USA), C. Benn (Isaac Newton Group of Telescopes, Spain).

The year 2012 marks the 50th anniversary of the founding of the European Southern Observatory (ESO). 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:

Research paper: http://www.eso.org/public/archives/releases/sciencepapers/eso1247/eso1247a.pdf

Photos of the VLT: http://www.eso.org/public/images/archive/category/paranal/

Images, Text, Credits: ESO / L. Calçada / Richard Hook/ Virginia Tech / Nahum Arav / Benoît Borguet.

Greetings, Orbiter.ch

mardi 27 novembre 2012

Why Study Plants in Space?












ISS - International Space Station patch.

Nov. 27, 2012

Why is NASA conducting plant research aboard the International Space Station? Because during future long-duration missions, life in space may depend on it.

The ability of plants to provide a source of food and recycle carbon dioxide into breathable oxygen may prove critical for astronauts who will live in space for months at a time. In addition, plants provide a sense of well-being. At the McMurdo Station for research in Antarctica -- a site that in the dead of winter resembles the space station in its isolation, cramped quarters, and hostile environment -- the most sought after section of the habitat is the greenhouse.

NASA and the European Space Agency, or ESA, are studying how plants adapt to micro- and low-gravity environments in a series of experiments designed to determine the ability of vegetation to provide a complete, sustainable, dependable and economical means for human life support in space. As researchers continue to gain new knowledge of how plants grow and develop at a molecular level, this insight also may lead to significant advances in agriculture production on Earth.


Image above: Samples from the Seedling Growth investigation aboard the International Space Station help researchers study the impact of the microgravity environment on plant growth. (NASA).

Plant biology experiments on the space station using the European Modular Cultivation System, or EMCS, allow scientists to investigate plant growth and the processes within their cells to understand how plant life responds to conditions in space. Researchers currently are planning three new plant growth investigations specifically designed to examine the growth of seedlings in microgravity using this facility.

Combining the proposals of NASA Principal Investigator John Z. Kiss, and ESA Principal Investigator Javier Medina, the Seedling Growth investigation will continue at the space station for a series of experiments: Seedling Growth 1, 2 and 3 in 2013, 2014 and 2015 respectively. The results of these experiments will help researchers understand how plants sense and respond to the space environment.

Once aboard the space station, astronauts will conduct experiments to examine the seedlings' cultivation and stimulation under controlled temperature, atmosphere composition, limited water supply, illumination and acceleration conditions using centrifuges. Because the station crew is key to the success of the experiments, crew members will receive significant training, including on-board computer video instruction.

Thus far, NASA's Ames Research Center, Moffett Field, Calif., has completed three experiments using the EMCS. The 2006 study called Root Phototropism, or Tropi, used Thale cress (Arabidopsis thaliana) seeds from the mustard family to investigate how plant roots respond to varying levels of light and gravity. Using a rotating centrifuge, Kiss designed the experiment to expose the plants to different gravity conditions.

In 2010, the Tropi-2 experiment expanded on the knowledge gained from the first Tropi investigation. Collectively, the two studies demonstrated how red and blue light affects plant growth differently at varied levels of gravity. With this information, researchers now know that they can optimize plant root and shoot growth in space by fine-tuning the plants' exposure to light.


Image above: View of the TROPI seedling cassette for the European Modular Cultivation System, or EMCS, aboard the International Space Station Destiny laboratory module during Expedition 14. (NASA).

Most recently, the Plant Signaling space experiment, led by Principal Investigator Imara Perera, research associate professor at North Carolina State University, Raleigh, N. C., studied the roots and shoots of wild type and genetically modified Thale cress plant seedlings in microgravity and 1g -- a simulation of Earth's gravity. Images of the seedlings were sent to Earth before astronauts harvested and preserved the seedlings for post-flight analysis. The frozen plants are scheduled to return to Earth in 2013 aboard a SpaceX Dragon capsule.

The analysis of these data will lead to an understanding of the molecular mechanisms plants use to sense and respond to changes in their environment. Insights gained from this study will help scientists identify plants that are better able to withstand long duration spaceflight and microgravity conditions.

Description of the International Space Station's, U.S. Destiny laboratory location on ISS

Unique Environments Demand Specialized Equipment

Provided by ESA, the EMCS consists of a holding structure filling four station lockers and includes an incubator with two centrifuges. Two to four Ames-developed Experiment Containers, or ECs, can mount to each of the two centrifuge rotors to allow scientists to perform experiments at various g-levels up to twice Earth's gravity, or 2g.

The EMCS design enables control of temperature, humidity, oxygen and carbon dioxide. Equipped with white and infrared lights, EMCS also can control g-level simulation and water to perform experiments with biological samples. Video observation, imaging, data handling and command systems allow for control of the experiments inside the ECs. The ECs have specialized systems to study cell biology, small aquatic animals, roundworms, fruit flies and plants.

NASA's Ames Research Center worked closely with ESA to develop specific experimental units designed to grow plant seedlings, particularly Thale Cress, as well as other plant species. The hardware has performed flawlessly in supporting the Tropi-1, Tropi-2 and Plant Signaling experiments and will be used in the upcoming Seedling Growth study.

European Modular Cultivation System (EMCS): http://www.nasa.gov/mission_pages/station/research/experiments/EMCS.html

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

Images, Text, Credits: NASA / Ames Research Center / Barbara Patterson /  ESA.

Best regards, Orbiter.ch