mardi 28 juin 2016

Hubble nets a cosmic tadpole












ESA - Hubble Space Telescope logo.

28 June 2016

 LEDA 36252, a cosmic tadpole

This new image from the NASA/ESA Hubble Space Telescope shows a cosmic tadpole, with its bright head and elongated tail, wriggling through the inky black pool of space. Tadpole galaxies are rare and difficult to find in the local Universe. This striking example, named LEDA 36252, was explored as part of a Hubble study into their mysterious properties — with interesting results.

The Universe is a swirling pool of galaxies moving through the emptiness of space. Whilst spiral galaxies and ellipticals are the two main galaxy types in the Universe, there are also other, odder types — as shown in this image from the NASA/ESA Hubble Space Telescope, taken with the Wide Field Camera 3 (WFC3).

The galaxy LEDA 36252 — also known as Kiso 5639 — is an example of what is known as a tadpole galaxy because of their bright, compact heads and elongated tails [1]. Tadpole galaxies are unusual, and rare in the local Universe — in a sample of 10 000 galaxies within the local Universe, only 20 would be tadpoles — but they are more common in the early Universe.

Ground-based view of LEDA 36252

This image of LEDA 36252 was obtained as part of a scientific study into the galaxy’s properties [2]. It is an ideal cosmic laboratory for astronomers to study the accretion of cosmic gas, starburst activity, and the formation of globular star clusters.

The stars in tadpole galaxies are generally very old — living fossils from the early Universe and from the time when these galaxies formed. LEDA 36252 is in general no exception to that.

However, studying LEDA 36252 has led also to some unexpected results: its head contains a mass of surprisingly young stars with a total mass equivalent to some 10 000 Suns. These stars are grouped into large clusters and appear to consist mainly of hydrogen and helium with hardly any other elements. Astronomers think that this new burst of star formation was triggered when the galaxy accreted primordial gas — gas which was only very slightly enriched by other elements created by stellar fusion processes in the past — from its surroundings.

Zoom on LEDA 36252

Also the elongated tail, seen stretching away from the head and scattered with bright blue stars, contains at least four distinct star-forming regions. These appear to be older than the one in the head.

The observations also showed signs of strong stellar winds and supernova explosions, which have blasted holes through LEDA 36252’s head and created multiple cavities. Wispy filaments, comprising gas and some stars, extend away from the main body of the cosmic tadpole.

The WFC3 observations comprising this image cover a wide portion of the spectrum, including ultraviolet, optical, H-alpha, and infrared emission. Together, they paint a beautifully detailed picture of LEDA 36252.

Notes:

[1] There is a specific galaxy named the Tadpole Galaxy, which has been imaged by Hubble in the past. This galaxy was named for its stretched-out appearance, but it is a spiral, not a tadpole, galaxy.

[2] The study, entitled Hubble Space Telescope Observations of Accretion-Induced Star Formation in the Tadpole Galaxy Kiso 5639 by D. Elmegreen et al., is published in The Astrophysical Journal.

More information:

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

Links:

Science paper: http://www.spacetelescope.org/static/archives/releases/science_papers/heic1612a.pdf

Link to hubblesite release: http://hubblesite.org/newscenter/archive/releases/2016/23

Wide Field Camera 3 (WFC3): https://www.spacetelescope.org/about/general/instruments/wfc3/

For more information about the Hubble Space Telescope, visit:

http://hubblesite.org/
http://www.nasa.gov/hubble
https://www.spacetelescope.org/

Images, Text, Credits: ESA/Mathias Jäger/NASA, ESA, and D. Elmegreen (Vassar College), B. Elmegreen (IBM’s Thomas J. Watson Research Center), J. Almeida, C. Munoz-Tunon, and M. Filho (Instituto de Astrofisica de Canarias), J. Mendez-Abreu (University of St. Andrews), J. Gallagher (University of Wisconsin-Madison), M. Rafelski (NASA Goddard Space Flight Center), and D. Ceverino (Center for Astronomy at Heidelberg University)/Digitized Sky Survey 2/Acknowledgement: Davide De Martin/Video Credits: ESA/Hubble, Digitized Sky Survey 2/Music: Johan B. Monell.

Greetings, Orbiter.ch

lundi 27 juin 2016

Astrotech at the Observatory of Geneva was inaugurated today










ESO - EXPRESSO logo.

June 27, 2016

Astrotech inauguration of the extension of the Astronomical Observatory of Geneva

A new building dedicated to astrophysical research was inaugurated on Monday 27 June in Sauverny (Geneva). Observational tools for exoplanets are under development.


Image above: Astrotech extension of the Astronomical Observatory of Geneva during its construction in summer 2015.

The University of Geneva (Unige) inaugurated Monday, June 27 a new building for research in astrophysics. Astrotech called, it is installed on the site of the Astronomical Observatory in Sauverny (Geneva). New advanced instruments, intended especially for the search for exoplanets, are assembled there.


Image above: The optical layout of ESPRESSO, qui splits the optical path into a red-arm, and a blue-arm, qui peut être optimized separately.

Two years of work were needed to qu'Astrotech emerges. The new building, which meets the ecological standards of Minergie-P label (ecological standard in Switzerland), includes a mechanical workshop and 200 m2 clean room (where the concentration of dust in the air is controlled) a equivalent area.

Looking for a new Earth

The spectrograph ESPRESSO (nothing to do with coffee) for research planets similar to the Earth, is being assembled. Ten times more sensitive than the current Harps spectrograph, it will enter service early 2017 on Very Large Telescope at Paranal in Chile.

"The tools for astronomical observation are becoming increasingly complex. To track the movement and participate in major international programs, we needed adequate infrastructure, "says Stéphane Udry, director of the Observatory of the University of Geneva.

Spectrograph ESPRESSO description

This is to be based Astrotech that the operational center of the CHEOPS project, first Swiss Space Telescope. Built in collaboration with the European Space Agency (ESA), it will also focus on the search for exoplanets.

The new building, which includes offices finally welcoming researchers NCCR (PNR) Planets and meeting rooms, is intended as a rallying point for all researchers in astrophysics from Switzerland.


Image above: The astrophysicist Michel Mayor of the Astronomical Observatory of Geneva as discovered Pegasi 51 b the first exoplanet in 1995 with his co-discoverer Didier Queloz.

All these facilities will be discovered by the public during open houses Saturday, July 2 from 10h to 17h, with workshops and scientific animations.

Related links:

University of Bern - CHEOPS homepage: http://cheops.unibe.ch/

ESO's Very Large Telescope (VLT): http://www.eso.org/public/unitedkingdom/teles-instr/paranal/

For more information about Astrotech, visit: https://www.unige.ch/sciences/astro/fr/

Images, Text, Credits: Unige / Observatoire Astronomique de Genève / European Southern Observatory (ESO) / Orbiter.ch Aerospace / Roland Berga.

Best regards, Orbiter.ch

Dark and Arc












NASA - Cassini Mission to Saturn patch.

June 27, 2016


At first glance, the most obvious features in this image from NASA's Cassini spacecraft are Saturn's rings and the icy moon Enceladus. Upon closer inspection, Saturn's night side is also visible (near top center), faintly illuminated by sunlight reflected off the rings.

In this view, icy Enceladus (313 miles or 504 kilometers across) hangs in the space between Cassini and the giant planet.

This view looks toward the sunlit side of the rings from 0.14 degrees above the ring plane. The image was taken in visible light with the Cassini spacecraft wide-angle camera on Aug. 18, 2015.

The view was acquired at a distance of approximately 87,000 miles (139,000 kilometers) from Enceladus. Image scale is 5 miles (8 kilometers) per pixel.

The Cassini mission is a cooperative project of NASA, ESA (the European Space Agency) and the Italian Space Agency. The Jet Propulsion Laboratory, a division of the California Institute of Technology in Pasadena, manages the 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 operations center is based at the Space Science Institute in Boulder, Colorado.

For more information about the Cassini-Huygens mission visit http://saturn.jpl.nasa.gov and http://www.nasa.gov/cassini. The Cassini imaging team homepage is at http://ciclops.org and ESA's website: http://www.esa.int/Our_Activities/Space_Science/Cassini-Huygens

Image, Text, Credits: NASA/JPL-Caltech/ony Greicius.

Greetings, Orbiter.ch

Juno on Jupiter's Doorstep












NASA - JUNO Mission logo.

June 27, 2016


NASA's Juno spacecraft obtained this color view on June 21, 2016, at a distance of 6.8 million miles (10.9 million kilometers) from Jupiter. Juno will arrive at Jupiter on July 4.

As Juno makes its initial approach, the giant planet's four largest moons -- Io, Europa, Ganymede and Callisto -- are visible, and the alternating light and dark bands of the planet's clouds are just beginning to come into view.

Juno is approaching over Jupiter's north pole, affording the spacecraft a unique perspective on the Jupiter system. Previous missions that imaged Jupiter on approach saw the system from much lower latitudes, closer to the planet's equator.

The scene was captured by the mission's imaging camera, called JunoCam, which is designed to acquire high resolution views of features in Jupiter's atmosphere from very close to the planet.

NASA's Jet Propulsion Laboratory, Pasadena, Calif., manages the Juno mission for the principal investigator, Scott Bolton, of Southwest Research Institute in San Antonio. The Juno mission is part of the New Frontiers Program managed at NASA's Marshall Space Flight Center in Huntsville, Ala. Lockheed Martin Space Systems, Denver, built the spacecraft. JPL is a division of the California Institute of Technology in Pasadena.

Related article:

NASA's Juno Spacecraft Closing in on Jupiter
http://orbiterchspacenews.blogspot.ch/2016/06/nasas-juno-spacecraft-closing-in-on.html

For more information about JUNO mission, visit: http://www.nasa.gov/mission_pages/juno/main/index.html

Image, Text, Credits: NASA/JPL-Caltech/MSSS/Sarah Loff.

Greetings, Orbiter.ch

NASA Rover Findings Point to a More Earth-like Martian Past












NASA - Mars Science Laboratory (MSL) patch.

June 27, 2016

Chemicals found in Martian rocks by NASA's Curiosity Mars rover suggest the Red Planet once had more oxygen in its atmosphere than it does now.

Researchers found high levels of manganese oxides by using a laser-firing instrument on the rover. This hint of more oxygen in Mars' early atmosphere adds to other Curiosity findings -- such as evidence about ancient lakes -- revealing how Earth-like our neighboring planet once was.

This research also adds important context to other clues about atmospheric oxygen in Mars' past. The manganese oxides were found in mineral veins within a geological setting the Curiosity mission has placed in a timeline of ancient environmental conditions. From that context, the higher oxygen level can be linked to a time when groundwater was present in the rover's Gale Crater study area.


Image above: This scene shows NASA's Curiosity Mars rover at a location called "Windjana," where the rover found rocks containing manganese-oxide minerals, which require abundant water and strongly oxidizing conditions to form. Image Credits: NASA/JPL-Caltech/MSSS.

"The only ways on Earth that we know how to make these manganese materials involve atmospheric oxygen or microbes," said Nina Lanza, a planetary scientist at Los Alamos National Laboratory in New Mexico. "Now we're seeing manganese oxides on Mars, and we're wondering how the heck these could have formed?"

Microbes seem far-fetched at this point, but the other alternative -- that the Martian atmosphere contained more oxygen in the past than it does now -- seems possible, Lanza said. "These high manganese materials can't form without lots of liquid water and strongly oxidizing conditions. Here on Earth, we had lots of water but no widespread deposits of manganese oxides until after the oxygen levels in our atmosphere rose."

Lanza is the lead author of a new report about the Martian manganese oxides in the American Geophysical Union's Geophysical Research Letters. She uses Curiosity's Chemistry and Camera (ChemCam) instrument, which fires laser pulses from atop the rover's mast and observes the spectrum of resulting flashes of plasma to assess targets' chemical makeup.

In Earth's geological record, the appearance of high concentrations of manganese oxide minerals is an important marker of a major shift in our atmosphere's composition, from relatively low oxygen abundances to the oxygen-rich atmosphere we see today. The presence of the same types of materials on Mars suggests that oxygen levels rose there, too, before declining to their present values. If that's the case, how was that oxygen-rich environment formed?

"One potential way that oxygen could have gotten into the Martian atmosphere is from the breakdown of water when Mars was losing its magnetic field," said Lanza. "It's thought that at this time in Mars' history, water was much more abundant." Yet without a protective magnetic field to shield the surface, ionizing radiation started splitting water molecules into hydrogen and oxygen. Because of Mars' relatively low gravity, the planet wasn't able to hold onto the very light hydrogen atoms, but the heavier oxygen atoms remained behind. Much of this oxygen went into rocks, leading to the rusty red dust that covers the surface today. While Mars' famous red iron oxides require only a mildly oxidizing environment to form, manganese oxides require a strongly oxidizing environment, more so than previously known for Mars.

Lanza added, "It's hard to confirm whether this scenario for Martian atmospheric oxygen actually occurred. But it's important to note that this idea represents a departure in our understanding for how planetary atmospheres might become oxygenated." Abundant atmospheric oxygen has been treated as a so-called biosignature, or a sign of extant life, but this process does not require life.

Curiosity has been investigating sites in Gale Crater since 2012. The high-manganese materials it found are in mineral-filled cracks in sandstones in the "Kimberley" region of the crater. But that's not the only place on Mars where high manganese abundances have been found. NASA's Opportunity rover, exploring Mars since 2004, also recently discovered high manganese deposits thousands of miles from Curiosity. This supports the idea that the conditions needed to form these materials were present well beyond Gale Crater.

NASA Weighs Use of Rover to Image Potential Mars Water Sites

Ever since it was announced that there may be evidence of liquid water on present-day Mars, NASA scientists have wondered how best to further investigate these long, seasonally changing dark streaks in the hope of finding evidence of life -- past or present -- on the Red Planet.

"It's not as simple as driving a rover to a potential site and taking a scoop of soil," said Jim Green, NASA's director of planetary science. "Not only are these on steep slopes, we need to ensure that planetary protection concerns are met. In other words, how can we search for evidence of life without contaminating the sites with bugs from Earth?"

Pending approval of a mission extension, NASA's Curiosity Mars rover will continue to climb to progressively higher and younger strata on Mount Sharp, investigating how long the ancient, water-rich environments found so far persisted as Mars dried out. Reaching those destinations would bring the rover closer to locations where dark streaks are present on some slopes. On the way, the route would allow the one-ton rover to capture images of the potential water sites from miles away and see if any are the seasonally changing type.


Image above: This May 11, 2016, self-portrait of NASA's Curiosity Mars rover shows the vehicle at the "Okoruso" drilling site on lower Mount Sharp's "Naukluft Plateau." The scene is a mosaic of multiple images taken with the arm-mounted Mars Hands Lens Imager (MAHLI). Image Credits: NASA/JPL-Caltech/MSSS.

The features of interest have been observed by NASA's High-Resolution Imaging Science Experiment (HiRISE) camera on the Mars Reconnaissance Orbiter (MRO). They appear as dark lines that appear to ebb and flow over time. Planetary scientists think these gullies or recurring slope lineae (RSLs) may appear seasonally as a form of briny water at or near the surface of the Red Planet under warmer conditions.

There are two RSL candidates that may be within Curiosity's reach, on the side of the 3.1-mile-high (5-kilometer-high) Mount Sharp. The rover's Remote Micro-Imager (part of ChemCam) would be the main instrument for imaging the possible sites. The goal would be to study the regions over time to see if there are any changes and to rule out other causes for the changes, such as dry avalanches.

How close could the rover safely get to an RSL? "That's exactly the question that needs to be addressed early in the process," said Catharine Conley, NASA's planetary protection officer. "Kilometers away -- it's unlikely that it would be an issue. In terms of coming much closer, we need to understand well in advance the potential for Earth organisms to come off the rover, and that will tell us how far away the rover should stay."

Conley notes that while the Martian environment is considered harsh for many organisms, that's not necessarily the case for all of them -- particularly microbes that might be hiding within the nooks and crannies of a robotic explorer.

The darkish streaks are considered "special regions" on Mars, where extra precautions must be taken to prevent contamination because of the suspected presence of liquid water, considered a prerequisite for life.

The Mars Science Laboratory (MSL) spacecraft launched from Cape Canaveral, Florida, on Nov. 26, 2011, arriving on the Red Planet on Aug. 6. 2012. NASA's most ambitious Mars mission to date, its goal was to study the Martian environment and determine if Mars is, or was, suitable for life. A decision on the rover's potential extended mission is expected in the next several months.

NASA's Jet Propulsion Laboratory, a division of Caltech in Pasadena, California, built the rover and manages the Curiosity mission for NASA's Science Mission Directorate, Washington.

Los Alamos National Laboratory leads the U.S. and French team that jointly developed and operates ChemCam. NASA's Jet Propulsion Laboratory, a division of Caltech in Pasadena, California, built the rover and manages the Curiosity mission for NASA's Science Mission Directorate, Washington.

Related article:

NASA Confirms Evidence That Liquid Water Flows on Today’s Mars
http://orbiterchspacenews.blogspot.ch/2015/09/nasa-confirms-evidence-that-liquid.html

Related links:

Mars Science Laboratory (MSL) or "Curiosity" rover: http://mars.nasa.gov/msl/

ChemCam instrument on Curiosity rover: http://www.msl-chemcam.com/

Images (mentioned), Text, Credits: NASA/JPL/Guy Webster/Los Alamos National Laboratory/Laura Mullane.

Greetings, Orbiter.ch

Spectacular VLT images of Jupiter presented just days before the arrival of the Juno spacecraft












ESO - European Southern Observatory logo.

27 June 2016

Jupiter Awaits Arrival of Juno

Jupiter imaged using the VISIR instrument on the VLT

In preparation for the imminent arrival of NASA’s Juno spacecraft, astronomers have used ESO’s Very Large Telescope to obtain spectacular new infrared images of Jupiter. They are part of a campaign to create high-resolution maps of the giant planet. These observations will inform the work to be undertaken by Juno over the coming months, helping astronomers to better understand the gas giant ahead of Juno’s close encounter.

A team led by Leigh Fletcher of the University of Leicester in the United Kingdom are presenting new images of Jupiter at the UK’s Royal Astronomical Society’s National Astronomy Meeting in Nottingham. Obtained with the VISIR instrument on ESO’s Very Large Telescope, the new images are part of a focused effort to improve understanding of Jupiter’s atmosphere prior to the arrival of NASA’s Juno spacecraft [1] in July this year.

Two faces of Jupiter

The campaign has involved the use of several telescopes based in Hawaii and Chile, as well as contributions from amateur astronomers around the world. The maps do not just give snapshots of the planet, they also reveal how Jupiter’s atmosphere has been shifting and changing in the months prior to Juno’s arrival.

The Juno spacecraft was launched in 2011, and has travelled nearly 3000 million kilometres to reach the Jovian system. Spacecraft can collect data free from the limitations affecting telescopes on Earth so with that in mind, it might seem surprising that this ground-based campaign was considered so important.

Comparison of VISIR and visible light views of Jupiter

Leigh Fletcher describes the significance of this research in preparing for Juno’s arrival: “These maps will help set the scene for what Juno will witness in the coming months. Observations at different wavelengths across the infrared spectrum allow us to piece together a three-dimensional picture of how energy and material are transported upwards through the atmosphere.”

Capturing sharp images through the Earth’s constantly shifting atmosphere is one of the greatest challenges faced by ground-based telescopes. This glimpse of Jupiter’s own turbulent atmosphere, rippling with cooler gas clouds, was possible thanks to a technique known as lucky imaging. Sequences of very short exposures were taken of Jupiter by VISIR, producing thousands of individual frames. The lucky frames, where the image is least affected by the atmosphere’s turbulence, are selected and the rest discarded. Those selected frames are aligned and combined to produce remarkable final pictures like the ones shown here.

Jupiter imaged using the VISIR instrument on the VLT

Glenn Orton, leader of the ground-based campaign in support of Juno’s mission, elaborates on why the preparatory observations from Earth are so valuable: “The combined efforts of an international team of amateur and professional astronomers have provided us with an incredibly rich dataset over the past eight months. Together with the new results from Juno, the VISIR dataset in particular will allow researchers to characterise Jupiter’s global thermal structure, cloud cover and distribution of gaseous species.”

Whilst the modern Juno’s mission to unveil the mighty Jupiter will bring new and highly anticipated results, its way has been paved by ground-based efforts here on Earth.

Notes:

[1] The Juno spacecraft was named after the mythological wife of the god Jupiter. Just like his planetary counterpart, Jupiter veiled himself in clouds to hide his mischief, and only Juno was able to peer through them to see his true nature.

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 16 countries: Austria, Belgium, Brazil, the Czech Republic, Denmark, France, Finland, Germany, Italy, the Netherlands, Poland, Portugal, Spain, Sweden, Switzerland and the United Kingdom, along with the host state of Chile. 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 a major partner in ALMA, the largest astronomical project in existence. And on Cerro Armazones, close to Paranal, ESO is building the 39-metre European Extremely Large Telescope, the E-ELT, which will become “the world’s biggest eye on the sky”.

Related article:

NASA's Juno Spacecraft Closing in on Jupiter
http://orbiterchspacenews.blogspot.ch/2016/06/nasas-juno-spacecraft-closing-in-on.html

Links:

NASA Juno mission information: https://www.nasa.gov/mission_pages/juno/main/index.html

Coordinated observing campaign details: http://www.missionjuno.swri.edu/

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

UK’s Royal Astronomical Society’s National Astronomy Meeting: https://nam2016.org/

ESO’s Very Large Telescope (VLT): http://www.eso.org/public/unitedkingdom/teles-instr/paranal/

NASA’s Juno spacecraft: https://www.nasa.gov/mission_pages/juno/main/index.html

Images, Text, Credits: ESO/L. Fletcher/Damian Peach/Video: ESO/L. Fletcher.

Best regards, Orbiter.ch

Trace of Itokawa's Four Billion Years of History Found on Particles

JAXA - Hayabusa Mission patch.

June 27, 2016

Asteroid "Itokawa"

A research team led by Aerospace Project Research Associate Toru Matsumoto of the Japan Aerospace Exploration Agency (JAXA) found that traces of more than four billion years of history up until now of the Asteroid "Itokawa" were recoded on the surface of particles that were recovered from Itokawa by the Asteroid Explorer “Hayabusa” to bring back to the Earth, and their surface patterns and marks were analyzed by the research team.

The particles analyzed this time were just over 10 micrometers in size, and their surface patterns and marks were merely in nanometers (one millionth of one micrometer). The research team observed the faint structure of the particle surface in details through X-ray microtomography (X-ray CT) and by scanning electron microscopes. As a result, the surface pattern that had been believed to be just one type was found to be at least four variations.

One of them was found to stem from Itokawa's parent body. Asteroid Itokawa was not in its current shape from the beginning. When it was born over four billion years ago, it was a parent body about 40 times bigger (than current Itokawawa). The parent body was destroyed in fragments once, and it is believed that those fragments were assembled again to form Itokawa because some particles analyzed this time retain the pattern that was thought to be made over four billion years ago.

Hayabusa probe approach  in 3D

In addition to the above, we also found some patterns that were formed due to long-time exposure to solar wind or caused by friction between particles. Those patterns are shaped in a time scale of one million to thousand years. In other words, we can track the asteroid history by observing the particle surface.

The research method this time can acquire a lot of information without hurting the precious particles. Therefore, this method will become an imperative first-step analysis skill when studying extraterrestrial objects.

Publication:

Magazine: Geochimica et Cosmochimica Acta (dated August 15, 2016)
Thesis title: Nanomorphology of Itokawa regolith particles: Application to space-weathering processes affecting the Itokawa asteroid.
Authors: Toru Matsumoto, Akira Tsuchiyama, Kentaro Uesugi, Tsukasa Nakano, Masayuki Uesugi, Junya Matsuno, Takashi Nagano, Akira Shimada, Akihisa Takeuchi, Yoshio Suzuki, Tomoki Nakamura, Michihiko Nakamura, Arnold Gucsik, Keita Nagaki, Tatsuhiro Sakaiya, Tadashi Kondo DOI No.: 10.1016/j.gca.2016.05.011.

Reference:

Asteroid Explorer "HAYABUSA" (MUSES-C): http://global.jaxa.jp/projects/sat/muses_c/

Images, Text, Credits: National Research and Development Agency/Japan Aerospace Exploration Agency (JAXA).

Greetings, Orbiter.ch