mardi 12 mars 2019

What Scientists Found After Sifting Through Dust in the Solar System













NASA - STEREO Mission logo.

March 12, 2019

Just as dust gathers in corners and along bookshelves in our homes, dust piles up in space too. But when the dust settles in the solar system, it’s often in rings. Several dust rings circle the Sun. The rings trace the orbits of planets, whose gravity tugs dust into place around the Sun, as it drifts by on its way to the center of the solar system.

The dust consists of crushed-up remains from the formation of the solar system, some 4.6 billion years ago — rubble from asteroid collisions or crumbs from blazing comets. Dust is dispersed throughout the entire solar system, but it collects at grainy rings overlying the orbits of Earth and Venus, rings that can be seen with telescopes on Earth. By studying this dust — what it’s made of, where it comes from, and how it moves through space — scientists seek clues to understanding the birth of planets and the composition of all that we see in the solar system.

Two recent studies report new discoveries of dust rings in the inner solar system. One study uses NASA data to outline evidence for a dust ring around the Sun at Mercury’s orbit. A second study from NASA identifies the likely source of the dust ring at Venus’ orbit: a group of never-before-detected asteroids co-orbiting with the planet.

“It’s not every day you get to discover something new in the inner solar system,” said Marc Kuchner, an author on the Venus study and astrophysicist at NASA’s Goddard Space Flight Center in Greenbelt, Maryland. “This is right in our neighborhood.”


Image above: In this illustration, several dust rings circle the Sun. These rings form when planets’ gravities tug dust grains into orbit around the Sun. Recently, scientists have detected a dust ring at Mercury’s orbit. Others hypothesize the source of Venus’ dust ring is a group of never-before-detected co-orbital asteroids.
Image Credits: NASA’s Goddard Space Flight Center/Mary Pat Hrybyk-Keith.

Another Ring Around the Sun

Guillermo Stenborg and Russell Howard, both solar scientists at the Naval Research Laboratory in Washington, D.C., did not set out to find a dust ring. “We found it by chance,” Stenborg said, laughing. The scientists summarized their findings in a paper published in The Astrophysical Journal on Nov. 21, 2018.

They describe evidence of a fine haze of cosmic dust over Mercury’s orbit, forming a ring some 9.3 million miles wide. Mercury — 3,030 miles wide, just big enough for the continental United States to stretch across — wades through this vast dust trail as it circles the Sun.

Ironically, the two scientists stumbled upon the dust ring while searching for evidence of a dust-free region close to the Sun. At some distance from the Sun, according to a decades-old prediction, the star’s mighty heat should vaporize dust, sweeping clean an entire stretch of space. Knowing where this boundary is can tell scientists about the composition of the dust itself, and hint at how planets formed in the young solar system.

So far, no evidence has been found of dust-free space, but that’s partly because it would be difficult to detect from Earth. No matter how scientists look from Earth, all the dust in between us and the Sun gets in the way, tricking them into thinking perhaps space near the Sun is dustier than it really is.

Stenborg and Howard figured they could work around this problem by building a model based on pictures of interplanetary space from NASA’s STEREO satellite — short for Solar and Terrestrial Relations Observatory.


Image above: Scientists think planets start off as mere grains of dust. They emerge from giant disks of gas and dust that circle young stars. Gravity and other forces cause material within the disk to collide and coalesce. (illustration) Image Credits: NASA’s Jet Propulsion Laboratory.

Ultimately, the two wanted to test their new model in preparation for NASA’s Parker Solar Probe, which is currently flying a highly elliptic orbit around the Sun, swinging closer and closer to the star over the next seven years. They wanted to apply their technique to the images Parker will send back to Earth and see how dust near the Sun behaves.

Scientists have never worked with data collected in this unexplored territory, so close to the Sun. Models like Stenborg and Howard’s provide crucial context for understanding Parker Solar Probe’s observations, as well as hinting at what kind of space environment the spacecraft will find itself in — sooty or sparkling clean.

Two kinds of light show up in STEREO images: light from the Sun’s blazing outer atmosphere — called the corona — and light reflected off all the dust floating through space. The sunlight reflected off this dust, which slowly orbits the Sun, is about 100 times brighter than coronal light.

“We’re not really dust people,” said Howard, who is also the lead scientist for the cameras on STEREO and Parker Solar Probe that take pictures of the corona. “The dust close to the Sun just shows up in our observations, and generally, we have thrown it away.” Solar scientists like Howard — who study solar activity for purposes such as forecasting imminent space weather, including giant explosions of solar material that the Sun can sometimes send our way — have spent years developing techniques to remove the effect of this dust. Only after removing light contamination from dust can they clearly see what the corona is doing.

STEREO spacecrafts. Image Credit: NASA

The two scientists built their model as a tool for others to get rid of the pesky dust in STEREO — and eventually Parker Solar Probe — images, but the prediction of dust-free space lingered in the back of their minds. If they could devise a way of separating the two kinds of light and isolate the dust-shine, they could figure out how much dust was really there. Finding that all the light in an image came from the corona alone, for example, could indicate they’d found dust-free space at last.

Mercury’s dust ring was a lucky find, a side discovery Stenborg and Howard made while they were working on their model. When they used their new technique on the STEREO images, they noticed a pattern of enhanced brightness along Mercury’s orbit — more dust, that is — in the light they’d otherwise planned to discard.

“It wasn’t an isolated thing,” Howard said. “All around the Sun, regardless of the spacecraft’s position, we could see the same five percent increase in dust brightness, or density. That said something was there, and it’s something that extends all around the Sun.”

Scientists never considered that a ring might exist along Mercury’s orbit, which is maybe why it’s gone undetected until now, Stenborg said. “People thought that Mercury, unlike Earth or Venus, is too small and too close to the Sun to capture a dust ring,” he said. “They expected that the solar wind and magnetic forces from the Sun would blow any excess dust at Mercury’s orbit away.”

With an unexpected discovery and sensitive new tool under their belt, the researchers are still interested in the dust-free zone. As Parker Solar Probe continues its exploration of the corona, their model can help others reveal any other dust bunnies lurking near the Sun.

Asteroids Hiding in Venus’ Orbit

This isn’t the first time scientists have found a dust ring in the inner solar system. Twenty-five years ago, scientists discovered that Earth orbits the Sun within a giant ring of dust. Others uncovered a similar ring near Venus’ orbit, first using archival data from the German-American Helios space probes in 2007, and then confirming it in 2013, with STEREO data.

Since then, scientists determined the dust ring in Earth’s orbit comes largely from the asteroid belt, the vast, doughnut-shaped region between Mars and Jupiter where most of the solar system’s asteroids live. These rocky asteroids constantly crash against each other, sloughing dust that drifts deeper into the Sun’s gravity, unless Earth’s gravity pulls the dust aside, into our planet’s orbit.

At first, it seemed likely that Venus’ dust ring formed like Earth’s, from dust produced elsewhere in the solar system. But when Goddard astrophysicist Petr Pokorny modeled dust spiraling toward the Sun from the asteroid belt, his simulations produced a ring that matched observations of Earth’s ring — but not Venus’.

This discrepancy made him wonder if not the asteroid belt, where else does the dust in Venus’ orbit come from? After a series of simulations, Pokorny and his research partner Marc Kuchner hypothesized it comes from a group of never-before-detected asteroids that orbit the Sun alongside Venus. They published their work in The Astrophysical Journal Letters on March 12, 2019.

Venus Dust Ring

Video above: This visualization displays a simulation of the dust ring at Venus’ orbit around the Sun. Scientists hypothesize a group of never-before-detected asteroids orbiting the Sun with Venus are responsible for supplying Venus’ dust ring. Video Credits: NASA’s Scientific Visualization Studio/Tom Bridgman.

“I think the most exciting thing about this result is it suggests a new population of asteroids that probably holds clues to how the solar system formed,” Kuchner said. If Pokorny and Kuchner can observe them, this family of asteroids could shed light on Earth and Venus’ early histories. Viewed with the right tools, the asteroids could also unlock clues to the chemical diversity of the solar system.

Because it’s dispersed over a larger orbit, Venus’ dust ring is much larger than the newly detected ring at Mercury’s. About 16 million miles from top to bottom and 6 million miles wide, the ring is littered with dust whose largest grains are roughly the size of those in coarse sandpaper. It’s about 10 percent denser with dust than surrounding space. Still, it’s diffuse — pack all the dust in the ring together, and all you’d get is an asteroid two miles across.

Using a dozen different modeling tools to simulate how dust moves around the solar system, Pokorny modeled all the dust sources he could think of, looking for a simulated Venus ring that matched the observations. The list of all the sources he tried sounds like a roll call of all the rocky objects in the solar system: Main Belt asteroids, Oort Cloud comets, Halley-type comets, Jupiter-family comets, recent collisions in the asteroid belt.

“But none of them worked,” Kuchner said. “So, we started making up our own sources of dust.”

Perhaps, the two scientists thought, the dust came from asteroids much closer to Venus than the asteroid belt. There could be a group of asteroids co-orbiting the Sun with Venus — meaning they share Venus’ orbit, but stay far away from the planet, often on the other side of the Sun. Pokorny and Kuchner reasoned a group of asteroids in Venus’ orbit could have gone undetected until now because it’s difficult to point earthbound telescopes in that direction, so close to the Sun, without light interference from the Sun.


Image above: Asteroids represent building blocks of the solar system’s rocky planets. When they collide in the asteroid belt, they shed dust that scatters throughout the solar system, which scientists can study for clues to the early history of planets. (illustration) Image Credits: NASA's Goddard Space Flight Center Conceptual Image Lab.

Co-orbiting asteroids are an example of what’s called a resonance, an orbital pattern that locks different orbits together, depending on how their gravitational influences meet. Pokorny and Kuchner modeled many potential resonances: asteroids that circle the Sun twice for every three of Venus’ orbits, for example, or nine times for Venus’ ten, and one for one. Of all the possibilities, one group alone produced a realistic simulation of the Venus dust ring: a pack of asteroids that occupies Venus’ orbit, matching Venus’ trips around the Sun one for one.

But the scientists couldn’t just call it a day after finding a hypothetical solution that worked. “We thought we’d discovered this population of asteroids, but then had to prove it and show it works,” Pokorny said. “We got excited, but then you realize, ‘Oh, there’s so much work to do.’”

They needed to show that the very existence of the asteroids makes sense in the solar system. It would be unlikely, they realized, that asteroids in these special, circular orbits near Venus arrived there from somewhere else like the asteroid belt. Their hypothesis would make more sense if the asteroids had been there since the very beginning of the solar system.

The scientists built another model, this time starting with a throng of 10,000 asteroids neighboring Venus. They let the simulation fast forward through 4.5 billion years of solar system history, incorporating all the gravitational effects from each of the planets. When the model reached present-day, about 800 of their test asteroids survived the test of time.

Pokorny considers this an optimistic survival rate. It indicates that asteroids could have formed near Venus’ orbit in the chaos of the early solar system, and some could remain there today, feeding the dust ring nearby.

The next step is actually pinning down and observing the elusive asteroids. “If there’s something there, we should be able to find it,” Pokorny said. Their existence could be verified with space-based telescopes like Hubble, or perhaps interplanetary space-imagers similar to STEREO’s. Then, the scientists will have more questions to answer: How many of them are there, and how big are they? Are they continuously shedding dust, or was there just one break-up event? 

Dust Rings Around Other Stars


Image above: In this illustration, an asteroid breaks apart under the powerful gravity of LSPM J0207+3331, a white dwarf star located around 145 light-years away. Scientists think crumbling asteroids supply the dust rings surrounding this old star. Image Credits: NASA’s Goddard Space Flight Center/Scott Wiessinger.

The dust rings that Mercury and Venus shepherd are just a planet or two away, but scientists have spotted many other dust rings in distant star systems. Vast dust rings can be easier to spot than exoplanets, and could be used to infer the existence of otherwise hidden planets, and even their orbital properties.

But interpreting extrasolar dust rings isn’t straightforward. “In order to model and accurately read the dust rings around other stars, we first have to understand the physics of the dust in our own backyard,” Kuchner said. By studying neighboring dust rings at Mercury, Venus and Earth, where dust traces out the enduring effects of gravity in the solar system, scientists can develop techniques for reading between the dust rings both near and far.

Related links:

Astrophysical Journal Letters: https://iopscience.iop.org/article/10.3847/2041-8213/ab0827

STEREO (Solar TErrestrial RElations Observatory): http://www.nasa.gov/mission_pages/stereo/main/index.html

STEREO data: https://www.uclan.ac.uk/news/new_space_dust_ring_discovered_near_venus.php

Solar System: https://www.nasa.gov/topics/solarsystem/index.html

NASA’s Parker Solar Probe: http://nasa.gov/parker

Helios space probes: https://solarsystem.nasa.gov/missions/helios-2/in-depth/

Images (mentioned), Video (mentioned), Text, Credits: NASA/Rob Garner/Goddard Space Flight Center, by Lina Tran.

Greetibgs, Orbiter.ch

lundi 11 mars 2019

FASER: CERN approves new experiment to look for long-lived, exotic particles













CERN - European Organization for Nuclear Research logo.

11 March, 2019

The experiment, which will complement existing searches for dark matter at the LHC, will be operational in 2021


Image above: A 3D picture of the planned FASER detector as seen in the TI12 tunnel. The detector is precisely aligned with the collision axis in ATLAS, 480 m away from the collision point (Image: FASER/CERN) (Image: CERN).

Geneva, on March 5, 2019, the CERN Research Board approved a new experiment designed to look for light and weakly interacting particles at the LHC. FASER, or the Forward Search Experiment, will complement CERN’s ongoing physics programme, extending its discovery potential to several new particles. Some of these sought-after particles are associated with dark matter, which is a hypothesised kind of matter that does not interact with the electromagnetic force and consequently cannot be directly detected using emitted light. Astrophysical evidence shows that dark matter makes up about 27% of the universe, but it has never been observed and studied in a laboratory.

With an expanding interest in undiscovered particles, particularly long-lived particles and dark matter, new experiments have been proposed to expand the scientific potential of CERN’s accelerator complex and infrastructure as part of the Physics Beyond Collider (PBC) study, under whose aegis FASER operates. “This novel experiment helps diversify the physics programme of colliders such as the LHC, and allows us to address unanswered questions in particle physics from a different perspective,” explains Mike Lamont, co-coordinator of the PBC study group.

The four main LHC detectors are not suited for detecting the light and weakly interacting particles that might be produced parallel to the beam line. They may travel hundreds of metres without interacting with any material before transforming into known and detectable particles, such as electrons and positrons. The exotic particles would escape the existing detectors along the current beam lines and remain undetected. FASER will therefore be located along the beam trajectory 480 metres downstream from the interaction point within ATLAS. Although the protons in the particle beams will be bent by magnets around the LHC, the light, very weakly interacting particles will continue along a straight line and their “decay products” can be spotted by FASER. The potential new particles would be very collimated with the beam, spreading out very little, therefore allowing a relatively small and inexpensive detector to perform highly sensitive searches.

The detector’s total length is under 5 metres and its core cylindrical structure has a radius of 10 centimetres. It will be installed in a side tunnel along an unused transfer line which links the LHC to its injector, the Super Proton Synchrotron. To allow FASER to be constructed in a quick and affordable way, it will use spare detector parts kindly donated from the ATLAS and LHCb experiments. The collaboration of 16 institutes that is building the detector and will carry out the experiments is supported by the Heising-Simons Foundation and the Simons Foundation.

FASER will search for a suite of hypothesised particles including so-called “dark photons”, particles which are associated with dark matter, neutralinos and others. The experiment will be installed during the ongoing Long Shutdown 2 and start taking data from LHC’s Run 3 between 2021 and 2023.

“It is very exciting to have FASER approved for installation at CERN. It is amazing how the collaboration has come together so quickly and we are looking forward to recording our first data when the LHC starts up again in 2021,” says Jamie Boyd, co-spokesperson of the FASER experiment.

“FASER is a neat physics proposal that addresses a particular aspect in the search for physics beyond the Standard Model and I am pleased to see it being implemented so efficiently,” adds Eckhard Elsen, CERN’s Director for Research and Computing.

Note:

CERN, the European Organization for Nuclear Research, is one of the world’s largest and most respected centres for scientific research. Its business is fundamental physics, finding out what the Universe is made of and how it works. At CERN, the world’s largest and most complex scientific instruments are used to study the basic constituents of matter — the fundamental particles. By studying what happens when these particles collide, physicists learn about the laws of Nature.

The instruments used at CERN are particle accelerators and detectors. Accelerators boost beams of particles to high energies before they are made to collide with each other or with stationary targets. Detectors observe and record the results of these collisions.

For more information about European Organization for Nuclear Research (CERN), Visit: https://home.cern/

Image (mentioned), Text, Credits: CERN/Cristina Agrigoroae.

Best regards, Orbiter.ch

Station Crews Take a Breather in Anticipation of Launch on March 14













ISS - Expedition 58 Mission patch.

March 11, 2019

This Monday, the Expedition 58 crew is taking a well-deserved break after a busy week prior wrapping up SpaceX’s inaugural flight of Crew Dragon to the International Space Station during Demonstration Mission-1, an uncrewed flight test. The vehicle departed station for a splashdown off the Florida Space Coast at 8:45 a.m. EST Friday, bringing NASA even closer to sending astronauts into space from American soil.


Image above: A view from the International Space Station taken Feb. 21, 2019. Image Credit: NASA.

The Expedition 59 crew, which will soon get their turn in orbit, is taking time to relax and review their launch day flight plan at the Baikonur Cosmodrome in Kazakhstan. On March 14, Commander Alexey Ovchinin and Flight Engineers Nick Hague and Christina Koch are set to blastoff at 3:14 p.m. EDT and dock less than six hours later to the Rassvet module at the orbiting laboratory. Research investigations will get a boost in productivity with their arrival, which will bring the full crew complement to six. All launch and docking events will be carried live on NASA TV.


Image above: NASA astronauts Nick Hague and Christina Hammock Koch and Alexey Ovchinin of the Russian space agency Roscosmos are scheduled to launch Feb. 28, 2019, from the Baikonour Cosmodrome in Kazakhstan for a mission to the International Space Station as members of Expeditions 59 and 60. Image Credit: NASA.

Tomorrow, the Soyuz MS-12 that will carry the new crew crawls to the launch pad at Baikonur as Expedition 58 resumes science studies.

Related article:

NASA Astronaut Nick Hague Set for New Space Station Mission After Abort
https://www.nasa.gov/press-release/nasa-astronaut-nick-hague-set-for-new-space-station-mission-after-abort

Related links:

Expedition 58: https://www.nasa.gov/mission_pages/station/expeditions/expedition58/index.html

Expedition 59: https://www.nasa.gov/mission_pages/station/expeditions/expedition59/index.html

NASA TV: https://www.nasa.gov/live/

Space Station Research and Technology: https://www.nasa.gov/mission_pages/station/research/index.html

International Space Station (ISS): https://www.nasa.gov/mission_pages/station/main/index.html

Images (mentioned), Text, Credits: NASA/Catherine Williams.

Best regards, Orbiter.ch

Gateway to the Moon









ESA - European Space Agency patch.

11 March 2019

The International Space Station partners have endorsed plans to continue the development of the Gateway, an outpost around the Moon that will act as a base to support both robots and astronauts exploring the lunar surface.

The Multilateral Coordination Board, which oversees the management of the Space Station, stressed its common hope for the Gateway to open up a cost-effective and sustainable path to the Moon and beyond.

Space gateway

The announcement comes after several years of extensive study among space agencies who have developed a technically achievable design. The partnership includes European countries (represented by ESA), the United States (NASA), Russia (Roscosmos), Canada (CSA) and Japan (JAXA).

“We are getting ready, together, to send humans farther into the Solar System than ever before. The lunar Gateway is the next big step in human exploration and we are working to make Europe a part of it,” says David Parker, ESA’s human and robotic exploration director.

NASA’s Orion spacecraft will transport astronauts to the Gateway. Orion is powered by the European Service Module, which will give the crewed vehicle a final push to inject it into translunar orbit.

Almost 50 years after the first human landing on the Moon, the Gateway will support human and robotic access to the lunar surface. “We will extend the presence of humans one thousand times farther into space compared to today’s International Space Station,” adds David Parker.

Power to the Moon

The Gateway will offer a platform for scientific discovery in deep space and build invaluable experience for the challenges of future human missions to Mars.

Nearly 400 000 km away from Earth, its orbit will provide excellent visibility of both the Earth and the Moon’s surface allowing it to relay communications.

According to the board, the Gateway “will stimulate the development of advanced technologies, expand the emerging space economy, and continue to leverage the societal benefits of space exploration for citizens on Earth.”

The Gateway concept

Canada has already confirmed its commitment to join NASA in the Gateway and contribute advanced robotics to the project, making the Canadian Space Agency the first partner agency.

ESA’s potential involvement includes the ESPRIT module to provide communications and refueling of the Gateway and a science airlock for deploying science payloads and cubesats.

ESA is also studying its involvement in the international habitation module working with the international partners.

A possible commitment towards building Europe’s contributions to the Gateway will be one of the key decisions to be made by Ministers at the Space19+ Conference in November 2019.

A Springboard to the future

The Gateway would not be possible without the International Space Station. After two decades of successful operations in orbit and a solid partnership on Earth, the Space Station is the worlds largest cooperative programme in science and technology.

Station Moon transit

With more than 100 countries having used it for research and education activities, the partners remark that the Space Station is also nurturing a growing economy of business and services in Earth’s orbit.

“This international team has not only built the Space Station and risen to the challenges of its day-to-day dynamic operation, but – most importantly – delivered tangible benefits to humanity,” says the statement.

Multilateral Coordination Board Joint Statement


Image above: In a meeting on March 5, 2019, the International Space Station (ISS) Multilateral Coordination Board (MCB) emphasized the importance of affordable and sustainable exploration. The MCB members from the United States, Canada, Europe, Japan, and Russia discussed their common interest in deploying a human outpost in the lunar vicinity as the next step, a Gateway that will serve as a way station for exploring the surface of the Moon. The MCB endorsed plans to continue developing the Gateway and welcomed each Agency’s intention to seek the necessary approvals for providing the elements, modules and capabilities shown in this graphic concept for Gateway configuration. Image Credit: NASA.

Related articles:

NASA Secures First International Partnership for Moon to Mars Lunar Gateway
https://orbiterchspacenews.blogspot.com/2019/03/nasa-secures-first-international.html

Canada Commits to Joining NASA at the Moon
https://orbiterchspacenews.blogspot.com/2019/02/canada-commits-to-joining-nasa-at-moon.html

Related links:

Multilateral Coordination Board Joint Statement
https://www.nasa.gov/feature/multilateral-coordination-board-joint-statement

Roscosmos and NASA Work Out the Safety Protocols for Docking of American Spacecraft
http://en.roscosmos.ru/20770/

Multilateral Coordination Board Joint Statement toward the development of the Gateway
http://global.jaxa.jp/press/2019/03/20190312b.html

The Lunar Gateway is the next major international collaboration in human space exploration
http://www.asc-csa.gc.ca/eng/astronomy/moon-exploration/default.asp?utm_source=website&utm_medium=news&utm_campaign=moon-exploration&utm_content=lunar-gateway&utm_term=home-page

Human and Robotic Exploration: http://www.esa.int/Our_Activities/Human_and_Robotic_Exploration

Orion service module: http://www.esa.int/Our_Activities/Human_and_Robotic_Exploration/Orion

Lunar exploration interactive guide: http://lunarexploration.esa.int/#/intro

Gateway: https://www.esa.int/Our_Activities/Human_and_Robotic_Exploration/Exploration/Space_gateway

Where is the International Space Station?: http://www.esa.int/Our_Activities/Human_and_Robotic_Exploration/International_Space_Station/Where_is_the_International_Space_Station

Images, Text, Credits: ESA/K. Oldenburg/NASA/ATG Medialab/Dylan O’Donnell.

Greetings, Orbiter.ch

NASA’s LRO Sheds Light on Lunar Water Movement













NASA - Lunar Reconnaissance Orbiter (LRO) patch.

March 11, 2019

Using an instrument aboard NASA’s Lunar Reconnaissance Orbiter (LRO), scientists have observed water molecules moving around the dayside of the Moon.

A paper published in Geophysical Research Letters describes how Lyman Alpha Mapping Project (LAMP) measurements of the sparse layer of molecules temporarily stuck to the surface helped characterize lunar hydration changes over the course of a day.

Up until the last decade or so, scientists thought the Moon was arid, with any water existing mainly as pockets of ice in permanently shaded craters near the poles. More recently, scientists have identified surface water in sparse populations of molecules bound to the lunar soil, or regolith. The amount and locations vary based on the time of day. This water is more common at higher latitudes and tends to hop around as the surface heats up.

“This is an important new result about lunar water, a hot topic as our nation’s space program returns to a focus on lunar exploration,” said Dr. Kurt Retherford, the principal investigator of the LAMP instrument from Southwest Research Institute in San Antonio, Texas. “We recently converted the LAMP’s light collection mode to measure reflected signals on the lunar dayside with more precision, allowing us to track more accurately where the water is and how much is present.”

View of the Moon. Credit: NASA

Water molecules remain tightly bound to the regolith until surface temperatures peak near lunar noon. Then, molecules thermally desorb and can bounce to a nearby location that is cold enough for the molecule to stick or populate the Moon’s extremely tenuous atmosphere or exosphere, until temperatures drop and the molecules return to the surface. SwRI’s Dr. Michael Poston, now a research scientist on the LAMP team, had previously conducted extensive experiments with water and lunar samples collected by the Apollo missions. This research revealed the amount of energy needed to remove water molecules from lunar materials, helping scientists understand how water is bound to surface materials.

“Lunar hydration is tricky to measure from orbit, due to the complex way that light reflects off of the lunar surface,” Poston said. “Previous research reported quantities of hopping water molecules that were too large to explain with known physical processes. I’m excited about these latest results because the amount of water interpreted here is consistent with what lab measurements indicate is possible.

Scientists have hypothesized that hydrogen ions in the solar wind may be the source of most of the Moon’s surface water. With that in mind, when the Moon passes behind the Earth and is shielded from the solar wind, the “water spigot” should essentially turn off. However, the water observed by LAMP does not decrease when the Moon is shielded by the Earth and the region influenced by its magnetic field, suggesting water builds up over time, rather than “raining” down directly from the solar wind.

Lunar Reconnaissance Orbiter (LRO). Image Credit: NASA

“These results aid in understanding the lunar water cycle and will ultimately help us learn about accessibility of water that can be used by humans in future missions to the Moon,” said Amanda Hendrix, a senior scientist at the Planetary Science Institute and lead author of the paper. “Lunar water can potentially be used by humans to make fuel or to use for radiation shielding or thermal management; if these materials do not need to be launched from Earth, that makes these future missions more affordable.”

“This result is an important step in advancing the water story on the Moon and is a result of years of accumulated data from the LRO mission,” said John Keller, LRO deputy project scientist from NASA's Goddard Space Flight Center in Greenbelt, Maryland.

Goddard manages the LRO mission for the Science Mission Directorate at NASA Headquarters in Washington, D.C. Funding for the research came from LRO, and the team received additional support from a NASA Solar System Exploration Research Virtual Institute (SSERVI) cooperative agreement.

NASA is leading a sustainable return to the Moon with commercial and international partners to expand human presence in space and bring back new knowledge and opportunities.

For more information on LRO, visit: https://www.nasa.gov/lro

For more information on NASA’s Moon to Mars theme, visit: https://www.nasa.gov/moontomars

Images (mentioned), Text, Credits: NASA/Karl Hille/Goddard Space Flight Center, by Nancy Neal Jones.

Best regards, Orbiter.ch

CASC - Long March-3B launches ChinaSat-6C (Zhongxing-6C)













CASC - China Aerospace Science and Technology Corporation logo.

March 11, 2019

Long March-3B launches ChinaSat-6C

A Long March-3B rocket launched the ChinaSat-6C satellite from the Xichang Satellite Launch Center, Sichuan Province, southwest China, on 9 March 2019, at 16:28 UTC (10 March at 00:28 local time).

Long March-3B launches ChinaSat-6C (Zhongxing-6C)

Sent into a geostationary orbit, ChinaSat-6C or Zhongxing-6C (中星6C) is a communications satellite developed by the China Academy of Space Technology and will be operated by the China Satellite Communications Co., Ltd.

ChinaSat-6C (Zhongxing-6C)

It can cover China, Australia, New Zealand and the South Pacific island countries. The mission marks the 300th launch of the Long March carrier rocket series developed by the China Aerospace Science and Technology Corporation.

China Aerospace Science and Technology Corporation (CASC): http://english.spacechina.com/n16421/index.html

Images, Video, Text, Credits: Credit: CASC/China Central Television (CCTV)/SciNews/Günter Space Page.

Greetings, Orbiter.ch

Hayabusa2 touchdown on Asteroid Ryugu












JAXA - Hayabusa2 Mission patch.

March 11, 2019

Hayabusa2 touchdown on Asteroid Ryugu

JAXA’s Asteroid Explorer “Hayabusa2” collected a sample from asteroid Ryugu on 22 February 2019. The touchdown was captured using the onboard small monitor camera (CAM-H). The image of the site immediately after touchdown was taken with the Optical Navigation Camera – Wide angle (ONC-W1) on 22 February 2019. Video Credits: JAXA, University of Tokyo, Kochi University, Rikkyo University, Nagoya University, Chiba Institute of Technology, Meiji University, Aizu University, AIST/SciNews.

From February 20 to 22, we conducted the touchdown operation (TD1-L8E1) of Hayabusa2 on the surface of asteroid Ryugu. Figure 1 shows an image taken with the Optical Navigation Camera – Wide angle (ONC-W1) during the spacecraft ascent after touchdown.


Figure 1: Image captured near the touchdown site immediately after touchdown. The photograph was taken with the Optical Navigation Camera – Wide angle (ONC-W1) on February 22, 2019 at an onboard time of around 07:30 JST. Image credits: JAXA, University of Tokyo, Kochi University, Rikkyo University, Nagoya University, Chiba Institute of Technology, Meiji University, University of Aizu, AIST.)

Figure 1 was captured roughly 1 minute after touchdown at an estimated altitude of about 25m (error is a few meter). The color of the region beneath the spacecraft’s shadow differs from the surroundings and has been discolored by the touchdown. At the moment, the reason for the discoloration is unknown but it may be due to the grit that was blown upwards by the spacecraft thrusters or bullet (projectile).

An artists impression of the Hayabusa2 probes encounter with a near Earth-asteroid. Credit: JAXA

 Figure 2 shows the same region as Figure 1 overlapped with the planned touchdown site. Since the touchdown site sits at the center of the discolored area, we believe that it was possible to touchdown at the expected place. However, an accurate touchdown point will be examined during a more detailed analysis in the future. Also shown in Figure 2 is the white target marker, which is shining in the reflected sunlight.


Figure 2: Touchdown image overlapped with the planned touchdown site. The white dot at the end of the arrow is the target marker. Image credits: JAXA, University of Tokyo, Kochi University, Rikkyo University, Nagoya University, Chiba Institute of Technology, Meiji University, University of Aizu, AIST.

For comparison, Figure 3 shows the previously captured image of the touchdown site. Figure 4 shows this same image but without any markings. Since this image was taken before dropping the target marker, the target marker is not visible in this picture. As you can see from Figures 3 and 4, there was no discolored area on the asteroid surface around the touchdown point.


Figure 3: Position of the planned touchdown site and target marker. The size of the circle at the planned site is 6m in diameter. X indicates the position that the target marker was dropped at a later date. Image credits: JAXA, University of Tokyo, Kochi University, Rikkyo University, Nagoya University, Chiba Institute of Technology, Meiji University, University of Aizu, AIST.


Figure 4: This is the same image as Figure 3, but without the markings. Image credits: JAXA, University of Tokyo, Kochi University, Rikkyo University, Nagoya University, Chiba Institute of Technology, Meiji University, University of Aizu, AIST.

Hayabusa2 project: http://www.hayabusa2.jaxa.jp/en/

Images (mentioned), Video (mentioned), Text, Credit: JAXA.

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