Showing posts with label neutral hydrogen. Show all posts
Showing posts with label neutral hydrogen. Show all posts

Wednesday, October 17, 2012

Water from the Sun

The Sun exudes a constant stream of hydrogen, called the "solar wind."
Paul D. Spudis
Smithsonian Air & Space

New data returned from a fleet of orbiting satellites changes our perceptions of the history and processes of the Moon.  Concentrated at both lunar poles, and to date the most striking discovery, is the documentation of the presence of large amounts of water.  Though this water has been confirmed by several differing techniques (from multiple missions), we remain uncertain about its source.  Two principal origins have been proposed: 1) water added by the in-fall of water-bearing meteorites and comets during the impact bombardment of the Moon; and 2) the manufacture of water from hydrogen implanted in the lunar soil by the wind from the Sun.

A recent discovery may shed some new light on the origin of lunar water.  Researchers conducting detailed examination of tiny fragments of glass in soil returned by the Apollo astronauts found the molecule hydroxyl (OH) present in the glass.  Interestingly, the isotopic composition of these OH molecules indicates the bulk of the hydrogen comes from the Sun, not from cometary and asteroidal impacts.

The Moon has no atmosphere and no global magnetic field.  As a result, the solar wind – the stream of atoms and molecules constantly emitted by the Sun – directly impinges upon the lunar surface.  Most of this solar wind consists of hydrogen, either in the form of neutral atoms or positively charged ions (i.e., protons).   After it encounters the Moon, this spray of hydrogen has a complex fate, with at least some of it being implanted into the lunar dust.  In a process called adsorption, many of the hydrogen atoms stick to the surfaces of the dust grains.  The amount of adsorbed hydrogen varies by position and chemical composition around the Moon, but it can be present in quantities ranging from less than 10 to over 100 parts per million (ppm).

Impact glass is a major component of lunar regolith – up to 60% by weight of the soil at some landing sites.  The constant bombardment of the lunar surface by microscopic meteorites crushes and grinds up the surface rock, continually mixing the outer layer of the Moon.  When a micrometeorite strikes a rock, it forms a micro-crater (wholly melting the surface beneath this pit) and creates a clear, chemically homogeneous glass particle.  However, when a micrometeorite strikes lunar soil instead of rock, its energy is converted mostly into heat.  This flash heating creates a mixture of melt and mineral debris called agglutinate glass.

The new work details results of analyses of agglutinates returned from several lunar landing sites.  Their study measured both the amounts of hydroxyl present and its isotopic composition.  A normal atom of hydrogen is a single proton and an electron.  But in a rare form of hydrogen, called deuterium, the nucleus contains both a proton and a neutron.  The ratio of this form of “heavy hydrogen” to “normal” hydrogen is unique for different materials throughout the Solar System.  By tracking the D/H ratio in the sample, one can assign a source origin to the measured hydrogen.

When the lunar agglutinate glasses were studied, it was found that their D/H ratios indicated that most of the hydrogen in the hydroxyl molecules came from the Sun and not from cometary or meteoritic sources.  However, the source of the hydrogen is not completely solar, as the D/H ratios suggest some mixing with a subordinate component of either lunar or cometary origin.  The authors of this study suggest that the hydroxyl found on the Moon was created when a small impact flash heated the soil, releasing the adsorbed hydrogen and chemically reducing the metallic oxides in the soil into native metal (found as extremely tiny grains on the surfaces of the agglutinates) and hydroxyl molecules.  Multiplied by billions, such a process could account for the generation of water on the lunar surface.  Subsequent migration of these molecules toward cooler-than-average areas of the Moon (i.e., the higher latitudes, up to and including the poles) may have created the polar ice deposits found by numerous techniques.  In the view of the authors of this study, lunar water comes mostly (but not entirely) from the Sun.  This constant process, occurring on the sunlit hemisphere of the Moon, could create an enormous reservoir of hydroxyl molecules (in motion due to their thermal instability), slowly but constantly moving toward the poles.

If such a process occurs on the Moon, one might expect the accumulation of water in every location where water is stable (i.e., within every permanently dark and cold region near both poles).  But it appears that ice at the poles is not uniformly distributed, occurring in high concentration in some areas while absent in others.  This pattern suggests that the source of polar water might be controlled by a non-equillibrium process, such as episodic bombardment by asteroids and comets.  In fact, both solar wind-produced and cometary water may be present at the poles, but until the ice there is actually analyzed for its D/H content, we cannot be certain of its origin.  Such a measurement does not require the return of a polar ice sample to the Earth.  It could be made remotely in situ on the Moon with a properly instrumented robotic spacecraft.

It is important to emphasize that although the quantities of water generated by this process are potentially very large, the hydroxyl in agglutinate glass should not be considered an economic resource.  These molecules occur globally but at very low levels of concentration (tens of ppm).  Even if this water is the primary and ultimate source reservoir of lunar water, the migration of the molecules and their subsequent collection by the cold traps near the poles serve as a concentrating mechanism, where ice accumulates in large quantities, confined within small areas — the classic definition of an ore body.

What a change has occured in the mindset the lunar science community in the past few years!  From a bone-dry lump of rock in space to a complex, still mysterious body with a dynamic hydrological cycle.  It’s clear that many more discoveries about our Moon and its resources have yet to be revealed.  The more we learn about the Moon, the greater the range of processes we must account for and the more subtle and complex its history becomes.

Originally published at his Smithsonian Air & Space blog The Once and Future Moon, Dr. Spudis is a senior staff scientist at the Lunar and Planetary Institute. The opinions expressed are those of the author and are better informed than average.

Thursday, October 15, 2009

Source of lunar water identified as interaction of solar wind neutral hydrogen with lunar surface - ESA

Measurements of hydrogen flux recorded in lunar orbit February 6, 2009, by the Sub Kev Atom reflecting Analyser (SARA) on-board India's Chandrayaan-1. According to ESA, SARA was the first lunar experiment dedicated to the direct study of plasma-surface interactions in space. [ISRO/ESA/Swedish Institute Of Space Physics (IRF)]

The Moon absorbs electrically charged particles emitted by the Sun. These particles interact with oxygen present in some dust grains on the lunar surface, producing water. This conclusion, based on discoveries made using the ESA-ISRO Sub Kev Atom reflecting Analyser (SARA) on-board India's lunar orbiter Chandrayaan-1 "confirms," ESA announced, is a way that the water very recently confirmed as both transitory and materially-fixed in the uppermost layer of the lunar surface is likely to have been created.

The detection also presages an new method of imaging the Moon and other airless bodies in the solar system, ESA wrote.

The lunar surface is blanketed with a loose collection of very fine, irregularly shaped silicate dust called lunar regolith. Incoming particles from the Sun, along with some cosmic radiation, are believed trapped in spaces between and within these grains, becoming chemically bound. with oxygen.

Protons, by far the largest constituent of incoming radiation, are thought to interact with oxygen to produce the hydroxyl and water molecules that have been detected on the lunar surface.

A signature for such molecules was recently confirmed the team of investigators for the NASA-build Moon Mineralogy Mapper (M3), on-board Chandrayaan-1.

The SARA results confirm hydrogen nuclei are emitted from the Sun and are also being absorbed at the lunar surface.

In this process protons join with electrons to become atoms of hydrogen. The results "also highlights a mystery" said ESA. "Not every proton is absorbed." One of every five rebound back into space."

“We didn’t expect to see this at all,” said Stas Barabash of the Swedish Institute of Space Physics (IRF) and European Principal Investigator for SARA. Barabash and his colleagues do not know the cause of the predictable ratio of proton scatter but the discovery introduces a new way, they claim, to gather images.

Reflected hydrogen departs off the lunar surface at speeds of ~ 200 km/s, without attenuation by the Moon’s gravity. Hydrogen is also generally electrically neutral and not refracted by the crustal magnetic fields found in various places on the lunar surface, or in Space around the Moon. These atoms fly in virtually straight lines, according to Barabash, like photons.

In principle, each atom can be traced back to its origin and an image of the surface could be made. Those areas emitting the most hydrogen should appear brightest.

Some areas on the Moon are characterized by very strong magnetic fields, however, some locally strong enough to create an actual bow shock in the Solar Wind. Barabash and his team are currently making images to map these lunar magnetic anomalies.

Lunar features with strong local magnetic fields (and also apparently slowed rates of optical maturity, like Reiner Gamma, Descartes Formation, Airy and Gerasimovich craters, and Mare Marginis and Ingenni, etc.) appear as magnetic "bubbles" that scatter incoming protons into surrounding regions, making magnetic anomalies appear dark in a "hydrogen image."

The imaging technique would result in something opposite of what is seen in optical images of such areas, where they are characterized by an unusually bright albedo.

The incoming protons are part of the solar wind, a constant stream of particles given off by the Sun. They collide with feature in the Solar System and are usually stopped by planetary atmospheres. On airless bodies, like the asteroids or Mercury, the Solar Wind strikes the ground unimpeded. The SARA team expects such objects also reflect a regular ratio of incoming solar protons back into space as hydrogen.

"This knowledge provides timely advice for the scientists and engineers who are readying ESA’s BepiColombo mission to Mercury," according to ESA. "That spacecraft will be carrying two similar instruments to SARA and may find that the inner-most planet is reflecting more hydrogen than the Moon, because the Solar Wind is more concentrated closer to the Sun."

Until recently confirmed by instruments on-board IBEX and other vehicles, the Solar Wind was thought to be composed primarily of helium, the direct product of the Sun's fusion of hydrogen atoms at very high temperatures. This discovery was confirmed by the Southwest Research Institute last June.

SARA was one of three instruments ESA contributed to Chandrayaan-1, that shut down prematurely last August. The instrument was built jointly by scientific groups from Sweden, India, Japan, and Switzerland: Swedish Institute of Space Physics, Kiruna, Sweden; Vikram Sarabhai Space Centre, Trivandrum, India; University of Bern, Switzerland; and Institute of Space and Astronautical Science, Sagamihara, Japan.

(This article reflects findings presented in ‘Extremely high reflection of solar wind protons as neutral hydrogen atoms from regolith in space’, by M. Wieser, S. Barabash, Y. Futaana, M. Holmström, A. Bhardwaj, R. Sridharan, M.B. Dhanya, P. Wurz, A. Schaufelberger and K. Asamura, in press, Planetary and Space Science, 2009.)

Thursday, June 18, 2009

IBEX detects neutral H from the Sun bouncing off the Moon


NASA's Interstellar Boundary Explorer (IBEX) has made the first detection of neutral atoms coming from the Moon (background image). The color-coded data toward the bottom shows the neutral particles and geometry measured at the Moon on Dec. 3, 2008. IBEX spins at four rotations per minute with its field of view sweeping over the moon each spin over about 10 hours. The neutral atoms are summed in 6 degree bins with the lunar direction indicated by the white arrow. IBEX detects particles produced by reflection and neutralization of the incident solar wind protons at toward the spacecraft. The Earth, moon and spacecraft shown toward the top are not to scale (Southwest Research Institute).

Until very recently it was believed the Solar Wind consisted solely of protons, whisking away from the Sun at various densities and speeds, the byproducts of hydrogen being fused into helium at millions of degrees at the heart of the all energy our modest home star eventually produces. It came as quite a surprise when neutral hydrogen was detected coming from that direction. After all. The Sun is a fusion reactor, one that wastes little of its hydrogen fuel, the most abundant and lightest of the elements, in this universe, anyway.

Now comes word from the Southwest Research Institute of this same hydrogen being detected, from quite a distance, reflecting off the Moon.

Southwest Research Institute: NASA's Interstellar Boundary Explorer (IBEX) has made the first observations of very fast hydrogen atoms coming from the moon, following decades of speculation and searching for their existence.

During spacecraft commissioning, the IBEX team turned on the IBEX-Hi instrument, built primarily by Southwest Research Institute (SwRI) and the Los Alamos National Laboratory, which measures atoms with speeds from about half a million to 2.5 million miles per hour. Its companion sensor, IBEX-Lo, built by Lockheed Martin, the University of New Hampshire, NASA Goddard Space Flight Center, and the University of Bern in Switzerland, measures atoms with speeds from about one hundred thousand to 1.5 million mph.

"Just after we got IBEX-Hi turned on, the moon happened to pass right through its field of view, and there they were," sais David J. McComas, IBEX principal investigator and assistant vice president of the SwRI Space Science and Engineering Division. "The instrument lit up with a clear signal of the neutral atoms being detected as they backscattered from the moon."

The solar wind, the supersonic stream of charged particles that flows out from the sun, moves out into space in every direction at speeds of about a million mph. The Earth's strong magnetic field shields our planet from the solar wind. The moon has no such protection, causing solar wind to slam onto the moon's sunward side.

From its vantage point in space, IBEX sees about half of the moon -- one quarter of it is dark and faces away from the sun, while the other quarter faces the sun. Solar wind particles impact only the dayside, where most of them are embedded in the lunar surface, though some scatter off in different directions.

The scattered ones become neutral atoms in this process by picking up electrons from the lunar surface.

The IBEX team estimates that only about 10 percent of these solar wind ions reflect off the moon as neutral atoms while 90 percent are embedded in the lunar surface. The nature of the lunar surface the wind encounters determs the percentage embedded, percentage of neutral particles reflected and their direction of travel.

McComas said these findings also shed light on the recycling process undertaken by particles throughout the solar system, and beyond.

The solar wind and other charged particles impact dust and larger objects as they travel through space, where they backscatter and are reprocessed as neutral atoms. These atoms can travel long distances before they are stripped of electrons and become ions.

The combined scattering and neutralization process observed at the moon have implications for interactions with objects across the solar system, such as asteroids, Kuiper Belt objects (KBOs) and other moons.

The plasma-surface interactions occurring within protostellar nebula, the region that forms around planets and stars -- as well as exoplanets -- also can be inferred.

IBEX's primary mission is to observe and map the complex interactions occurring at the edge of the solar system, where solar wind runs up against interstellar material. The spacecraft carries the most sensitive neutral atom detectors ever flown, enabling researchers to measure particle energy and make precise images of where they originate.

Later this summer, the IBEX team will release its first All-Sky map, showing the energetic processes occurring at the edge of the Solar System.

Though he would not comment until the image is complete, McComas says "it doesn't look like any of the models."