Showing posts with label planetary geology. Show all posts
Showing posts with label planetary geology. Show all posts

Sunday, 24 February 2013

Solar Wind Particles Likely Source Of Water Locked Inside Lunar Soils

Solar Wind Particles Likely Source Of Water Locked Inside Lunar Soils
The most likely source of the water locked inside soils on the moon's surface is the constant stream of charged particles from the sun known as the solar wind, a University of Michigan researcher and his colleagues have concluded.

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This microscope image shows a grain of agglutinate glass similar to those analyzed in the lunar surface-water study reported in Nature Geoscience. The specimen in this image, which comes from samples returned by Apollo astronauts, is smaller than a typical dust grain [Credit: Yang Liu]"

Over the last five years, spacecraft observations and new lab measurements of Apollo lunar samples have overturned the long-held belief that the moon is bone-dry.

In 2009, NASA's Lunar Crater Observation and Sensing satellite, known as LCROSS, slammed into a permanently shadowed lunar crater and ejected a plume of material that was surprisingly rich in water ice. Water and related compounds have also been detected in the lunar regolith, the layer of fine powder and rock fragments that coats the lunar surface.

But the origin of lunar surface water has remained unclear. Is it mainly the result of impacts from water-bearing comets and other chunks of space debris, or could there be other sources? Theoretical models of lunar water stability dating to the late 1970s suggest that hydrogen ions (protons) from the solar wind can combine with oxygen on the moon's surface to form water and related compounds called hydroxyls, which consist of one atom of hydrogen and one of oxygen and are known as OH.

In an article published online October 14 in the journal Nature Geoscience, U-M's Youxue Zhang and colleagues from the University of Tennessee and the California Institute of Technology present findings that support solar-wind production of water ice on the moon.

The first author of the paper is Yang Liu of U-T. She is a U-M alumna who earned her doctorate under Zhang, who is a professor in the Department of Earth and Environmental Sciences.

In the paper, the researchers present infrared spectroscopy and mass spectrometry analyses of Apollo samples that reveal the presence of significant amounts of hydroxyl inside glasses formed in the lunar regolith by micrometeorite impacts.

When combined, the techniques of Fourier transform infrared spectroscopy and secondary ion mass spectrometry can be used to determine the chemical form of the hydrogen in a substance, as well as its abundance and its isotopic composition. Most of the infrared spectroscopy work was done at Zhang's U-M lab, and the mass spectroscopy was conducted at Caltech.

"We found that the 'water' component, the hydroxyl, in the lunar regolith is mostly from solar wind implantation of protons, which locally combined with oxygen to form hydroxyls that moved into the interior of glasses by impact melting," said Zhang, the James R. O'Neil Collegiate Professor of Geological Sciences.

"Lunar regolith is everywhere on the lunar surface, and glasses make up about half of lunar regolith. So our work shows that the 'water' component, the hydroxyl, is widespread in lunar materials, although not in the form of ice or liquid water that can easily be used in a future manned lunar base."

The findings imply that ice inside permanently shadowed polar craters on the moon, sometimes called cold traps, could contain hydrogen atoms ultimately derived from the solar wind, the researchers report.

"This also means that water likely exists on Mercury and on asteroids such as Vesta or Eros further within our solar system," Liu said. "These planetary bodies have very different environments, but all have the potential to produce water."

The regolith glasses are called agglutinates, and the study reported in Nature Geoscience is the first to identify agglutinates as a new reservoir of OH on the moon -- an "unanticipated, abundant reservoir" of OH and water in the lunar regolith, according to the authors.

The researchers analyzed individual grains from Apollo 11 mare soil, Apollo 16 highland soil and Apollo 17 mare soil. The grains included agglutinates and impact glasses.

In addition to Liu and Zhang, authors of the Nature Geoscience report are Yunbin Guan, George Rossman and John Eiler of Caltech and Lawrence Taylor of U-T.

The work was funded in part by NASA cosmochemistry grants to Taylor and Zhang, by support from the Moore Foundation to the Caltech Microanalysis Center, and by a National Science Foundation grant to Rossman. A portion of the study was also supported by U-T's the Planetary Geosciences Institute.

"Source: University of Michigan [October 15, 2012]"

Wednesday, 6 June 2012

New Geologic Map Of Mars Reveals Detailed Landscapes

Get matured, having the status of now you can cut up the most fulfill badge of Mars like a new global geologic map twisted by the U.S. Raw Report (USGS). This new enfold of the "Red Planet's" forty winks provides a carcass for continued precise investigation of Mars as the long-range produce for human space exploration. The USGS-led mapping job reveals that the Martian forty winks is generally melancholy than on one occasion proposal. Three era as considerably forty winks area dates to the first brief geologic time age - the In advance Noachian Phase - than was on one occasion mapped. This timeframe is the initial factor of the Noachian Bring about, which ranges from about 4.1 to about 3.7 billion years ago, and was characterized by high tax of meteorite impacts, far-reaching display of the Martian forty winks and the probable attendance of prolific forty winks water.

The map also confirms one-time work that suggests Mars had been biologically vibrant until the suggest day. Impart is evidence that brief changes in Mars' global erode supported the drama attendance of forty winks water and near-surface groundwater and ice. These changes were probable responsible for masses of the brief shifts in the environments somewhere Martian rocks were formed and subsequently scoured. This new map order serve as a key price for the plunge, age and radical start of inborn goods everywhere on Mars.

For hundreds of years, geologic maps have helped drive precise proposal. This new global geologic map of Mars, as well as the recent global geologic maps of Jupiter's moons Ganymede and Io, also illustrates the impressive eminence of geologic mapping as an main badge for the exploration of the solar system.

"Shrewdness exploration of Mars over the clear of couple decades has fountain greater our lenience of what geologic goods, events and processes shaped its forty winks," supposed USGS scientist and charge author, Dr. Kenneth Tanaka. "The new geologic map brings this research fixed in vogue a holistic context that helps to elucidate key contact in space and time, mode information to succeed and test new hypotheses."

The new map brings fixed explanation and precise conclusion from four orbiting spacecraft that have been acquiring data for more than 16 years. The answer is an well-run lenience of the geologic history of the forty winks of Mars - the solar system's most Earth-like planet and the solo other one in our Sun's "habitable zone."

The Martian forty winks has been the dominated of precise observation past the 1600s, first by Earth-based telescopes, and innovative by fly-by missions and orbiting spacecraft. The Mariner 9 and Viking Orbiter missions shaped the first planet-wide views of Mars' forty winks, enabling mime of the first global geologic maps (in 1978 and 1986-87, respectively) of a planetary forty winks other than the Warren and the Moon. A new daylight hours of progressive precise instruments flown on the Mars Intercontinental Surveyor, Mars Odyssey, Mars Straight and Mars Inspection Orbiter spacecraft has provided mixed, high rush data sets that warrant more progressive remapping of the global-scale geology of Mars.

The building of planetary cartographic fabricate has been a key point of research at the USGS Astrogeology Science Wealth past its foundation in the primeval 1960s. The USGS began producing planetary maps in bolster of the Apollo Moon landings, and continues to indication earth a carcass for integrating and comparing clear of and appearance studies of extraterrestrial surfaces. In masses cases, these planetary geologic maps show that, anyhow the masses differences concerning bodies in our solar system, submit are masses famous similarities that relationship the grow and providence of our planetary system fixed.

The vocation of the USGS Astrogeology Science Wealth is to serve the nation, the international planetary science local and the predominant public's diversion of new knowledge of our solar system. The team's vision is to be a national informer for the digestion of planetary geosciences, cartography and remote sensing. As explorers and surveyors like a picky origin of notorious talent and international show the way, USGS astrogeologists warrant the rambling award-winning investigation of the solar system for humankind.

"Outcome from the map order warrant researchers to stain contract landing sites for appearance Mars missions that may distribute to advance lenience of the planet's history," supposed USGS Transient Enhanced Suzette Kimball. "The new Mars global geologic map order create geologic context for confined and contained precise investigations for masses years to upgrade."

Stifle out the new geologic map of Mars by downloading it online!

The project was funded by NASA nap its Sky-high Geology and Geophysics Gel.

Credit: usgs.gov