NASA's Cassini spacecraft will fly by Saturn's moon Enceladus this weekend for a last peek at the intriguing "tiger stripes" before winter darkness blankets the area for several years. Scientists are particularly interested in the tiger stripes, which are fissures in the south polar region, because they spew jets of water vapor and other particles hundreds of kilometers, or miles, from the surface.
The flyby, which is sometimes called "E8" because it is the eighth targeted flyby of Enceladus, is scheduled for Saturday, Nov. 21 UTC, which is the evening of Friday, Nov. 20 in U.S. time zones. Cassini team members expect to fly the spacecraft to within about 1,600 kilometers (1,000 miles) of the moon's surface, at around 82 degrees south latitude. This will be a more distant flyby than the one on Nov. 2, when Cassini flew about 100 kilometers (60 miles) above the surface.
During this flyby, scientists will focus on a tiger stripe called Baghdad Sulcus and create a contiguous thermal map of the feature. The spacecraft will also be snapping high-resolution images of the southern part of the Saturn-facing hemisphere.
For more information on the flyby, click here.
NASAHurricane on Twitter.com is updated daily and provides updates on the tropical cyclone happenings in various ocean basins. The primary source for "Tweets" is the daily storm updates from the NASA Hurricane page (www.nasa.gov/hurricane). The storm updates always include a NASA satellite image of a tropical cyclone, its most recent strength and location, and what the NASA satellite image reveals. If there are watches and warnings, the updates usually include them from the forecast source.
Separate Web features that highlight NASA hurricane research are also posted on the NASAHurricane Twitter site. The site also includes research features on topics such as the status of El Niňos and La Niňas, flood maps of areas inundated by tropical cyclones, hurricane videos, and more.
"The Twitter site is also used to provide up-to-the-minute updates, including watches and warnings, and background information," said Rob Gutro, manager of the NASA Hurricane Page at NASA's Goddard Space Flight Center in Greenbelt, Md. "Even though there may not be tropical activity in an ocean basin, people still want to know why and Twitter provides the vehicle to do that in an easy way on a daily basis." The Twitter NASAHurricane uses information from numerous forecast centers, including the National Hurricane Center, the Central Pacific Hurricane Center, and the U.S. Navy's Joint Typhoon Warning Center.
If there's a tropical wave that is has any potential for development, and it's cited by one of the forecast centers, NASAHurricane's Twitter will explain what it is, and where it is. For example, if there's a tropical wave in the Atlantic Ocean, Twitter provides the opportunity to highlight it and give a status on it.NASA uses several satellites in hurricane research including Aqua, CloudSat, the Tropical Rainfall Measuring Mission satellite, Jason-1, the Ocean Surface Topography Mission/Jason-2, Landsat, QuikScat, and Terra. NASA also creates images from the National Oceanic and Atmospheric Administration's (NOAA) Geostationary Operational Environmental Satellites. NASA researches hurricanes and supplies some of the data from these satellites to NOAA, who forecast the storms. Each storm update on the NASA Hurricane page, and subsequently posted on Twitter, will reference what at least one of these satellites is seeing in a current tropical cyclone.
Using all of these satellites and their instruments and computer modeling, NASA scientists gather data on many factors that determine if a tropical cyclone may strengthen or weaken. Data include: storm and surface winds; sea surface heights and temperatures; rainfall intensity and area; lightning; cloud water; water vapor; cloud heights, extent of cloud cover and cloud temperature, humidity, atmospheric pressure; cloud development; and size of the storm.
All of this research is housed on NASA's Hurricane/Tropical Cyclone Web page, which explains the research NASA does on tropical cyclones. It contains daily storm updates from storms around the world, videos, educator lesson plans, a storm archive since 2005, videos and animations, International Space Station cyclone videos, a live alerts feed on the Atlantic Basin from the National Hurricane Center, NASA hurricane missions, "About Hurricanes: background information," fact sheet, "Hurricanes in History," and education links.
"NASAHurricane Twitter is excited about communicating 'in-real-time' to hurricane enthusiasts worldwide," said climatologist Bill Patzert at NASA's Jet Propulsion Laboratory, in Pasadena, Calif. "'Tweeting' the latest in NASA research and technology, developing hurricane events and impacts cranks up NASA's commitment to rapidly providing the most up-to-date and useful hurricane information to every level of society."
Wise is scheduled to launch no earlier than 6:09 a.m. PST (9:09 a.m. EST) on Dec. 9 from Vandenberg Air Force Base in California. It will circle Earth over the poles, scanning the entire sky one-and-a-half times in nine months. The mission will uncover hidden cosmic objects, including the coolest stars, dark asteroids and the most luminous galaxies.
The mission will map the entire sky at four infrared wavelengths with sensitivity hundreds to hundreds of thousands of times greater than its predecessors, cataloging hundreds of millions of objects. The data will serve as navigation charts for other missions, pointing them to the most interesting targets. NASA's Hubble and Spitzer Space Telescopes, the European Space Agency's Herschel Space Observatory, and NASA's upcoming Sofia and James Webb Space Telescope will follow up on Wise finds.
"This is an exciting time for space telescopes," said Jon Morse, NASA's Astrophysics Division director at NASA Headquarters in Washington. "Many of the telescopes will work together, each contributing different pieces to some of the most intriguing puzzles in our universe."
Visible light is just one slice of the universe's electromagnetic rainbow. Infrared light, which humans can't see, has longer wavelengths and is good for seeing objects that are cold, dusty or far away. In our solar system, Wise is expected to find hundreds of thousands of cool asteroids, including hundreds that pass relatively close to Earth's path. Wise's infrared measurements will provide better estimates of asteroid sizes and compositions -- important information for understanding more about potentially hazardous impacts on Earth.
"With infrared, we can find the dark asteroids other surveys have missed and learn about the whole population. Are they mostly big, small, fluffy or hard?" said Peter Eisenhardt, the Wise project scientist at NASA's Jet Propulsion Laboratory in Pasadena, Calif.
Wise also will find the coolest of the "failed" stars, or brown dwarfs. Scientists speculate it is possible that a cool star lurks right under our noses, closer to us than our nearest known star, Proxima Centauri, which is four light-years away. If so, Wise will easily pick up its glow. The mission also will spot dusty nests of stars and swirling planet-forming disks, and may find the most luminous galaxy in the universe.
To sense the infrared glow of stars and galaxies, the Wise spacecraft cannot give off any detectable infrared light of its own. This is accomplished by chilling the telescope and detectors to ultra-cold temperatures. The coldest of Wise's detectors will operate at below 8 Kelvin, or minus 445 degrees Fahrenheit.
"Wise is chilled out," said William Irace, the project manager at JPL. "We've finished freezing the hydrogen that fills two tanks surrounding the science instrument. We're ready to explore the universe in infrared."
JPL manages Wise for NASA's Science Mission Directorate in Washington. The mission was competitively selected under NASA's Explorers Program managed by the Goddard Space Flight Center in Greenbelt, Md. The science instrument was built by the Space Dynamics Laboratory in Logan, Utah, and the spacecraft was built by Ball Aerospace & Technologies Corp. in Boulder, Colo. Science operations and data processing take place at the Infrared Processing and Analysis Center at the California Institute of Technology in Pasadena. Caltech manages JPL for NASA.
More information about Wise is available online at http://www.nasa.gov/wise and http://wise.astro.ucla.edu .
Wise is scheduled to launch no earlier than 6:09 a.m. PST (9:09 a.m. EST) on Dec. 9 from Vandenberg Air Force Base in California. It will circle Earth over the poles, scanning the entire sky one-and-a-half times in nine months. The mission will uncover hidden cosmic objects, including the coolest stars, dark asteroids and the most luminous galaxies.
The mission will map the entire sky at four infrared wavelengths with sensitivity hundreds to hundreds of thousands of times greater than its predecessors, cataloging hundreds of millions of objects. The data will serve as navigation charts for other missions, pointing them to the most interesting targets. NASA's Hubble and Spitzer Space Telescopes, the European Space Agency's Herschel Space Observatory, and NASA's upcoming Sofia and James Webb Space Telescope will follow up on Wise finds.
"This is an exciting time for space telescopes," said Jon Morse, NASA's Astrophysics Division director at NASA Headquarters in Washington. "Many of the telescopes will work together, each contributing different pieces to some of the most intriguing puzzles in our universe."
Visible light is just one slice of the universe's electromagnetic rainbow. Infrared light, which humans can't see, has longer wavelengths and is good for seeing objects that are cold, dusty or far away. In our solar system, Wise is expected to find hundreds of thousands of cool asteroids, including hundreds that pass relatively close to Earth's path. Wise's infrared measurements will provide better estimates of asteroid sizes and compositions -- important information for understanding more about potentially hazardous impacts on Earth.
"With infrared, we can find the dark asteroids other surveys have missed and learn about the whole population. Are they mostly big, small, fluffy or hard?" said Peter Eisenhardt, the Wise project scientist at NASA's Jet Propulsion Laboratory in Pasadena, Calif.
Wise also will find the coolest of the "failed" stars, or brown dwarfs. Scientists speculate it is possible that a cool star lurks right under our noses, closer to us than our nearest known star, Proxima Centauri, which is four light-years away. If so, Wise will easily pick up its glow. The mission also will spot dusty nests of stars and swirling planet-forming disks, and may find the most luminous galaxy in the universe.
To sense the infrared glow of stars and galaxies, the Wise spacecraft cannot give off any detectable infrared light of its own. This is accomplished by chilling the telescope and detectors to ultra-cold temperatures. The coldest of Wise's detectors will operate at below 8 Kelvin, or minus 445 degrees Fahrenheit.
"Wise is chilled out," said William Irace, the project manager at JPL. "We've finished freezing the hydrogen that fills two tanks surrounding the science instrument. We're ready to explore the universe in infrared."
JPL manages Wise for NASA's Science Mission Directorate in Washington. The mission was competitively selected under NASA's Explorers Program managed by the Goddard Space Flight Center in Greenbelt, Md. The science instrument was built by the Space Dynamics Laboratory in Logan, Utah, and the spacecraft was built by Ball Aerospace & Technologies Corp. in Boulder, Colo. Science operations and data processing take place at the Infrared Processing and Analysis Center at the California Institute of Technology in Pasadena. Caltech manages JPL for NASA.
More information about Wise is available online at http://www.nasa.gov/wise and http://wise.astro.ucla.edu .
"This workshop will bring native indigenous knowledge together with science, education, and technologies to address the challenges of climate and environmental change," said Nancy Maynard of NASA's Goddard Space Flight Center in Greenbelt, Md.
The workshop will help ensure participation by tribal colleges and universities in the development of response and adaptation policies and recommendations regarding climate change. The goal is to ensure the survival of indigenous communities. The workshop is being held in collaboration with the nation's 36 tribally-controlled colleges and universities, the American Indian Higher Education Consortium, and other partners.
"Tribal college students represent many of the future tribal leaders who will inherit the consequences of climate change and be responsible for implementing the adaptation strategies," said Dan Wildcat of Haskell Indian Nations University in Lawrence, Kan. "It is critical that they have these kinds of opportunities to participate in key climate change discussions and build their science, technology, engineering and math skills."
For more information about the workshop, including registration information, visit:
The press event will be held at 12:45 p.m. EST in the Reagan Building's Hemisphere A area. Photo identification is required. Sherburne B. Abbott, associate director for environment in the White House Office of Science and Technology Policy, and other speakers will present details of GEO programs around the world.
Through GEO, 80 national governments, the European Commission and almost 60 global organizations coordinate Earth observation assets and strategies to track global trends in carbon levels, biodiversity loss, deforestation, water resources, ocean temperatures and other critical indicators of Earth's health and human well-being. The U.S. is a founding member of GEO through the U.S. Group on Earth Observations.
The exhibition in the Reagan Building's Atrium Hall will be open to the public on Nov. 17 from 11 a.m. to 7 p.m. and Nov. 18 from 9 a.m. to 4 p.m. Highlighted projects featuring NASA contributions include near real-time fire detection, global agricultural monitoring, natural disaster monitoring and forecasting, and a famine early warning system.
For more information on the GEO plenary meeting, visit:
NASA Technology Spinoffs Art Contest Winner Presentation at the Statue of Liberty
Students are recognizing NASA Goddard's 50th anniversary by reflecting on science, technology, engineering and the fine arts. NASA Goddard was opened in 1959.
NASA's Innovative Partnerships Program (IPP) Office sponsored "Goddard Celebrates 50 Years of Technology Spinoffs Art Contest" last winter. The purpose of the contest was to allow middle and high school students across the country to demonstrate through art, their knowledge of how NASA Goddard scientific technological achievements have made impacts on the quality of life. Some of the reference or source material the students were to use was the IPP Office annual publication, NASA Spinoff magazine, and the IPP Office website.
After receiving and reviewing contest submissions, Ja Hyun "Ashely" Lim was chosen as the winner. At the time of contest submission, she was a ninth grader at North County High School in Glen Burnie, Md. Lim’s eloquent rendering of a paint brush stroke from the Space Shuttle’s lift off pad launch gantries to the Statute of Liberty monument plainly demonstrates "movement" of NASA technology from one application of a technology to another external to NASA.The connection between the Statue of Liberty and NASA is in a NASA Goddard-developed technology. When the Statue of Liberty was being restored in the early 1980s, the bars that help to support the copper skin of the Statue of Liberty were covered with a corrosion-resistant coating developed by NASA Goddard engineers. The coating is known as IC531, and is an aerospace Spinoff product manufactured by Inorganic Coatings, Inc. of Malvern, Penn.
IC531 was used as an interior structure primer coating for Miss Liberty. The coating was developed by NASA Goddard to protect gantries and other structures at NASA's Kennedy Space Center, Fla. launch site.
The high-ratio silicate formulation in IC531 bonds to steel and in just 30 minutes and creates a very hard ceramic finish with superior adhesion and abrasion resistance.
Lim was honored at the NASA Goddard Celebrates 50 Years of Technology Spinoffs Event this past summer. In the spirit of cooperation, the NASA Goddard IPP will be presenting a framed copy of Lim’s artwork to the National Park Service at the Statue of Liberty on Nov. 13 at 9:30 a.m. EST at Ellis Island, N.Y.
Located on a 12-acre island, the statue of ‘Liberty Enlightening the World’ was a gift of friendship from the people of France to the people of the United States and is a universal symbol of freedom and democracy.
Related Links:
› NASA's IPP Program Web Page
› The Statue of Liberty National Park
› More information on the Statue of Liberty restoration (PDF)
Secrets the moon has been holding, for perhaps billions of years, are now being revealed to the delight of scientists and space enthusiasts alike.
NASA today opened a new chapter in our understanding of the moon. Preliminary data from the Lunar CRater Observation and Sensing Satellite, or LCROSS, indicates that the mission successfully uncovered water during the Oct. 9, 2009 impacts into the permanently shadowed region of Cabeus cater near the moon’s south pole.
"We're unlocking the mysteries of our nearest neighbor and by extension the solar system. It turns out the moon harbors many secrets, and LCROSS has added a new layer to our understanding," said Michael Wargo, chief lunar scientist at NASA Headquarters in Washington.
Scientists have long speculated about the source of vast quantities of hydrogen that have been observed at the lunar poles. The LCROSS findings are shedding new light on the question of water, which could be more widespread and in greater quantity than previously suspected.
Permanently shadowed regions could hold a key to the history and evolution of the solar system, much as an ice core sample taken on Earth reveals ancient data. In addition, water, and other compounds represent potential resources that could sustain future lunar exploration.
Since the impacts, the LCROSS science team has been working almost nonstop analyzing the huge amount of data the spacecraft collected. The team concentrated on data from the satellite's spectrometers, which provide the most definitive information about the presence of water. A spectrometer examines light emitted or absorbed by materials that helps identify their composition.
"We are ecstatic," said Anthony Colaprete, LCROSS project scientist and principal investigator at NASA's Ames Research Center in Moffett Field, Calif. "Multiple lines of evidence show water was present in both the high angle vapor plume and the ejecta curtain created by the LCROSS Centaur impact. The concentration and distribution of water and other substances requires further analysis, but it is safe to say Cabeus holds water."
The team took the known near infrared spectral signatures of water and other materials and compared them to the spectra collected by the LCROSS near infrared spectrometer of the impact.
Additional confirmation came from an emission in the ultraviolet spectrum that was attributed to hydroxyl, one product from the break-up of water by sunlight. When atoms and molecules are excited, they release energy at specific wavelengths that are detected by the spectrometers. A similar process is used in neon signs. When electrified, a specific gas will produce a distinct color. The ultraviolet visible spectrometer detected hydroxyl signatures just after impact that are consistent with a water vapor cloud in sunlight.
Data from the other LCROSS instruments are being analyzed for additional clues about the state and distribution of the material at the impact site. The LCROSS science team along with colleagues are poring over the data to understand the entire impact event, from flash to crater, with the final goal being the understanding of the distribution of materials, and in particular volatiles, within the soil at the impact site.
"The full understanding of the LCROSS data may take some time. The data is that rich," said Colaprete. "Along with the water in Cabeus, there are hints of other intriguing substances. The permanently shadowed regions of the moon are truly cold traps, collecting and preserving material over billions of years."
LCROSS was launched June 18, 2009 as a companion mission to the Lunar Reconnaissance Orbiter, or LRO, from NASA's Kennedy Space Center in Florida. After separating from LRO, the LCROSS spacecraft held onto the spent Centaur upper stage rocket of the launch vehicle, executed a lunar swingby and entered into a series of long looping orbits around the Earth.
After traveling approximately 113 days and nearly 5.6 million miles (9 million km), the Centaur and LCROSS separated on final approach to the moon. Traveling as fast as a speeding bullet, the Centaur impacted the lunar surface shortly after 4:31 a.m. PDT Oct. 9 with LCROSS watching with its onboard instruments. Approximately four minutes of data was collected before the LCROSS itself impacted the lunar surface.
Working closely with scientists from LRO and other observatories that viewed the impact, the LCROSS team is working to understand the full scope of the LCROSS data. LRO continues to make passes over the impact site to give the LCROSS team additional insight into the mechanics of the impact and its resulting craters.
What other secrets will the moon reveal? The analysis continues!
The $400,000 prize challenge is a nationwide competition that focuses on developing improved pressure suit gloves for astronauts to use while working in the vacuum of space. The competition is scheduled to begin at 10 a.m. EST on Nov. 19 and conclude with an award ceremony at approximately 5 p.m.
2007 Astronaut Glove Challenge
NASA's Centennial Challenges program will provide the prize. Volanz Aerospace Inc. of Owings, Md., manages the competition for NASA. Secor Strategies, LLC of Titusville, Fla., is a sponsor for the event.
Centennial Challenges is NASA's program of technology prizes for the citizen-inventor. Recent Centennial Challenge events included Regolith Excavation, Lunar Lander and Power Beaming Challenges, in which six different competitors won a total of $3.3 million in prizes.
For more information about NASA's Centennial Challenges, visit:
http://www.nasa.gov/offices/ipp/innovation_incubator/cc_home.html
El Niño is experiencing a late-fall resurgence. Recent sea-level height data from the NASA/French Space Agency Ocean Surface Topography Mission/Jason-2 oceanography satellite show that a large-scale, sustained weakening of trade winds in the western and central equatorial Pacific during October has triggered a strong, eastward-moving wave of warm water, known as a Kelvin wave. In the central and eastern equatorial Pacific, this warm wave appears as the large area of higher-than-normal sea surface heights (warmer-than-normal sea surface temperatures) between 170 degrees east and 100 degrees west longitude. A series of similar, weaker events that began in June 2009 initially triggered and has sustained the present El Niño condition. This image was created with data collected by the U.S./French satellite during a 10-day period centered on November 1, 2009. It shows a red and white area in the central and eastern equatorial Pacific that is about 10 to 18 centimeters (4 to 7 inches) above normal. These regions contrast with the western equatorial Pacific, where lower-than-normal sea levels (blue and purple areas) are between 8 to 15 centimeters (3 and 6 inches) below normal. Along the equator, the red and white colors depict areas where sea surface temperatures are more than one to two degrees Celsius above normal (two to four degrees Fahrenheit).
"In the American west, where we are struggling under serious drought conditions, this late-fall charge by El Niño is a pleasant surprise, upping the odds for much-needed rain and an above-normal winter snowpack," said JPL oceanographer Bill Patzert.
For more information on NASA's ocean surface topography missions, see http://sealevel.jpl.nasa.gov/; or to view the latest Jason data, see http://sealevel.jpl.nasa.gov/science/jason1-quick-look/.
Drifters designed to provide new knowledge about marine protected areas, harmful algal blooms, oil spills
| Autonomous underwater explorers (AUEs) will provide new information about the oceans. |
In an effort to plug gaps in knowledge about key ocean processes, the National Science Foundation (NSF)'s division of ocean sciences has awarded nearly $1 million to scientists at the Scripps Institution of Oceanography in La Jolla, Calif. The Scripps marine scientists will develop a new breed of ocean-probing instruments. Jules Jaffe and Peter Franks will spearhead an effort to design and deploy autonomous underwater explorers, or AUEs. AUEs will trace the fine details of oceanographic processes vital to tiny marine inhabitants.
While oceanographers have been skilled in detailing large-scale ocean processes, a need has emerged to zero in on functions unfolding at smaller scales. By defining localized currents, temperature, salinity, pressure and biological properties, AUEs will offer new and valuable information about a range of ocean phenomena.
"We're seeing great success in the global use of ocean profiling floats to document large-scale circulation patterns and other physical and chemical attributes of the deep and open seas," said Phillip Taylor of NSF's division of ocean sciences. "These innovative AUEs will allow researchers to sample the environments of coastal regions as well, and to better understand how small organisms operate in the complex surroundings of the oceans."
The miniature robots will aid in obtaining information needed for developing marine protected areas, determining critical nursery habitats for fish and other animals, tracking harmful algae blooms, and monitoring oil spills.
For marine protected areas, AUEs will help inform debates about the best areas for habitat protection. With harmful algal blooms and oil spills, the instruments can be deployed directly into outbreak patches to gauge how they develop and change over time. In the case of an airplane crash over the ocean, AUEs should be able to track currents to determine where among the wreckage a black box may be located.
"AUEs will fill in gaps between existing marine technologies," said Jaffe. "They will provide a whole new kind of information."
AUEs work through a system in which several soccer-ball-sized explorers are deployed with many tens--or even hundreds--of pint-sized explorers. Collectively, the entire "swarm" of AUEs will track ocean currents that organisms at a small-scale, such as tiny abalone larvae, for example, experience in the ocean.
"AUEs will give us information to figure out how small organisms survive, how they move in the ocean, and the physical dynamics they experience as they get around," said Franks. "AUEs should improve ocean models and allow us to do a better job of following 'the weather and climate of the ocean,' as well as help us understand things like carbon fluxes."
Franks, who conducts research on marine phytoplankton, says that "plankton are somewhat like the balloons of the ocean floating around out there. With AUEs, we're trying to figure out how the ocean works at scales that matter to plankton.
"If we place 100 AUEs in the ocean and let them go, we'll be able to look at how they move to get a sense of the physics driving current flows."
During the pilot phase of the project, Jaffe and colleagues will build five to six of the soccer-ball-sized explorers and 20 of the smaller versions. An outreach component of the project will enlist school children in building and ultimately deploying AUEs.
In a related funding award, the researchers have also been given $1.5 million from NSF's Cyber-Enabled Discovery and Innovation initiative to design and develop the systems necessary to control the movement of AUEs.
That aspect brings Jaffe and Franks together with researchers at the Cymer Center for Control Systems and Dynamics at the University of California at San Diego's Jacobs School of Engineering and the San Diego Supercomputer Center.
The briefing will take place in the James E. Webb Memorial Auditorium at NASA Headquarters, 300 E St. S.W., in Washington. NASA TV will broadcast the briefing on the NASA Education Channel.
Panelists will be:
-- Jon Morse, NASA's Astrophysics division director at NASA Headquarters
-- Edward (Ned) Wright, WISE principal investigator at UCLA
-- William Irace, WISE project manager at NASA's Jet Propulsion Laboratory in Pasadena, Calif.
-- Amy Mainzer, WISE deputy project scientist, JPL
-- Peter Eisenhardt, WISE project scientist, JPL
Reporters may ask questions from participating NASA locations or by phone. To reserve a phone line, journalists should send an e-mail listing name, media affiliation, and telephone number to:
For the latest information about the WISE mission, visit:
There apparently is a great deal of interest in celestial bodies, and their locations and trajectories at the end of the calendar year 2012. Now, I for one love a good book or movie as much as the next guy. But the stuff flying around through cyberspace, TV and the movies is not based on science. There is even a fake NASA news release out there… So here is the scientific reality on the celestial happenings in the year 2012.Nibiru, a purported large object headed toward Earth, simply put - does not exist. There is no credible evidence - telescopic or otherwise - for this object's existence. There is also no evidence of any kind for its gravitational affects upon bodies in our solar system.
I do however like the name Nibiru. If I ever get a pet goldflish (and I just may do that sometime in early 2013), Nibiru will be at the top of my list.
The Mayan calendar does not end in December 2012. Just as the calendar you have on your kitchen wall does not cease to exist after December 31, the Mayan calendar does not cease to exist on December 21, 2012. This date is the end of the Mayan long-count period, but then – just as your calendar begins again on January 1 - another long-count period begins for the Mayan calendar.
There are no credible predictions for worrisome astronomical events in 2012. The activity of the sun is cyclical with a period of roughly 11 years and the time of the next solar maximum is predicted to occur in the period 2010 – 2012. However, the Earth routinely experiences these periods of increased solar activity – for eons - without worrisome effects. The Earth’s magnetic field, which deflects charged particles from the sun, does reverse polarity on time scales of about 400,000 years but there is no evidence that a reversal, which takes thousands of years to occur, will begin in 2012. Even if this several thousand year-long magnetic field reversal were to begin, that would not affect the Earth’s rotation nor would it affect the direction of the Earth’s rotation axis… only Superman can do that.
The only important gravitational tugs experienced by the Earth are due to the moon and sun. There are no planetary alignments in the next few decades, Earth will not cross the galactic plane in 2012, and even if these alignments were to occur, their effects on the Earth would be negligible. Each December the Earth and Sun align with the approximate center of the Milky Way Galaxy but that is an annual event of no consequence.
The predictions of doomsday or dramatic changes on December 21, 2012 are all false. Incorrect doomsday predictions have taken place several times in each of the past several centuries. Readers should bear in mind what Carl Sagan noted several years ago; "extraordinary claims require extraordinary evidence."
For any claims of disaster or dramatic changes in 2012, the burden of proof is on the people making these claims. Where is the science? Where is the evidence? There is none, and all the passionate, persistent and profitable assertions, whether they are made in books, movies, documentaries or over the Internet, cannot change that simple fact. There is no credible evidence for any of the assertions made in support of unusual events taking place in December 2012.
For more information on the silliness surrounding December 2012, see:
- http://www.badastronomy.com/bad/misc/planetx/nutshell.html
- Wikipedia: look under “Nibiru collision.”
- http://www.nasa.gov/topics/earth/features/2012.html
In celebration of this International Year of Astronomy, NASA is releasing images of the galactic center region as seen by its Great Observatories to more than 150 planetariums, museums, nature centers, libraries and schools across the country.
The sites will unveil a giant, 6-foot-by-3-foot print of the bustling hub of our galaxy that combines a near-infrared view from the Hubble Space Telescope, an infrared view from the Spitzer Space Telescope and an X-ray view from the Chandra X-ray Observatory into one multi-wavelength picture. Experts from all three observatories carefully assembled the final image from large mosaic photo surveys taken by each telescope. This composite image provides one of the most detailed views ever of our galaxy's mysterious core.
Participating institutions also will display a matched trio of Hubble, Spitzer and Chandra images of the Milky Way's center on a second large panel measuring 3 feet by 4 feet. Each image shows the telescope's different wavelength view of the galactic center region, illustrating not only the unique science each observatory conducts, but also how far astronomy has come since Galileo.
Yellow represents the near-infrared observations of Hubble. They outline the energetic regions where stars are being born as well as reveal hundreds of thousands of stars.
Red represents the infrared observations of Spitzer. The radiation and winds from stars create glowing dust clouds that exhibit complex structures from compact, spherical globules to long, stringy filaments.
Blue and violet represent the X-ray observations of Chandra. X-rays are emitted by gas heated to millions of degrees by stellar explosions and by outflows from the supermassive black hole in the galaxy's center. The bright blue blob on the left side is emission from a double star system containing either a neutron star or a black hole.
› Larger image
The composite image features the spectacle of stellar evolution: from vibrant regions of star birth, to young hot stars, to old cool stars, to seething remnants of stellar death called black holes. This activity occurs against a fiery backdrop in the crowded, hostile environment of the galaxy's core, the center of which is dominated by a supermassive black hole nearly four million times more massive than our Sun. Permeating the region is a diffuse blue haze of X-ray light from gas that has been heated to millions of degrees by outflows from the supermassive black hole as well as by winds from massive stars and by stellar explosions. Infrared light reveals more than a hundred thousand stars along with glowing dust clouds that create complex structures including compact globules, long filaments, and finger-like "pillars of creation," where newborn stars are just beginning to break out of their dark, dusty cocoons.
The unveilings will take place at 152 institutions nationwide, reaching both big cities and small towns. Each institution will conduct an unveiling celebration involving the public, schools, and local media.
The Astrophysics Division of NASA's Science Mission Directorate supports the International Year of Astronomy Great Observatories image unveiling. The project is a collaboration among the Space Telescope Science Institute in Baltimore, Md., the Spitzer Science Center in Pasadena, Calif., and the Chandra X-ray Center in Cambridge, Mass.
Images of the Milky Way galactic center region and a list of places exhibiting these images can be found at:
› HubbleSite.org
› www.nasa.gov/spitzer
› www.nasa.gov/chandra
› astronomy2009.nasa.gov
Pyrimidine is a ring-shaped molecule made up of carbon and nitrogen and is the basic structure for uracil, part of a genetic code found in ribonucleic acid (RNA). RNA is central to protein synthesis, but has many other roles.
"We have demonstrated for the first time that we can make uracil, a component of RNA, non-biologically in a laboratory under conditions found in space," said Michel Nuevo, research scientist at NASA's Ames Research Center, Moffett Field, Calif. "We are showing that these laboratory processes, which simulate occurrences in outer space, can make a fundamental building block used by living organisms on Earth."
Nuevo is the lead author of a research paper titled “Formation of Uracil from the Ultraviolet Photo-Irradiation of Pyrimidine in Pure Water Ices,” Astrobiology vol. 9 no. 7, published Oct. 1, 2009.
NASA Ames scientists have been simulating the environments found in interstellar space and the outer solar system for years. During this time, they have studied a class of carbon-rich compounds, called polycyclic aromatic hydrocarbons (PAHs), which have been identified in meteorites, and are the most common carbon-rich compound observed in the universe. PAHs typically are six-carbon ringed structures that resemble fused hexagons, or a piece of chicken wire.
Pyrimidine also is found in meteorites, although scientists still do not know its origin. It may be similar to the carbon-rich PAHs, in that it may be produced in the final outbursts of dying, giant red stars, or formed in dense clouds of interstellar gas and dust.
“Molecules like pyrimidine have nitrogen atoms in their ring structures, which makes them somewhat whimpy. As a less stable molecule, it is more susceptible to destruction by radiation, compared to its counterparts that don’t have nitrogen,” said Scott Sandford, a space science researcher at Ames. “We wanted to test whether pyrimidine can survive in space, and whether it can undergo reactions that turn it into more complicated organic species, such as the nucleobase uracil.”
In theory, the researchers thought that if molecules of pyrimidine could survive long enough to migrate into interstellar dust clouds, they might be able to shield themselves from radiation destruction. Once in the clouds, most molecules freeze onto dust grains (much like moisture in your breath condenses on a cold window during winter).
These clouds are dense enough to screen out much of the surrounding outside radiation of space, thereby providing some protection to the molecules inside the clouds.
Scientists tested their hypotheses in the Ames Astrochemistry Laboratory. During their experiment, they exposed the ice sample containing pyrimidine to ultraviolet radiation under space-like conditions, including a very high vacuum, extremely low temperatures (approximately - 340 degrees Fahrenheit), and harsh radiation.
They found that when pyrimidine is frozen in water ice, it is much less vulnerable to destruction by radiation. Instead of being destroyed, many of the molecules took on new forms, such as the RNA component uracil, which is found in the genetic make-up of all living organisms on Earth.
“We are trying to address the mechanisms in space that are forming these molecules. Considering what we produced in the laboratory, the chemistry of ice exposed to ultraviolet radiation may be an important linking step between what goes on in space and what fell to Earth early in its development,” said Stefanie Milam, a researcher at NASA Ames and a co-author of the research paper.“Nobody really understands how life got started on Earth. Our experiments demonstrate that once the Earth formed, many of the building blocks of life were likely present from the beginning. Since we are simulating universal astrophysical conditions, the same is likely wherever planets are formed,” explained Sandford.
Additional team members who helped perform the research and co-author the paper are Jason Dworkin and Jamie Elsila, two NASA scientists at NASA’s Goddard Space Flight Center, Greenbelt, Md.
For more information about the NASA Ames Astrochemistry Laboratory, visit:
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