Wisdom is back!

63-year-old albatross Wisdom (l) and mate at Midway Atoll. Posted on Facebook by USFWS National Wildlife Refuge System

The 63-year-old albatross Wisdom (l) and mate at Midway Atoll. Posted on Facebook December 1, 2014 by USFWS National Wildlife Refuge System



Wisdom is back! She’s on the left in the photo above. The world’s oldest known albatross – at least 63 years old – has been seen with her mate for the first time this mating season within feet of their usual nesting site. The USFWS National Wildlife Refuge System posted this photo of Wisdom of its Facebook page today (December 1, 2014). They wrote:



Right now, Midway Atoll is crowded with hundreds of thousands of albatross pairs staking out their nest sites.


This year, Wisdom’s highly visible band number Z333 was seen by deputy refuge ranger Bret Wolfe, who used a telephoto lens from 30 feet away to take this photo.



More about the Laysan albatross here.


See a gallery of last year’s chick here.


Follow this year’s events here: Papahanaumokuakea Marine National Monument






from EarthSky http://ift.tt/11JseUE
63-year-old albatross Wisdom (l) and mate at Midway Atoll. Posted on Facebook by USFWS National Wildlife Refuge System

The 63-year-old albatross Wisdom (l) and mate at Midway Atoll. Posted on Facebook December 1, 2014 by USFWS National Wildlife Refuge System



Wisdom is back! She’s on the left in the photo above. The world’s oldest known albatross – at least 63 years old – has been seen with her mate for the first time this mating season within feet of their usual nesting site. The USFWS National Wildlife Refuge System posted this photo of Wisdom of its Facebook page today (December 1, 2014). They wrote:



Right now, Midway Atoll is crowded with hundreds of thousands of albatross pairs staking out their nest sites.


This year, Wisdom’s highly visible band number Z333 was seen by deputy refuge ranger Bret Wolfe, who used a telephoto lens from 30 feet away to take this photo.



More about the Laysan albatross here.


See a gallery of last year’s chick here.


Follow this year’s events here: Papahanaumokuakea Marine National Monument






from EarthSky http://ift.tt/11JseUE

Days of darkness this December? Of course not.


Question: Will Earth experience six (or three) days of darkness in December, 2014?


Answer: No.


We at EarthSky have received many questions already about the so-called days of darkness supposedly announced by NASA and supposedly coming up in December, 2014. This rumor has spread like wildfire, as did the same rumor in 2011, which called for days of darkness caused by the erstwhile Comet Elenin. 2014’s version of the rumor apparently first began with this article from Hutzlers.com. The article states:



NASA has confirmed that the Earth will experience 6 days of almost complete darkness and will happen from the dates Tuesday the 16 – Monday the 22 in December. The world will remain, during these three days, without sunlight due to a solar storm, which will cause dust and space debris to become plentiful and thus, block 90% sunlight.



Oh, brother. Just reading that quote gives us a combination of heartburn plus giggles. Why? Let’s ignore for the moment that space scientists can’t yet predict when a solar storm will occur, although, in the hours leading up to one, they sometimes suggest a probability that one might occur. That aside, there’s never been an event where a solar storm created enough “dust and debris,” whatever that means, to darken Earth … at least not in living memory. Could such a thing even be predicted, sort of like Superman’s dad Jor-El predicted the explosion of planet Krypton (which also had never happened before)? Let’s remember for a moment that Superman was fiction, but, even given that, many other imaginary scientists on that imaginary planet Krypton were arguing that the explosion wasn’t really imminent. Likewise, here on our real Earth, a prediction of days of darkness caused by solar storms would be such outlandish science that scientists would argue about it up until the time it happened … or didn’t happen. NASA wouldn’t just suddenly “predict it,” in other words.


Before we go on, the inquiring reader may want to read what Hutzlers.com says about itself:



Huzlers.com is a combination of real shocking news and satirical entertainment to keep its visitors in a state of disbelief.



Well, they got that part right.


Needless to say, the NASA Earth Observatory website totally disavowed the hoax. Here’s a screen shot from its Facebook page October 30, 2014:


days-darkness-NASA-FB-10-30-2014


This incredible image of the night side of Earth is a composite of data gathered by the Suomi NPP satellite in April and October 2012 and mapped over previous imagery of the whole Earth. Image via NASA/NOAA.

This beautiful image of the night side of Earth is a composite of data gathered by the Suomi NPP satellite in April and October 2012. Is Earth totally dark when it’s night for you? No. Earth is always half illuminated by sunlight. Notice the crescent of illumination on one edge in this photo. If you were on the other side of Earth when the images used in this composite were acquired, you’d see Earth shining brightly in reflected sunlight, aka daylight. Image via NASA/NOAA.



Is all of this a replay of the December, 2012 winter solstice hysteria?


We don’t know what it is about the December solstice, the Northern Hemisphere’s winter solstice, but it seems to inspire all kinds of pseudo-scientific claims and apocalyptic fantasies. The days-of-darkness theme appears to be a revival of sorts of the bogus galactic alignment prophesy, which did not take place – as expected – on the 2012 winter solstice.


Snopes.com, which has already investigated and debunked the supposed December, 2014 NASA Blackout Warning, recalled a 2012 prediction whereby:



The Earth will shift from the current third dimension to zero dimension, then shift to the fourth dimension. During this transition, the entire Universe will face a big change, and we will see a entire brand new world. The 3 days blackout is predicted to happen on Dec 23, 24, 25….



Okay then … moving on …


As Comet Elenin passed to within just 7 million kilometers of the STEREO (Behind) spacecraft, NASA rolled the spacecraft to take a look at it (Aug. 1, 2011) with its wide angle HI-2 instrument. Image credit: NASA

As Comet Elenin passed near the sun in 2011, it was supposed to block the sun and cause three days of darkness. Of course, it didn’t. That would have been far more difficult than, say, a mosquito blocking your car headlight. Image via NASA



Remember Nibiru, the fictitious planet, which was predicted to bombard the inner solar system and collide with our planet Earth in 2012?


When acute telescopic observers wondered why this huge planet wasn’t visible in the night sky by 2010, Nibiru proponents answered the challenge by claiming the discovery of Comet Elenin in December 2010 provided proof of Nibiru’s existence.


Moreover, prognosticators went on to say that Comet Elenin itself was to bring three days of darkness – which, of course, never came to pass. Meanwhile, Comet Elenin eventually disintegrated.


So will you experience three to six days of darkness in December, 2014? No … unless you live north of the Arctic Circle, which has continuous darkness in winter every December.


Bottom line: NASA did not predict – and December, 2014 will not have – three to six days of darkness.


Comet Elenin: Still not a spaceship or doomsday comet






from EarthSky http://ift.tt/10t2WJx

Question: Will Earth experience six (or three) days of darkness in December, 2014?


Answer: No.


We at EarthSky have received many questions already about the so-called days of darkness supposedly announced by NASA and supposedly coming up in December, 2014. This rumor has spread like wildfire, as did the same rumor in 2011, which called for days of darkness caused by the erstwhile Comet Elenin. 2014’s version of the rumor apparently first began with this article from Hutzlers.com. The article states:



NASA has confirmed that the Earth will experience 6 days of almost complete darkness and will happen from the dates Tuesday the 16 – Monday the 22 in December. The world will remain, during these three days, without sunlight due to a solar storm, which will cause dust and space debris to become plentiful and thus, block 90% sunlight.



Oh, brother. Just reading that quote gives us a combination of heartburn plus giggles. Why? Let’s ignore for the moment that space scientists can’t yet predict when a solar storm will occur, although, in the hours leading up to one, they sometimes suggest a probability that one might occur. That aside, there’s never been an event where a solar storm created enough “dust and debris,” whatever that means, to darken Earth … at least not in living memory. Could such a thing even be predicted, sort of like Superman’s dad Jor-El predicted the explosion of planet Krypton (which also had never happened before)? Let’s remember for a moment that Superman was fiction, but, even given that, many other imaginary scientists on that imaginary planet Krypton were arguing that the explosion wasn’t really imminent. Likewise, here on our real Earth, a prediction of days of darkness caused by solar storms would be such outlandish science that scientists would argue about it up until the time it happened … or didn’t happen. NASA wouldn’t just suddenly “predict it,” in other words.


Before we go on, the inquiring reader may want to read what Hutzlers.com says about itself:



Huzlers.com is a combination of real shocking news and satirical entertainment to keep its visitors in a state of disbelief.



Well, they got that part right.


Needless to say, the NASA Earth Observatory website totally disavowed the hoax. Here’s a screen shot from its Facebook page October 30, 2014:


days-darkness-NASA-FB-10-30-2014


This incredible image of the night side of Earth is a composite of data gathered by the Suomi NPP satellite in April and October 2012 and mapped over previous imagery of the whole Earth. Image via NASA/NOAA.

This beautiful image of the night side of Earth is a composite of data gathered by the Suomi NPP satellite in April and October 2012. Is Earth totally dark when it’s night for you? No. Earth is always half illuminated by sunlight. Notice the crescent of illumination on one edge in this photo. If you were on the other side of Earth when the images used in this composite were acquired, you’d see Earth shining brightly in reflected sunlight, aka daylight. Image via NASA/NOAA.



Is all of this a replay of the December, 2012 winter solstice hysteria?


We don’t know what it is about the December solstice, the Northern Hemisphere’s winter solstice, but it seems to inspire all kinds of pseudo-scientific claims and apocalyptic fantasies. The days-of-darkness theme appears to be a revival of sorts of the bogus galactic alignment prophesy, which did not take place – as expected – on the 2012 winter solstice.


Snopes.com, which has already investigated and debunked the supposed December, 2014 NASA Blackout Warning, recalled a 2012 prediction whereby:



The Earth will shift from the current third dimension to zero dimension, then shift to the fourth dimension. During this transition, the entire Universe will face a big change, and we will see a entire brand new world. The 3 days blackout is predicted to happen on Dec 23, 24, 25….



Okay then … moving on …


As Comet Elenin passed to within just 7 million kilometers of the STEREO (Behind) spacecraft, NASA rolled the spacecraft to take a look at it (Aug. 1, 2011) with its wide angle HI-2 instrument. Image credit: NASA

As Comet Elenin passed near the sun in 2011, it was supposed to block the sun and cause three days of darkness. Of course, it didn’t. That would have been far more difficult than, say, a mosquito blocking your car headlight. Image via NASA



Remember Nibiru, the fictitious planet, which was predicted to bombard the inner solar system and collide with our planet Earth in 2012?


When acute telescopic observers wondered why this huge planet wasn’t visible in the night sky by 2010, Nibiru proponents answered the challenge by claiming the discovery of Comet Elenin in December 2010 provided proof of Nibiru’s existence.


Moreover, prognosticators went on to say that Comet Elenin itself was to bring three days of darkness – which, of course, never came to pass. Meanwhile, Comet Elenin eventually disintegrated.


So will you experience three to six days of darkness in December, 2014? No … unless you live north of the Arctic Circle, which has continuous darkness in winter every December.


Bottom line: NASA did not predict – and December, 2014 will not have – three to six days of darkness.


Comet Elenin: Still not a spaceship or doomsday comet






from EarthSky http://ift.tt/10t2WJx

Super-Earth transit detected from the ground


Earth and superearth. Image via York University in Toronto, Ontario, Canada.

Earth and super-Earth. Artist’s concept contrasts our Earth with the strange super-Earth known as 55 Cancri e. Image via York University in Toronto, Ontario, Canada.



There are nearly 2,000 exoplanets – worlds beyond our solar system – known so far, but information about them doesn’t come easily. That’s why a team of astronomers is excited about its ground-based detection – for the first time, ever – of the shallow dip in starlight that occurs when the super-Earth 55 Cancri e passes in front of its star, as seen from Earth. These astronomers said on December 1, 2014 that the technique they used to see this super-Earth transit should let other astronomers use ground-based telescopes to characterize the many small planets expected to be detected in the next few years by NASA’s TESS mission and ESA’s PLATO mission, scheduled for launch in 2017 and 2024, respectively. The Astrophysical Journal Letters published the astronomers’ findings.


The term super-Earth doesn’t imply anything about habitability. It refers only to a world’s mass. A super-Earth has a mass greater than our Earth’s, but smaller than our solar system’s smaller gas giants Uranus and Neptune (15 and 17 Earth masses).


Exoplanet transits are a tried and true method both for detecting planets beyond our solar system, and also learning more about them, but this method has led to a bias towards finding big planets around small stars.


Super-Earth like 55 Cancri e, which is innermost in a system of five known planets orbiting a sunlike star, have been tough to detect from the ground using the transit method. It’s Earth’s roiling atmosphere that makes this sort of observation extremely difficult. That’s why 55 Cancri e’s previous transits have been observed via space-borne telescopes.


Until now, the transits of only one other super-Earth, GJ 1214b circling a red dwarf, had been observed with ground-based telescopes.


Planets that transit as viewed from Earth, and planets that don't transit as viewed from Earth. Read more about the technique of exoplanet transits from Las Cumbres Observatory.

Planets that transit as viewed from Earth, and planets that don’t transit as viewed from Earth. Read more about the technique of exoplanet transits from Las Cumbres Observatory.



The astronomers who made the ground-based detection of 55 Cancri e’s transit said this new result:



…raises the prospects of characterizing dozens of super-Earths likely to be revealed by upcoming surveys.



The team includes lead author Ernst de Mooij of Queen’s University Belfast, Ray Jayawardhana of York University in Toronto, Mercedes Lopez-Morales of the Harvard-Smithsonian Center for Astrophysics, and Raine Karjalainen and Marie Hrudkova of the Isaac Newton Group of Telescopes in Spain. They used the 2.5-meter Nordic Optical Telescope on the island of La Palma, Spain to make the detection.


The star 55 Cancri is only 40 light-years away. It’s visible to the unaided eye as a faint star in the direction of our constellation Cancer the Crab. The transit of the super-Earth 55 Cancri e leads to a change in this star’s light that is exceedingly small. The planet dims the star by 1/2000th (or 0.05%) for almost two hours. Team member Ray Jayawardhana said:



It’s remarkable what we can do by pushing the limits of existing telescopes and instruments, despite the complications posed by the Earth’s own turbulent atmosphere.


Observations like these are paving the way as we strive towards searching for signs of life on alien planets from afar. Remote sensing across tens of light-years isn’t easy, but it can be done with the right technique and a bit of ingenuity.



By the way, NASA’s Spitzer Space Telescope has already surprising details about the planet planet 55 Cancri e, which was discovered in 2004. The astronomers described this world in their press release as:



… supersized and superheated … about twice as big and eight times as massive as the Earth. With a period of [approximately 18 hours, it is the innermost of five planets in the system. Because of its proximity to the host star, the planet’s dayside temperature reaches over 1,700° Celsius – hot enough to melt metal – with conditions quite inhospitable to life.



The Spitzer results also suggest that about a fifth of the planet’s mass must be made of light elements and compounds, including water.


However, in the intense heat of 55 Cancri e’s very close sun, those light materials would exist in a supercritical state – between that of a liquid and a gas – and might sizzle out of the planet’s surface.


Bottom line: An international team of astronomers has made the first ground-based detection of the transit of the exoplanet 55 Cancri e in front of its star. They say other astronomers will be able to use their technique to characterize other super-Earths expected to be found in upcoming space surveys.






from EarthSky http://ift.tt/1vAUWmt

Earth and superearth. Image via York University in Toronto, Ontario, Canada.

Earth and super-Earth. Artist’s concept contrasts our Earth with the strange super-Earth known as 55 Cancri e. Image via York University in Toronto, Ontario, Canada.



There are nearly 2,000 exoplanets – worlds beyond our solar system – known so far, but information about them doesn’t come easily. That’s why a team of astronomers is excited about its ground-based detection – for the first time, ever – of the shallow dip in starlight that occurs when the super-Earth 55 Cancri e passes in front of its star, as seen from Earth. These astronomers said on December 1, 2014 that the technique they used to see this super-Earth transit should let other astronomers use ground-based telescopes to characterize the many small planets expected to be detected in the next few years by NASA’s TESS mission and ESA’s PLATO mission, scheduled for launch in 2017 and 2024, respectively. The Astrophysical Journal Letters published the astronomers’ findings.


The term super-Earth doesn’t imply anything about habitability. It refers only to a world’s mass. A super-Earth has a mass greater than our Earth’s, but smaller than our solar system’s smaller gas giants Uranus and Neptune (15 and 17 Earth masses).


Exoplanet transits are a tried and true method both for detecting planets beyond our solar system, and also learning more about them, but this method has led to a bias towards finding big planets around small stars.


Super-Earth like 55 Cancri e, which is innermost in a system of five known planets orbiting a sunlike star, have been tough to detect from the ground using the transit method. It’s Earth’s roiling atmosphere that makes this sort of observation extremely difficult. That’s why 55 Cancri e’s previous transits have been observed via space-borne telescopes.


Until now, the transits of only one other super-Earth, GJ 1214b circling a red dwarf, had been observed with ground-based telescopes.


Planets that transit as viewed from Earth, and planets that don't transit as viewed from Earth. Read more about the technique of exoplanet transits from Las Cumbres Observatory.

Planets that transit as viewed from Earth, and planets that don’t transit as viewed from Earth. Read more about the technique of exoplanet transits from Las Cumbres Observatory.



The astronomers who made the ground-based detection of 55 Cancri e’s transit said this new result:



…raises the prospects of characterizing dozens of super-Earths likely to be revealed by upcoming surveys.



The team includes lead author Ernst de Mooij of Queen’s University Belfast, Ray Jayawardhana of York University in Toronto, Mercedes Lopez-Morales of the Harvard-Smithsonian Center for Astrophysics, and Raine Karjalainen and Marie Hrudkova of the Isaac Newton Group of Telescopes in Spain. They used the 2.5-meter Nordic Optical Telescope on the island of La Palma, Spain to make the detection.


The star 55 Cancri is only 40 light-years away. It’s visible to the unaided eye as a faint star in the direction of our constellation Cancer the Crab. The transit of the super-Earth 55 Cancri e leads to a change in this star’s light that is exceedingly small. The planet dims the star by 1/2000th (or 0.05%) for almost two hours. Team member Ray Jayawardhana said:



It’s remarkable what we can do by pushing the limits of existing telescopes and instruments, despite the complications posed by the Earth’s own turbulent atmosphere.


Observations like these are paving the way as we strive towards searching for signs of life on alien planets from afar. Remote sensing across tens of light-years isn’t easy, but it can be done with the right technique and a bit of ingenuity.



By the way, NASA’s Spitzer Space Telescope has already surprising details about the planet planet 55 Cancri e, which was discovered in 2004. The astronomers described this world in their press release as:



… supersized and superheated … about twice as big and eight times as massive as the Earth. With a period of [approximately 18 hours, it is the innermost of five planets in the system. Because of its proximity to the host star, the planet’s dayside temperature reaches over 1,700° Celsius – hot enough to melt metal – with conditions quite inhospitable to life.



The Spitzer results also suggest that about a fifth of the planet’s mass must be made of light elements and compounds, including water.


However, in the intense heat of 55 Cancri e’s very close sun, those light materials would exist in a supercritical state – between that of a liquid and a gas – and might sizzle out of the planet’s surface.


Bottom line: An international team of astronomers has made the first ground-based detection of the transit of the exoplanet 55 Cancri e in front of its star. They say other astronomers will be able to use their technique to characterize other super-Earths expected to be found in upcoming space surveys.






from EarthSky http://ift.tt/1vAUWmt

What happened when the comet swept past Mars


This animation is from the ESA Mars Express. Animated GIF shows the comet belting past Mars, one frame every 17 seconds using the High Resolution Stereo Camera. Resolution is 17 km / 11 miles. I think the bright star at top is the dying orange giant star Arcturus / Alpha Bootis. From Mars the comet appeared to pass close to Arcturus.

Animated GIF showing the comet belting past Mars on October 19, one frame every 17 seconds, from the High Resolution Stereo Camera (HRSC) on ESA’s Mars Express. Resolution is 17 km / 11 miles. Bright star at top might be the dying orange giant star Arcturus. From Mars, the comet appeared to pass close to this star. Image via ESA Mars Express/HRSC/DLR/FU Berlin.



On October 19, 2014, Comet C/2013A1 Siding Spring passed only 140,000 kilometers / 87,000 miles of Mars, closer than any known comet in recorded history. It was moving at a speed of 203,000 kilometers / 126,000 miles per hour. At closest approach, the comet swept over the predawn side of Mars after passing over the day side. The comet is orbiting the sun in the opposite direction to the planets in our solar system. It’s making its first foray into the inner solar system after a seven-million-year journey from the postulated Oort Cloud, some one-light year from the sun. There were observations from the surface of Mars, and from orbit. There is a potential twist to this story, with this comet potentially even more remarkable than first suspected. Plus there was a meteor shower as seen from Mars’ surface. All of this is described below.


The several spacecraft now orbiting Mars were not designed to study passing comets. Yet they all observed the comet around closest approach, with the orbiters all ‘taking cover’ over the opposite side of Mars when the coma and the tail of the comet swiped Mars.


That’s how we know that Mars was indeed enveloped by the huge coma of this tiny comet. That was one of the first results. Mars was, for a short period, totally enveloped by the outer coma.


These two infrared images were taken of Comet Siding Spring by NASA's The Compact Reconnaissance Imaging Spectrometer for Mars (CRISM) camera on NASA's Mars Reconnaissance Orbiter captured views of comet C/2013 A1 Siding Spring while that visitor sped past Mars on Sunday 19th October 2014, yielding information about its inner and outer coma. CRISM used all 107 infrared channels to image the comet, in these images three colour channels were used. Image via NASA/JPL-Caltech/JHUAPL/CRISM.

These two infrared images were taken of Comet Siding Spring by the Compact Reconnaissance Imaging Spectrometer for Mars (CRISM) camera on NASA’s Mars Reconnaissance Orbiter. CRISM used all 107 infrared channels to image the comet; in these images three color channels were used. The images yielded information about the comet’s inner and outer coma. Image via NASA/JPL-Caltech/JHUAPL/CRISM.



Screen dump from the video of a NASA broadcast about the very close pass by Mars of the comet C/2013 A1 Siding Spring. A fully resolved image of Comet Siding Spring nucleus in crescent phase as seen by MRO HiRISE. Image via NASA/JPL/University of Arizona.

A fully resolved image of Comet Siding Spring nucleus in crescent phase as seen by MRO HiRISE. This image is a screen dump from a video of a NASA broadcast. Image via NASA/JPL/University of Arizona.



This image of comet C/2013 A1 Siding Spring taken by NASA's Mars Atmosphere and Volatile EvolutioN / MAVEN spacecraft, from a distance of 8.5 million KM / 5.3 million miles, two days before the comet's close flyby of Mars and the spacecraft. This is an ultraviolet hydrogen image showing the hydrogen distribution within the coma. Image via NASA / UoC / LASP. Mars Atmosphere and Volatile EvolutioN / MAVEN spacecraft

This image of comet C/2013 A1 Siding Spring was taken by NASA’s Mars Atmosphere and Volatile EvolutioN / MAVEN spacecraft, from a distance of 8.5 million kilometers / 5.3 million miles, two days before the comet’s close flyby of Mars and the spacecraft. This is an ultraviolet hydrogen image showing the hydrogen distribution within the coma. Image via NASA / UoC / LASP. Mars Atmosphere and Volatile EvolutioN / MAVEN spacecraft



Potential twist to the story of the nature of the comet. Comet C/2013A1 Siding Spring approached the solar system from the direction in our sky of constellation Lepus the Hare, near the border with the constellation Columba the Dove.


As our solar system orbits the center of the Milky Way once every 250 million years at a speed of approximately 829,000 kph / 515,000 mph (230 kps / 143 mps), we are traveling towards a point in the constellation Hercules, near the constellation Lyra the Lyre. That point is called the Solar Apex by astronomers.


The opposite point in Columba the Dove is called the Solar Antapex.


Comet C/2013A1 Siding Spring approached the solar system from a point very close to the north of the Antapex, and at a speed and direction which meant the comet overtook the solar system.


Those facts raise questions. Is indeed Comet C/2013A1 Siding Spring from the Oort Cloud? Or might it be an interstellar object ejected from another solar system entirely? The official line is that this is still an Oort Cloud comet, but the trajectory and speed of the comet remain too interesting to ignore.


Meteor shower as seen from Mars’ surface. As mentioned earlier, Mars was completely enveloped in the coma of Comet Siding Spring for a short period. The NASA Mars Reconnaissance Orbiter and MAVEN spacecraft along with the ESA Mars Express all observed a huge rise in the mineral content of the upper atmosphere on Mars as Mars experienced the mother of all meteor showers.


Comet C/2013A1 Siding Spring delivered in particular large quantities of sodium, magnesium, potassium, chromium, manganese, iron, nickel and zinc to the atmosphere of Mars.


Levels over a 24-hour period dropped back to normal as the heavy particles settled out. These observations represent the first every direct chemical measurements of an Oort Cloud comet by spacecraft.


Comet Siding Spring seen by Mars MER B Opportunity.

Comet Siding Spring seen by Mars MER B Opportunity at the Meridiani Planum on Mars. Image via NASA.



Comet Siding Spring, under a dark sky at around the beginning of Martian morning twilight. At this time, the comet appeared among the stars of the constellation of Cetus the Sea Monster. Image via NASA/MER B Opportunity.

Comet Siding Spring, under a dark sky at around the beginning of Martian morning twilight. At this time, the comet appeared among the stars of the constellation of Cetus the Sea Monster. Image via NASA’s Opportunity rover on Mars.



Comet Siding Spring is a fuzzy streak to the upper right of the bright streak, as captured by the MastCam on the Mars Science Laboratory Curiosity. Image via NASA.

Comet Siding Spring is a fuzzy streak to the upper right of the bright streak, as captured by the MastCam on the Mars Science Laboratory Curiosity, at the Gale Crater on Mars. Image via NASA.



On the surface of Mars … two Mars rover – the veteran Mars Exploration Rover Opportunity and the Mars Science Laboratory Curiosity – both observed Comet C/2013A1 Siding Spring. These rovers are located at the Meridiani Planum and Gale Crater, respectively.


Opportunity had the best views as was able to observe the comet under a very dark sky at around the beginning of martian morning twilight with the comet among the stars of the constellation of Cetus the Sea Monster. See images above.


Curiosity has a vastly more difficult job as from Gale Crater. The speed of the comet meant that the comet was visible only under a much brighter sky. But MSL Curiosity was still successful in observations. See image above.


Early images from HIRISE, MRO

Early images from High Resolution Imaging Science Experiment (HiRISE) camera on NASA’s Mars Reconnaissance Orbiter.



The High Resolution Imaging Science Experiment (HiRISE) camera on NASA's Mars Reconnaissance Orbiter captured views of comet C/2013 A1 Siding Spring while that visitor sped past Mars. The images are the highest-resolution views ever acquired of a comet coming from the Oort Cloud at the fringes of the solar system (or possible interstellar comet). The comet's nucleus turned out to be tiny, barely 400 meters wide. The two sets of images were taken nine minutes apart. Top set the actual nucleus, bottom set including the inner coma. Image via NASA/JPL-Caltech/University of Arizona. HiRISE.

The High Resolution Imaging Science Experiment (HiRISE) camera on NASA’s Mars Reconnaissance Orbiter captured views of comet C/2013 A1 Siding Spring while that visitor sped past Mars. The images are the highest-resolution views ever acquired of a comet coming from the Oort Cloud at the fringes of the solar system (or possible interstellar comet). The comet’s nucleus turned out to be tiny, barely 400 meters wide. The two sets of images were taken nine minutes apart. Top set the actual nucleus, bottom set including the inner coma. Image via NASA/JPL-Caltech/University of Arizona. HiRISE.



From the Indian Mangalyaan Mars Orbiter Mission Mars Color Camera. Via ISRO Mangalyaan Mars Orbiter Mission (MOM) spacecraft.

From the Indian Mangalyaan Mars Orbiter Mission (MOM) Mars Color Camera. Via ISRO.



Back in Mars orbit … the Mars orbiter Mars Reconnaissance Orbiter using the hugely powerful HiRISE (High Resolution Imaging Science Experiment) observed the comet prior to the spacecraft’s duck behind Mars. In this way, it actually imaged the nucleus of the comet, the very first time that a nucleus of an Oort Cloud comet has been seen.


The nucleus turned out to be smaller than expected. It turned out to have a maximum diameter of only 400 meters.


The observations using the HiRISE camera had been going on for several days leading up to closest approach and not only was the nucleus seen, but also the comet’s rotational period on its axis was detected to be nearly eight hours.


The shape of the nucleus using light curves as well as the images was determined to be roughly spherical.


Unlike other Kuiper Belt comets in short period orbits seen up close and even recently landed on which are dark as the carbon rich surface ices have become mostly dust, this comet was very bright, reflecting over 80% of the light that hits it. The CRISM (Compact Reconnaissance Imaging Spectrometer for Mars) also onboard the Mars Reconnaissance Orbiter imaged the comet in all 107 infrared channels and these confirm the elements that led to the temporary enrichment of the Martian atmosphere by detecting the same elements in the comet’s inner coma. CRISM could not image the nucleus as the field of view is wider.


The Indian Space Research Organisation Mangalyaan spacecraft also got some nice observations with the Mars Colour Camera monitoring the activity levels in the inner coma, before joining the NASA and ESA orbiters to duck behind Mars.


Bottom line: It took many weeks for the story of Comet Siding Spring’s close pass of Mars to emerge. Dazzling spacecraft imagery never came. Still, the images are fascinating, and the story of Comet Siding Spring’s exceedingly close pass of Mars might surprise you. See the images, and read the story, here.






from EarthSky http://ift.tt/1rMWdSj

This animation is from the ESA Mars Express. Animated GIF shows the comet belting past Mars, one frame every 17 seconds using the High Resolution Stereo Camera. Resolution is 17 km / 11 miles. I think the bright star at top is the dying orange giant star Arcturus / Alpha Bootis. From Mars the comet appeared to pass close to Arcturus.

Animated GIF showing the comet belting past Mars on October 19, one frame every 17 seconds, from the High Resolution Stereo Camera (HRSC) on ESA’s Mars Express. Resolution is 17 km / 11 miles. Bright star at top might be the dying orange giant star Arcturus. From Mars, the comet appeared to pass close to this star. Image via ESA Mars Express/HRSC/DLR/FU Berlin.



On October 19, 2014, Comet C/2013A1 Siding Spring passed only 140,000 kilometers / 87,000 miles of Mars, closer than any known comet in recorded history. It was moving at a speed of 203,000 kilometers / 126,000 miles per hour. At closest approach, the comet swept over the predawn side of Mars after passing over the day side. The comet is orbiting the sun in the opposite direction to the planets in our solar system. It’s making its first foray into the inner solar system after a seven-million-year journey from the postulated Oort Cloud, some one-light year from the sun. There were observations from the surface of Mars, and from orbit. There is a potential twist to this story, with this comet potentially even more remarkable than first suspected. Plus there was a meteor shower as seen from Mars’ surface. All of this is described below.


The several spacecraft now orbiting Mars were not designed to study passing comets. Yet they all observed the comet around closest approach, with the orbiters all ‘taking cover’ over the opposite side of Mars when the coma and the tail of the comet swiped Mars.


That’s how we know that Mars was indeed enveloped by the huge coma of this tiny comet. That was one of the first results. Mars was, for a short period, totally enveloped by the outer coma.


These two infrared images were taken of Comet Siding Spring by NASA's The Compact Reconnaissance Imaging Spectrometer for Mars (CRISM) camera on NASA's Mars Reconnaissance Orbiter captured views of comet C/2013 A1 Siding Spring while that visitor sped past Mars on Sunday 19th October 2014, yielding information about its inner and outer coma. CRISM used all 107 infrared channels to image the comet, in these images three colour channels were used. Image via NASA/JPL-Caltech/JHUAPL/CRISM.

These two infrared images were taken of Comet Siding Spring by the Compact Reconnaissance Imaging Spectrometer for Mars (CRISM) camera on NASA’s Mars Reconnaissance Orbiter. CRISM used all 107 infrared channels to image the comet; in these images three color channels were used. The images yielded information about the comet’s inner and outer coma. Image via NASA/JPL-Caltech/JHUAPL/CRISM.



Screen dump from the video of a NASA broadcast about the very close pass by Mars of the comet C/2013 A1 Siding Spring. A fully resolved image of Comet Siding Spring nucleus in crescent phase as seen by MRO HiRISE. Image via NASA/JPL/University of Arizona.

A fully resolved image of Comet Siding Spring nucleus in crescent phase as seen by MRO HiRISE. This image is a screen dump from a video of a NASA broadcast. Image via NASA/JPL/University of Arizona.



This image of comet C/2013 A1 Siding Spring taken by NASA's Mars Atmosphere and Volatile EvolutioN / MAVEN spacecraft, from a distance of 8.5 million KM / 5.3 million miles, two days before the comet's close flyby of Mars and the spacecraft. This is an ultraviolet hydrogen image showing the hydrogen distribution within the coma. Image via NASA / UoC / LASP. Mars Atmosphere and Volatile EvolutioN / MAVEN spacecraft

This image of comet C/2013 A1 Siding Spring was taken by NASA’s Mars Atmosphere and Volatile EvolutioN / MAVEN spacecraft, from a distance of 8.5 million kilometers / 5.3 million miles, two days before the comet’s close flyby of Mars and the spacecraft. This is an ultraviolet hydrogen image showing the hydrogen distribution within the coma. Image via NASA / UoC / LASP. Mars Atmosphere and Volatile EvolutioN / MAVEN spacecraft



Potential twist to the story of the nature of the comet. Comet C/2013A1 Siding Spring approached the solar system from the direction in our sky of constellation Lepus the Hare, near the border with the constellation Columba the Dove.


As our solar system orbits the center of the Milky Way once every 250 million years at a speed of approximately 829,000 kph / 515,000 mph (230 kps / 143 mps), we are traveling towards a point in the constellation Hercules, near the constellation Lyra the Lyre. That point is called the Solar Apex by astronomers.


The opposite point in Columba the Dove is called the Solar Antapex.


Comet C/2013A1 Siding Spring approached the solar system from a point very close to the north of the Antapex, and at a speed and direction which meant the comet overtook the solar system.


Those facts raise questions. Is indeed Comet C/2013A1 Siding Spring from the Oort Cloud? Or might it be an interstellar object ejected from another solar system entirely? The official line is that this is still an Oort Cloud comet, but the trajectory and speed of the comet remain too interesting to ignore.


Meteor shower as seen from Mars’ surface. As mentioned earlier, Mars was completely enveloped in the coma of Comet Siding Spring for a short period. The NASA Mars Reconnaissance Orbiter and MAVEN spacecraft along with the ESA Mars Express all observed a huge rise in the mineral content of the upper atmosphere on Mars as Mars experienced the mother of all meteor showers.


Comet C/2013A1 Siding Spring delivered in particular large quantities of sodium, magnesium, potassium, chromium, manganese, iron, nickel and zinc to the atmosphere of Mars.


Levels over a 24-hour period dropped back to normal as the heavy particles settled out. These observations represent the first every direct chemical measurements of an Oort Cloud comet by spacecraft.


Comet Siding Spring seen by Mars MER B Opportunity.

Comet Siding Spring seen by Mars MER B Opportunity at the Meridiani Planum on Mars. Image via NASA.



Comet Siding Spring, under a dark sky at around the beginning of Martian morning twilight. At this time, the comet appeared among the stars of the constellation of Cetus the Sea Monster. Image via NASA/MER B Opportunity.

Comet Siding Spring, under a dark sky at around the beginning of Martian morning twilight. At this time, the comet appeared among the stars of the constellation of Cetus the Sea Monster. Image via NASA’s Opportunity rover on Mars.



Comet Siding Spring is a fuzzy streak to the upper right of the bright streak, as captured by the MastCam on the Mars Science Laboratory Curiosity. Image via NASA.

Comet Siding Spring is a fuzzy streak to the upper right of the bright streak, as captured by the MastCam on the Mars Science Laboratory Curiosity, at the Gale Crater on Mars. Image via NASA.



On the surface of Mars … two Mars rover – the veteran Mars Exploration Rover Opportunity and the Mars Science Laboratory Curiosity – both observed Comet C/2013A1 Siding Spring. These rovers are located at the Meridiani Planum and Gale Crater, respectively.


Opportunity had the best views as was able to observe the comet under a very dark sky at around the beginning of martian morning twilight with the comet among the stars of the constellation of Cetus the Sea Monster. See images above.


Curiosity has a vastly more difficult job as from Gale Crater. The speed of the comet meant that the comet was visible only under a much brighter sky. But MSL Curiosity was still successful in observations. See image above.


Early images from HIRISE, MRO

Early images from High Resolution Imaging Science Experiment (HiRISE) camera on NASA’s Mars Reconnaissance Orbiter.



The High Resolution Imaging Science Experiment (HiRISE) camera on NASA's Mars Reconnaissance Orbiter captured views of comet C/2013 A1 Siding Spring while that visitor sped past Mars. The images are the highest-resolution views ever acquired of a comet coming from the Oort Cloud at the fringes of the solar system (or possible interstellar comet). The comet's nucleus turned out to be tiny, barely 400 meters wide. The two sets of images were taken nine minutes apart. Top set the actual nucleus, bottom set including the inner coma. Image via NASA/JPL-Caltech/University of Arizona. HiRISE.

The High Resolution Imaging Science Experiment (HiRISE) camera on NASA’s Mars Reconnaissance Orbiter captured views of comet C/2013 A1 Siding Spring while that visitor sped past Mars. The images are the highest-resolution views ever acquired of a comet coming from the Oort Cloud at the fringes of the solar system (or possible interstellar comet). The comet’s nucleus turned out to be tiny, barely 400 meters wide. The two sets of images were taken nine minutes apart. Top set the actual nucleus, bottom set including the inner coma. Image via NASA/JPL-Caltech/University of Arizona. HiRISE.



From the Indian Mangalyaan Mars Orbiter Mission Mars Color Camera. Via ISRO Mangalyaan Mars Orbiter Mission (MOM) spacecraft.

From the Indian Mangalyaan Mars Orbiter Mission (MOM) Mars Color Camera. Via ISRO.



Back in Mars orbit … the Mars orbiter Mars Reconnaissance Orbiter using the hugely powerful HiRISE (High Resolution Imaging Science Experiment) observed the comet prior to the spacecraft’s duck behind Mars. In this way, it actually imaged the nucleus of the comet, the very first time that a nucleus of an Oort Cloud comet has been seen.


The nucleus turned out to be smaller than expected. It turned out to have a maximum diameter of only 400 meters.


The observations using the HiRISE camera had been going on for several days leading up to closest approach and not only was the nucleus seen, but also the comet’s rotational period on its axis was detected to be nearly eight hours.


The shape of the nucleus using light curves as well as the images was determined to be roughly spherical.


Unlike other Kuiper Belt comets in short period orbits seen up close and even recently landed on which are dark as the carbon rich surface ices have become mostly dust, this comet was very bright, reflecting over 80% of the light that hits it. The CRISM (Compact Reconnaissance Imaging Spectrometer for Mars) also onboard the Mars Reconnaissance Orbiter imaged the comet in all 107 infrared channels and these confirm the elements that led to the temporary enrichment of the Martian atmosphere by detecting the same elements in the comet’s inner coma. CRISM could not image the nucleus as the field of view is wider.


The Indian Space Research Organisation Mangalyaan spacecraft also got some nice observations with the Mars Colour Camera monitoring the activity levels in the inner coma, before joining the NASA and ESA orbiters to duck behind Mars.


Bottom line: It took many weeks for the story of Comet Siding Spring’s close pass of Mars to emerge. Dazzling spacecraft imagery never came. Still, the images are fascinating, and the story of Comet Siding Spring’s exceedingly close pass of Mars might surprise you. See the images, and read the story, here.






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What’s the birthstone for December?


December has two birthstones, turquoise and zircon.


turquoise


Turquoise

Turquoise is considered by some to be a symbol of good fortune and success, believed to bring prosperity to its wearer.


In the language of chemists and geologists, turquoise is known as “copper aluminum phosphate.” Turquoise is often found in weathered igneous rock that contains copper minerals, where it crystallizes in veins and nodules. The gemstone usually develops in rock near water tables, located in semiarid and arid environments. The chemicals in turquoise come from adjacent rock, leached out by rain and groundwater.


Turquoise is a relatively soft gemstone, and can be easily scratched and broken. This porous opaque stone is easily discolored by oil and pigments, and changes color when it loses some of its water content. A sky blue shade in turquoise is due to the presence of copper, while iron gives it a greener tone. Ochre and brown-black veins in the stone occur during the formation of turquoise, caused by inclusions from nearby rock fragments or from oxide staining. The most valued variety of turquoise is an intense sky blue color, like the color of a robin’s egg. Hard, relatively non-porous compact stones have the best appearance because the stone can be finely polished. Pale and chalky varieties however are sometimes impregnated with oil, paraffin, liquid plastic and glycerin to give it a good polish.


This stone can be found in Armenia, Kazakhstan, China, Australia, Tibet, China, Mexico, Brazil, and Egypt. In Iran, where some of the best stones are found, turquoise is the national gem. The American southwest-Nevada, Arizona, Colorado, New Mexico and California-are primary producers of turquoise. Much of the specimens have a light color, and are porous and chalky-only about 10% is of gem quality.


Its name is believed to originate from the French phrase “pierre turquoise” meaning “Turkish stone” because turquoise was brought to Europe by Venetian merchants who first acquired it in Turkish bazaars. It is also considered by some as a love charm. When received as a gift, the turquoise symbolizes a pledge of affection. Shakespeare used this lore in “The Merchant of Venice’. In it, Leah gave a turquoise ring to Shylock when he was a bachelor, hoping it would win his affections so he would ask her to marry him. In Russia, the turquoise is popularly used in wedding rings.


Turquoise is one of the earliest known stones to be used in jewelry. Pharaohs of Early Egypt wore them. A tomb excavated in 1900 contained the mummified remains of Queen Zer, who ruled in 5500 B.C.; found on her arm were four magnificent turquoise bracelets. Beads dating back to 5000 B.C. have been found in Mesopotamia (now Iraq). In Iran, turquoise was the national gemstone, adorning thrones, daggers, sword hilts, horse trappings, bowls, cups, and ornamental objects. Senior officials wore turquoise seals decorated with pearls and rubies. In the 7th century A.D., turquoise pieces inscribed with passages from the Koran and Persian proverbs were valued amulets. It was used as jewelry in ancient Siberia, around the Fifth and Sixth century B.C. During the Middle Ages, they were popularly used as decoration of vessels and covers for manuscripts. And it was again popular as jewelry during the Renaissance. It has also been found in ancient burial sites in Argentina, Bolivia, Chile, Peru, Mexico and Central America. The Incas crafted beads and figurines out of it, and the Aztecs made pendants and ritual masks.


Turquoise has a rich history in the American southwest. Native Americans have been using this gemstone to create magnificent jewelry and ornamental pieces for the past several thousand years. It was called “Chal-cui-hui-tal”, meaning “the highest and most valued thing in the world”. The Zuni, Hopi, Pueblo and Navajo Indians made magnificent necklaces, ear pendants and rings. The blue in turquoise symbolized the Heavens, and green symbolized the Earth. The stones were used by medicine men to work charms. The Navajo believed that turquoise pieces, thrown into a river while offering a prayer to the rain god, would bring much needed rain. Apache lore held that a turquoise attached to a bow or gun would ensure accurate aim.


There are many superstitions associated with the turquoise. In the Third century, it was believed to protect its owner from falling off a horse. A change in color revealed the infidelity of a wife. Twelfth century Arabian writings said “The turquoise shines when the air is pure and becomes pale when it is dim.” They also believed that its color changed with the weather. Persians said that the reflection of the new moon on a turquoise stone brought good luck, and guarded against evil. It was said to have a healing effect on the eye-merely looking at it strengthened the eye, while placing it on an inflamed eye brought a cure. A 15th century philosopher attributed its change of color to its ability to attract poisons. It was a barometer of its user’s health, turning pale in illness and losing color in death, yet regaining its original beauty in the hands of a new and healthy owner.


Photo credit:

Photo credit: Rob Lavinsky



Zircon

The alternate birthstone for December is the zircon.


Zircon, in its unchanged natural form appears colorless to pale yellow, or green. These colors are caused by minute quantities of thorium and uranium that replaces zircon in the crystal structure. But over the vast spans of geologic time, other forces work within the zirconium silicate crystals. The uranium and thorium inclusions emit radiation that alters the original crystal structure. A glass-like material is formed, with colors of red to brown, orange and yellow.


The mineral zircon, known as zirconium silicate, is commonly found as a minor constituent in igneous rock such as granites and some kinds of metamorphic rock. Gem quality zircon stones are usually rare. These gemstones are formed mainly in pegmatites (coarse-grained igneous rock) and in fissures. But due to weathering of the gem-bearing rocks, most zircons are found in alluvial and beach deposits.


A new blue color for zircon, called “starlight blue,” was created by heating golden brown or yellow zircon in the 1920s. From Gems and Crystals by Anna S. Sofianides and George E. Harlow:


In the 1920s, a new blue gemstone suddenly appeared in the market. Endowed with spectacular brilliance, it was an immediate hit.


The gems were zircons, normally brown to green – but not blue. George F. Kunz, the legendary Tiffany gemologist, immediately suspected trickery; not only were there extraordinary stones available in abundance but available all over the world! Upon Kunz’s behest, a colleague made inquiries during a trip to Siam (Thailand) and learned that a large deposit of unattractive brown zircon had stimulated color- improvement experimentation by local entrepreneurs. Heating in an oxygen-free environment had turned the drab material into “new” blue stones, which were sent to outlets worldwide. When the deception was revealed, the market simply accepted the information, and the demand for the new gems continued unabated.


The most prized zircon is the red gemstone, which is rare. The pure intense blue and sky blue varieties are also highly valued, while the colorless, orange, brown and yellow stones are less expensive. Many zircons on the market are heat treated, and sold as blue, golden brown or colorless stones. Colorless zircons are the best imitators of diamonds, in appearance only, with a brilliant fire that is almost as dazzling as the real thing. However, the resemblance is superficial. Zircon is a brittle stone, easily broken with a well-placed knock, due to internal stresses in the crystal caused by radiation damage and heat treatment. But despite its frail disposition, the stone is still highly valued because of its stunning beauty.


Major sources of zircon are the Chanthaburi area of Thailand, the Palin area of Cambodia and the southern part of Vietnam near the Cambodian border, where gemstones are found in alluvial deposits. Bangkok is well-known as a major center for processing zircons, where everything from heat treatment, cutting and marketing is carried out. Another important source is Sri Lanka, well known for a colorless variety of zircon called the ‘Matura diamond’. The gemstones are also found in Burma, France, Norway, Australia and Canada.


Its name is probably derived from the Arabic words “zar” and “gun”, meaning “gold” and “color”. The gemstone is found in a wide range of colors, and possess great brilliance, fire and clarity.

The hyacinth and jacinth, reddish-brown and orange-red varieties of zircon, were a favorite stone of ancient Arabs and was even mentioned in the famed book, ‘Arabian Nights’.


Green zircon was among the stones of the ‘Kalpa Tree’ of the Hindu religion, where it represented the tree’s foliage. This tree was a symbolic offering to the gods. Hindu poets of the 19th century described it as a glowing ensemble of precious stones that also included sapphires, diamonds and topaz.


Zircon was regarded as the amulet for travelers in the Eleventh century, protecting them from disease, injury, and insomnia, as well as assuring a cordial welcome wherever their travels would take them. The gem was also believed to hold magic powers to fight evil spirits. During the Fourteenth century, zircon was popular as a safeguard against the Black Death, the great plague that wiped out one quarter of the population of Europe. The stone was believed to possess healing powers. It was prescribed to insomniacs to induce sleep, used as an antidote against poison, and as an aid to digestion.


December’s birthstones are turquoise and zircon. Find out about the birthstones for all the months of the year:

January birthstone

February birthstone

March birthstone

April birthstone

May birthstone

June birthstone

July birthstone

August birthstone

September birthstone

October birthstone

November birthstone

December birthstone






from EarthSky http://ift.tt/1i0E2Cp

December has two birthstones, turquoise and zircon.


turquoise


Turquoise

Turquoise is considered by some to be a symbol of good fortune and success, believed to bring prosperity to its wearer.


In the language of chemists and geologists, turquoise is known as “copper aluminum phosphate.” Turquoise is often found in weathered igneous rock that contains copper minerals, where it crystallizes in veins and nodules. The gemstone usually develops in rock near water tables, located in semiarid and arid environments. The chemicals in turquoise come from adjacent rock, leached out by rain and groundwater.


Turquoise is a relatively soft gemstone, and can be easily scratched and broken. This porous opaque stone is easily discolored by oil and pigments, and changes color when it loses some of its water content. A sky blue shade in turquoise is due to the presence of copper, while iron gives it a greener tone. Ochre and brown-black veins in the stone occur during the formation of turquoise, caused by inclusions from nearby rock fragments or from oxide staining. The most valued variety of turquoise is an intense sky blue color, like the color of a robin’s egg. Hard, relatively non-porous compact stones have the best appearance because the stone can be finely polished. Pale and chalky varieties however are sometimes impregnated with oil, paraffin, liquid plastic and glycerin to give it a good polish.


This stone can be found in Armenia, Kazakhstan, China, Australia, Tibet, China, Mexico, Brazil, and Egypt. In Iran, where some of the best stones are found, turquoise is the national gem. The American southwest-Nevada, Arizona, Colorado, New Mexico and California-are primary producers of turquoise. Much of the specimens have a light color, and are porous and chalky-only about 10% is of gem quality.


Its name is believed to originate from the French phrase “pierre turquoise” meaning “Turkish stone” because turquoise was brought to Europe by Venetian merchants who first acquired it in Turkish bazaars. It is also considered by some as a love charm. When received as a gift, the turquoise symbolizes a pledge of affection. Shakespeare used this lore in “The Merchant of Venice’. In it, Leah gave a turquoise ring to Shylock when he was a bachelor, hoping it would win his affections so he would ask her to marry him. In Russia, the turquoise is popularly used in wedding rings.


Turquoise is one of the earliest known stones to be used in jewelry. Pharaohs of Early Egypt wore them. A tomb excavated in 1900 contained the mummified remains of Queen Zer, who ruled in 5500 B.C.; found on her arm were four magnificent turquoise bracelets. Beads dating back to 5000 B.C. have been found in Mesopotamia (now Iraq). In Iran, turquoise was the national gemstone, adorning thrones, daggers, sword hilts, horse trappings, bowls, cups, and ornamental objects. Senior officials wore turquoise seals decorated with pearls and rubies. In the 7th century A.D., turquoise pieces inscribed with passages from the Koran and Persian proverbs were valued amulets. It was used as jewelry in ancient Siberia, around the Fifth and Sixth century B.C. During the Middle Ages, they were popularly used as decoration of vessels and covers for manuscripts. And it was again popular as jewelry during the Renaissance. It has also been found in ancient burial sites in Argentina, Bolivia, Chile, Peru, Mexico and Central America. The Incas crafted beads and figurines out of it, and the Aztecs made pendants and ritual masks.


Turquoise has a rich history in the American southwest. Native Americans have been using this gemstone to create magnificent jewelry and ornamental pieces for the past several thousand years. It was called “Chal-cui-hui-tal”, meaning “the highest and most valued thing in the world”. The Zuni, Hopi, Pueblo and Navajo Indians made magnificent necklaces, ear pendants and rings. The blue in turquoise symbolized the Heavens, and green symbolized the Earth. The stones were used by medicine men to work charms. The Navajo believed that turquoise pieces, thrown into a river while offering a prayer to the rain god, would bring much needed rain. Apache lore held that a turquoise attached to a bow or gun would ensure accurate aim.


There are many superstitions associated with the turquoise. In the Third century, it was believed to protect its owner from falling off a horse. A change in color revealed the infidelity of a wife. Twelfth century Arabian writings said “The turquoise shines when the air is pure and becomes pale when it is dim.” They also believed that its color changed with the weather. Persians said that the reflection of the new moon on a turquoise stone brought good luck, and guarded against evil. It was said to have a healing effect on the eye-merely looking at it strengthened the eye, while placing it on an inflamed eye brought a cure. A 15th century philosopher attributed its change of color to its ability to attract poisons. It was a barometer of its user’s health, turning pale in illness and losing color in death, yet regaining its original beauty in the hands of a new and healthy owner.


Photo credit:

Photo credit: Rob Lavinsky



Zircon

The alternate birthstone for December is the zircon.


Zircon, in its unchanged natural form appears colorless to pale yellow, or green. These colors are caused by minute quantities of thorium and uranium that replaces zircon in the crystal structure. But over the vast spans of geologic time, other forces work within the zirconium silicate crystals. The uranium and thorium inclusions emit radiation that alters the original crystal structure. A glass-like material is formed, with colors of red to brown, orange and yellow.


The mineral zircon, known as zirconium silicate, is commonly found as a minor constituent in igneous rock such as granites and some kinds of metamorphic rock. Gem quality zircon stones are usually rare. These gemstones are formed mainly in pegmatites (coarse-grained igneous rock) and in fissures. But due to weathering of the gem-bearing rocks, most zircons are found in alluvial and beach deposits.


A new blue color for zircon, called “starlight blue,” was created by heating golden brown or yellow zircon in the 1920s. From Gems and Crystals by Anna S. Sofianides and George E. Harlow:


In the 1920s, a new blue gemstone suddenly appeared in the market. Endowed with spectacular brilliance, it was an immediate hit.


The gems were zircons, normally brown to green – but not blue. George F. Kunz, the legendary Tiffany gemologist, immediately suspected trickery; not only were there extraordinary stones available in abundance but available all over the world! Upon Kunz’s behest, a colleague made inquiries during a trip to Siam (Thailand) and learned that a large deposit of unattractive brown zircon had stimulated color- improvement experimentation by local entrepreneurs. Heating in an oxygen-free environment had turned the drab material into “new” blue stones, which were sent to outlets worldwide. When the deception was revealed, the market simply accepted the information, and the demand for the new gems continued unabated.


The most prized zircon is the red gemstone, which is rare. The pure intense blue and sky blue varieties are also highly valued, while the colorless, orange, brown and yellow stones are less expensive. Many zircons on the market are heat treated, and sold as blue, golden brown or colorless stones. Colorless zircons are the best imitators of diamonds, in appearance only, with a brilliant fire that is almost as dazzling as the real thing. However, the resemblance is superficial. Zircon is a brittle stone, easily broken with a well-placed knock, due to internal stresses in the crystal caused by radiation damage and heat treatment. But despite its frail disposition, the stone is still highly valued because of its stunning beauty.


Major sources of zircon are the Chanthaburi area of Thailand, the Palin area of Cambodia and the southern part of Vietnam near the Cambodian border, where gemstones are found in alluvial deposits. Bangkok is well-known as a major center for processing zircons, where everything from heat treatment, cutting and marketing is carried out. Another important source is Sri Lanka, well known for a colorless variety of zircon called the ‘Matura diamond’. The gemstones are also found in Burma, France, Norway, Australia and Canada.


Its name is probably derived from the Arabic words “zar” and “gun”, meaning “gold” and “color”. The gemstone is found in a wide range of colors, and possess great brilliance, fire and clarity.

The hyacinth and jacinth, reddish-brown and orange-red varieties of zircon, were a favorite stone of ancient Arabs and was even mentioned in the famed book, ‘Arabian Nights’.


Green zircon was among the stones of the ‘Kalpa Tree’ of the Hindu religion, where it represented the tree’s foliage. This tree was a symbolic offering to the gods. Hindu poets of the 19th century described it as a glowing ensemble of precious stones that also included sapphires, diamonds and topaz.


Zircon was regarded as the amulet for travelers in the Eleventh century, protecting them from disease, injury, and insomnia, as well as assuring a cordial welcome wherever their travels would take them. The gem was also believed to hold magic powers to fight evil spirits. During the Fourteenth century, zircon was popular as a safeguard against the Black Death, the great plague that wiped out one quarter of the population of Europe. The stone was believed to possess healing powers. It was prescribed to insomniacs to induce sleep, used as an antidote against poison, and as an aid to digestion.


December’s birthstones are turquoise and zircon. Find out about the birthstones for all the months of the year:

January birthstone

February birthstone

March birthstone

April birthstone

May birthstone

June birthstone

July birthstone

August birthstone

September birthstone

October birthstone

November birthstone

December birthstone






from EarthSky http://ift.tt/1i0E2Cp

Night-shining cloud season begins in Antarctica


Noctilucent clouds over Antarctica as seen by NASA's AIM spacecraft. Image via Spaceweather.com

Noctilucent clouds over Antarctica as seen in November, 2014 by NASA’s AIM spacecraft.



We spotted this cool image at the great website Spaceweather.com on Thanksgiving weekend (November 27-30, 2014). The photo shows that NASA’s AIM spacecraft detected noctilucent clouds – sometimes called night-shining clouds – over Antarctica this November. That’s right on schedule. It’s summertime in the Southern Hemisphere now, and these clouds are typically seen at high latitudes in the summer. Their apparition marks the beginning of the 2014-2015 season in Earth’s Southern Hemisphere for these silver-blue clouds.


The secrets of night-shining clouds






from EarthSky http://ift.tt/1rL4jjS

Noctilucent clouds over Antarctica as seen by NASA's AIM spacecraft. Image via Spaceweather.com

Noctilucent clouds over Antarctica as seen in November, 2014 by NASA’s AIM spacecraft.



We spotted this cool image at the great website Spaceweather.com on Thanksgiving weekend (November 27-30, 2014). The photo shows that NASA’s AIM spacecraft detected noctilucent clouds – sometimes called night-shining clouds – over Antarctica this November. That’s right on schedule. It’s summertime in the Southern Hemisphere now, and these clouds are typically seen at high latitudes in the summer. Their apparition marks the beginning of the 2014-2015 season in Earth’s Southern Hemisphere for these silver-blue clouds.


The secrets of night-shining clouds






from EarthSky http://ift.tt/1rL4jjS

Cassiopeia high up in northern sky on December evenings


Tonight, let’s turn toward the northern sky and its famous constellation Cassiopeia the Queen. On December evenings, this constellation appears high in the northeast at nightfall as seen from latitudes in the Northern Hemisphere. Cassiopeia can also be seen from tropical and subtropical latitudes in the Southern Hemisphere, appearing low in the north at nightfall and early evening.


This constellation won’t look all that mighty in lunar glare on December 1, 2014. The waxing moon will wash the skies over the coming week. But starting on December 10, 2014 or so, moonless evenings will showcase Cassiopeia the Queen in all her starry splendor.


In early December, Cassiopeia swings directly over Polaris, the North Star, at around 8 p.m. local clock time. (You can’t see Polaris from temperate latitudes in the Southern Hemisphere because it’s below the horizon in that part of the world.) Cassiopeia – sometimes called The Lady of the Chair – is famous for having the shape of a telltale W or M. You will find this configuration of stars as a starlit M whenever she reigns highest in the sky, hovering over Polaris.


Because Cassiopeia returns to the same spot in the sky about four minutes earlier with each passing day, look for Cassiopeia to be at her high point over Polaris, the North Star, at about 7 p.m. local time in mid-December and 6 p.m. local time by the month’s end.


EarthSky’s lunar calendar: the perfect gift for any sky lover! On sale 50% off on Cyber Monday



The constellation Cassiopeia has the distinct shape of a W, or M, depending on the time of night you see it. This nice photo from EarthSky Facebook friend Mike O’Neal. Thank you, Mike! Click here to expand image.



From a dark country sky, you’ll see that Cassiopeia sits atop the luminous band of stars known as the Milky Way. Arching from horizon to horizon, this soft-glowing boulevard of stars represents an edgewise view into the flat disk of our own Milky Way galaxy. When Cassiopeia climbs above Polaris, the North Star, on these dark winter evenings, note that this hazy belt of stars that we call the Milky Way extends through the Northern Cross in the western sky and past Orion the Hunter in your eastern sky.


This Milky Way is fainter than the glorious broad band of the Milky Way we see in a Northern Hemisphere summer or Southern Hemisphere winter. That’s because in we are looking toward the star-rich center of the galaxy at the opposite side of the year. On these December nights, we are looking toward the galaxy’s outer edge, not the center.



The famous Double Cluster in the constellation Perseus is not far from Cassiopeia on the sky’s dome. This chart shows how to use the W or M shape of Cassiopeia to find the Double Cluster. To appreciate them fully, look with your binoculars in a dark sky! More about the Double Cluster here.



As the night marches onward, Cassiopeia – like the hour hand of a clock – circles around the North Star, though in a counter-clockwise direction.


By dawn, you will find Cassiopeia has swept down in the northwest – to a point below the North Star. At that time, if you’re at a southerly latitude, you might not be able to see Cassiopeia. The constellation might be below your horizon. But if you’re located at a latitude like those in the northern U.S., you will still see Cassiopeia sitting on or near your northern horizon.


Look northward on these cold December evenings to see the Queen Cassiopeia sitting proudly on her throne, atop the northern terminus of the Milky Way!


Bottom line: Watch for the constellation Cassiopeia the Queen on these December evenings. It is shaped like an M or W. You’ll find Cassiopeia in the northeast at nightfall, sweeping higher in the north as evening progresses.


A planisphere is virtually indispensable for beginning stargazers. Order your EarthSky Planisphere today!






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Tonight, let’s turn toward the northern sky and its famous constellation Cassiopeia the Queen. On December evenings, this constellation appears high in the northeast at nightfall as seen from latitudes in the Northern Hemisphere. Cassiopeia can also be seen from tropical and subtropical latitudes in the Southern Hemisphere, appearing low in the north at nightfall and early evening.


This constellation won’t look all that mighty in lunar glare on December 1, 2014. The waxing moon will wash the skies over the coming week. But starting on December 10, 2014 or so, moonless evenings will showcase Cassiopeia the Queen in all her starry splendor.


In early December, Cassiopeia swings directly over Polaris, the North Star, at around 8 p.m. local clock time. (You can’t see Polaris from temperate latitudes in the Southern Hemisphere because it’s below the horizon in that part of the world.) Cassiopeia – sometimes called The Lady of the Chair – is famous for having the shape of a telltale W or M. You will find this configuration of stars as a starlit M whenever she reigns highest in the sky, hovering over Polaris.


Because Cassiopeia returns to the same spot in the sky about four minutes earlier with each passing day, look for Cassiopeia to be at her high point over Polaris, the North Star, at about 7 p.m. local time in mid-December and 6 p.m. local time by the month’s end.


EarthSky’s lunar calendar: the perfect gift for any sky lover! On sale 50% off on Cyber Monday



The constellation Cassiopeia has the distinct shape of a W, or M, depending on the time of night you see it. This nice photo from EarthSky Facebook friend Mike O’Neal. Thank you, Mike! Click here to expand image.



From a dark country sky, you’ll see that Cassiopeia sits atop the luminous band of stars known as the Milky Way. Arching from horizon to horizon, this soft-glowing boulevard of stars represents an edgewise view into the flat disk of our own Milky Way galaxy. When Cassiopeia climbs above Polaris, the North Star, on these dark winter evenings, note that this hazy belt of stars that we call the Milky Way extends through the Northern Cross in the western sky and past Orion the Hunter in your eastern sky.


This Milky Way is fainter than the glorious broad band of the Milky Way we see in a Northern Hemisphere summer or Southern Hemisphere winter. That’s because in we are looking toward the star-rich center of the galaxy at the opposite side of the year. On these December nights, we are looking toward the galaxy’s outer edge, not the center.



The famous Double Cluster in the constellation Perseus is not far from Cassiopeia on the sky’s dome. This chart shows how to use the W or M shape of Cassiopeia to find the Double Cluster. To appreciate them fully, look with your binoculars in a dark sky! More about the Double Cluster here.



As the night marches onward, Cassiopeia – like the hour hand of a clock – circles around the North Star, though in a counter-clockwise direction.


By dawn, you will find Cassiopeia has swept down in the northwest – to a point below the North Star. At that time, if you’re at a southerly latitude, you might not be able to see Cassiopeia. The constellation might be below your horizon. But if you’re located at a latitude like those in the northern U.S., you will still see Cassiopeia sitting on or near your northern horizon.


Look northward on these cold December evenings to see the Queen Cassiopeia sitting proudly on her throne, atop the northern terminus of the Milky Way!


Bottom line: Watch for the constellation Cassiopeia the Queen on these December evenings. It is shaped like an M or W. You’ll find Cassiopeia in the northeast at nightfall, sweeping higher in the north as evening progresses.


A planisphere is virtually indispensable for beginning stargazers. Order your EarthSky Planisphere today!






from EarthSky http://ift.tt/1wa3Itg