Blog Archive
Wednesday, April 16, 2014
Unexpected Teleconnections in Noctilucent Clouds
Thursday, December 26, 2013
Thursday, September 26, 2013
NASA: Noctilucent Clouds Get an Early Start
News flash: This year, NLCs are getting an early start. NASA's AIM spacecraft, which is orbiting Earth on a mission to study noctilucent clouds, started seeing them on May 13th.
"The 2013 season is remarkable because it started in the northern hemisphere a week earlier than any other season that AIM has observed," reports Cora Randall of the Laboratory for Atmospheric and Space Physics at the University of Colorado. "This is quite possibly earlier than ever before."
The early start is extra-puzzling because of the solar cycle. Researchers have long known that NLCs tend to peak during solar minimum and bottom-out during solar maximum—a fairly strong anti-correlation. "If anything, we would have expected a later start this year because the solar cycle is near its maximum," Randall says. "So much for expectations."
For sky watchers, this means it's time to pay attention to the sunset sky, where NLCs are most often seen. An early start could herald brighter clouds and wider visibility than ever before.
Noctilucent clouds were first noticed in the mid-19th century after the eruption of super-volcano Krakatoa. Volcanic ash spread through the atmosphere, painting vivid sunsets that mesmerized observers all around the world. That was when the NLCs appeared. At first people thought they must be some side-effect of the volcano, but long after Krakatoa's ash settled the noctilucent clouds remained.
"They've been with us ever since," says Randall. "Not only that, they are spreading."
When AIM was launched in 2007, the underlying cause of NLCs was still unknown. Researchers knew they formed 83 km above Earth's surface where the atmosphere meets the vacuum of space--but that's about all. AIM quickly filled in the gaps.
"It turns out that meteoroids play an important role in the formation of NLCs," explains Hampton University Professor James Russell, the principal investigator of AIM. "Specks of debris from disintegrating meteors act as nucleating points where water molecules can gather and crystallize."
Back in the 19th century, NLCs were confined to high latitudes. You had to go to Alaska or Scandinavia to see them. In recent years, however, they have been sighted as far south as Utah, Colorado, and Nebraska. Some researchers believe that the spread of NLCs is a sign of climate change.
One of the greenhouse gases that has become more abundant in Earth's atmosphere since the 19th century is methane. "When methane makes its way into the upper atmosphere, it is oxidized by a complex series of reactions to form water vapor," says Russell. "This extra water vapor is then available to grow ice crystals for NLCs."
The early start of the 2013 season appears to be caused by a change in atmospheric “teleconnections.”
“Half-a-world away from where the northern NLCs are forming, strong winds in the southern stratosphere are altering global circulation patterns,” explains Randall. "This year more water vapor is being pushed into the high atmosphere where NLCs love to form, and the air there is getting colder."
"All of this has come as an interesting surprise for us," notes Russell. "When we launched AIM, our interest was in the clouds themselves. But now NLCs are teaching us about connections between different layers of the atmosphere that operate over great distances. Our ability to study these connections will surely lead to new understanding about how our atmosphere works."
Credits: Author: Dr. Tony Phillips | Production editor: Dr. Tony Phillips | Credit: Science@NASA
http://science.nasa.gov/science-news/science-at-nasa/2013/07jun_nlcs/
Saturday, August 25, 2012
Noctilucent clouds caused by methane?
http://www.youtube.com/watch?v=Qzs9ZOsjF-c
Tuesday, May 24, 2011
For a good articles on noctilucent clouds, please see the links below to the BBC and other sites
- ►
BBC - Radio 4 - So You Want To Be A Scientist? - The Experiments ...
Skip to content; Skip to local navigation; Skip to bbc.co.uk navigation ... Noctilucent CloudSpotting Guide? John Rowlands explains what they are and how ...
www.bbc.co.uk/...to.../noctilucent-clouds/ - Cached - Similar - Add to iGoogle BBC: Noctilucent cloud experiment | Facebook
BBC: Noctilucent cloud experiment - I am John Rowlands, one of the four finalists for BBCRadio 4's 'So You Want to be a Scientist?
www.facebook.com/BBC.cloud.experiment - CachedBBC: Noctilucent cloud experiment - Wall | Facebook
Findings of the Noctilucent Cloud Experiment Finalist: John Rowlands The ...
www.facebook.com/BBC.cloud.experiment?sk=wall - CachedNoctilucent Clouds over North Wales (from BBC News) - Network54
29 Sep 2010 ... Noctilucent Clouds over North Wales (from BBC News) ... Here, John Rowlands, one of four finalists in the BBC's search for the Amateur ...
www.network54.com/.../Noctilucent+Clouds+over+North+Wales+(from+BBC+News) -Cached Real Info Portal » Science enthusiasts chase dream in BBC competition
25 Apr 2010 ... John Rowlands, 41, an amateur astronomer from North Wales; he wants to research the frequency of noctilucent clouds, luminous layers of ice ...
realinfoportal.com/?p=8785 - CachedScotweather (nlc2010)
10 Jun 2010 ... Photograph by John Rowlands. NLC 13th-14th June 2010 - BBC:Noctilucent cloud experiment. Originating website : www.facebook.com/#! ...
www.scotweather.co.uk/?page=nlc2010
Tuesday, July 20, 2010
Noctilucent clouds forecast to form every 5 days from July 19 between latitudes 50° and 60° N
Unlocking secrets of 'eerie' clouds
BBC, July 19, 2010
An amateur scientist has compiled a forecast to enable observers to view a mysterious type of cloud.
The project is part of a series for BBC Radio inviting members of the public to submit their ideas for a scientific research project.
The eerie, "noctilucent clouds" clouds form at the edge of space, far higher in the atmosphere than more familiar clouds.
See rest of article at link:
http://www.bbc.co.uk/news/science-environment-10666764
Thursday, October 1, 2009
Night time artificial cloud experiment conducted to study noctilucent clouds
A rocket experiment that may shed light on the highest clouds in the Earth's atmosphere was conducted September 19 from NASA's Wallops Flight Facility in Virginia.
The Charged Aerosol Release Experiment (CARE) was conducted by the Naval Research Laboratory and the Department of Defense Space Test Program using a NASA four-stage Black Brant XII suborbital sounding rocket. Using ground based instruments and the STP/NRL STPSat-1 spacecraft, scientists are studying an artificial noctilucent cloud formed by the exhaust particles of the rocket's fourth stage at about 173 miles altitude.
Ground based cameras and radars were based at various observation stations along the Atlantic coast and in Bermuda. Because of the optical observations, the launch required clear skies not only at Wallops but also at the multiple observation stations.
The Spatial Heterodyne IMager for MEsospheric Radicals instrument on the STPSat-1 spacecraft will track the CARE dust cloud for days or even months. The SHIMMER instrument has previously viewed natural noctilucent clouds for the past two years. The CARE will be the first space viewing of an artificial noctilucent cloud.
Data collected during the experiment will provide insight into the formation, evolution, and properties of noctilucent clouds, which are typically observed naturally at high latitudes. In addition to the understanding of noctilucent clouds, scientists will use the experiment to validate and develop simulation models that predict the distribution of dust particles from rocket motors in the upper atmosphere.
Natural noctilucent clouds, also known as polar mesospheric clouds, are found in the upper atmosphere as spectacular displays that are most easily seen just after sunset. The clouds are the highest clouds in Earth's atmosphere, located in the mesosphere around 50 miles altitude.
They are normally too faint to be seen with the naked eye and are visible only when illuminated by sunlight from below the horizon while the Earth's surface is in darkness.
A team from government agencies and universities, led by the Naval Research Laboratory, is conducting the experiment. In addition to the Naval Research Laboratory, participants include the DoD STP, NASA, University of Michigan, Air Force Research Laboratory, Clemson University, Stanford University, University of Colorado, Penn State University and Massachusetts Institute of Technology/Haystack Observatory.
Source: US Naval Research Laboratory
Link to article: http://environmentalresearchweb.org/cws/article/yournews/40548
Monday, July 20, 2009
Noctilucent clouds: Mysterious, glowing clouds appear across America’s night skies
Mysterious, glowing clouds appear across America’s night skies
Mysterious, glowing clouds previously seen almost exclusively in Earth’s polar regions have appeared in the skies over the United States and Europe over the past several days.
Photographers and other sky watchers in Omaha, Paris, Seattle, and other locations have run outside to capture images of what scientists call noctilucent (”night shining”) clouds. Formed by ice literally at the boundary where the earth’s atmosphere meets space 50 miles up, they shine because they are so high that they remain lit by the sun even after our star is below the horizon.
The clouds might be beautiful, but they could portend global changes caused by global warming. Noctilucent clouds are a fundamentally new phenomenon in the temperate mid-latitude sky, and it’s not clear why they’ve migrated down from the poles. Or why, over the last 25 years, more of them are appearing in the polar regions, too, and shining more brightly.
“That’s a real concern and question,” said James Russell, an atmospheric scientist at Hampton University and the principal investigator of an ongoing NASA satellite mission to study the clouds. “Why are they getting more numerous? Why are they getting brighter? Why are they appearing at lower latitudes?”
Nobody knows for sure, but most of the answers seem to point to human-caused global atmospheric change.
BLOGGER'S NOTE: This marvelous photo of the Eiffel Tower on Bastille Day with exploding fireworks and noctilucent clouds was taken by flickr user Breff. Wired Science ripped it off his flickr without asking permission, which is how it came to be posted here, because I ripped off Wired Science without asking their permission. It is not at all clear to me that those are noctilucent clouds in the background, but hey, this is a fantastic photo, any way you look at it. The original can be found at: http://www.flickr.com/photos/breff/3722358660/in/set-72157621611065989/
http://www.flickr.com/photos/breff/3721417815/in/set-72157621611065989/
Noctilucent clouds were first observed in 1885 by an amateur astronomer. No observations of anything resembling noctilucent clouds before that time has ever been found. There is no lack of observations of other phenomena in the sky, so atmospheric scientists are fairly sure that the phenomenon is recent, although they are not sure why.
Over the last 125 years, scientists have learned how the clouds form. At temperatures around minus 230 °F, dust blowing up from below or falling into the atmosphere from space provides a resting spot for water vapor to condense and freeze. Right now, during the northern hemisphere’s summer, the atmosphere is heating up and expanding. At the outside edge of the atmosphere, that actually means that it’s getting colder because it’s pushed farther out into space.
It’s not hard to see how a warming Earth could change those dynamics: as the globe heats up, the top of the atmosphere should get colder.
“The prevailing theory and most plausible explanation is that CO2 buildup, at 50 miles above the surface, would cause the temperature decrease,” Russell said. He cautioned, however, that temperature observations remain inconclusive.
The global changes that appear to be reshaping noctilucent cloud distribution could be much more complex, said Vincent Wickwar, an atmospheric scientist at Utah State University whose team was first to report a mid-latitude noctilucent cloud in 2002. Temperature does not explain their observations from around 42 degrees latitude.
“To get the noctilucent clouds you need temperatures that are about 20 degrees Kelvin colder than what we see on average up there,” Wickwar said. “We may have effects from CO2 or methane but it would only be a degree or a fraction of a degree.”
Instead, Wickwar’s explanation is that a vertical atmospheric wave discovered in their LIDAR data lowered the temperature in the region above their radar installation near Logan, Utah. But then you have to ask, he noted, “Where’d the wave come from?”
They don’t really have an answer yet. Other facilities around the world with similar LIDAR capacity haven’t reported similar waves. And the Rocky Mountains, near Wickwar’s lab, can cause atmospheric waves, which could be a special feature of his location.
Other theories abound to explain the observed changes in the clouds. Human-caused increases in atmospheric methane, which oxidizes into carbon dioxide and water vapor, could be providing more water for ice in the stratosphere. Increases in the amount of cosmic or terrestrial dust in the stratosphere could also increase the number of brightly shining clouds.
Two years into Russell’s NASA project, more questions exist than firm answers. They will have at least three and a half more years, though, to gather good data on upper atmospheric dynamics.
The recent observations of noctilucent clouds at all kinds of latitudes provide an extra impetus to understand what is going on up there. Changes are occurring faster than scientists can understand their causes.
“I suspect, as many of us feel, that it is global change, but I fear we don’t understand it,” Wickwar said. “It’s not as simple as a temperature change.”
Image: 1. The sky over Omaha on July 14th, 2009, snapped by Mike Hollingshead at Extreme Instability 2. Noctilucent clouds lit up the Paris sky behind the Bastille Day fireworks show at the Eiffel Tower. Captured by flickr user, breff 3. A rendering of the noctilucent clouds created from data obtained by Russel’s NASA project, AIM. Video: NASA.
WiSci 2.0: Alexis Madrigal’s Twitter, Google Reader feed, and book site for The History of Our Future; Wired Science on Facebook.
Link to article: http://www.wired.com/wiredscience/2009/07/nightclouds/
-
Breff said... Hello,
You've used one of my photos in your blog. This photo is protected under a Creative Commons Attribution-Noncommercial-No Derivative Works 2.0 Generic license. You have cropped the photo (thus removing my logo) which violates the licence. The photo doesn't link back to my site (because you copy-pasted it from WIRED). And a tiny link at the bottom of the page is definitely pushing the definition of Attribution. If you wish to continue using this photo, please use the uncropped version and link it directly to my site using the 'blog this' link creator on top of the photo in flickr (http://www.flickr.com/photos/breff/3722358660/in/set-72157621611065989/).
If you're not willing to respect the licence please stop using the photo.
Thanks and have a nice day.
BreffJuly 20, 2009 5:49 PM
-
Tenney said... Dear Breff,
I did not crop your photo. Somehow it occurred when I did a screen capture from the Wired article. I am myself very surprised that this occurred, and am only seeing it because you pointed it out to me.
Please note that this blog of mine has no commercial purpose whatsoever. I am only trying to disseminate as much information as possible concerning climate change.
I am fully aware that I violate copyright all the time.
But I would never crop out someone's watermark -- I used to be a photographer myself many years ago.
I will see if I can get the entire image onto this post, ok?July 21, 2009 2:00 PM
- N.B. It seems the cropping was caused by the allowable limit of text width on the pages of the blog.
Tuesday, June 2, 2009
Mysterious night-shining (noctilucent) clouds may peak this year
Mysterious night-shining clouds may peak this year
by Rachel Courtland, New Scientist, June 2, 2009
Sky watchers in the northern hemisphere have snapped the first images of this year's noctilucent clouds – silvery blue structures that are the highest clouds to form in Earth's atmosphere. This season's crop of clouds could be the biggest in years due to the lull in the sun's activity.

NASA's AIM spacecraft snapped this picture of noctilucent clouds from a perch above the north pole in June 2008. Because solar activity is low and the upper atmosphere is relatively cool, the clouds should be about twice as abundant this year as they are when the sun is at the peak of its activity (Image: LASP).
"Noctilucent," or night-shining, clouds float dozens of kilometres higher than other clouds, at an altitude of about 80 km. Because of their height, they can be seen glowing before sunrise or after sunset as the sun illuminates them from below the horizon.
The clouds were first seen above polar regions in 1885, suggesting they may have been caused by the eruption of Krakatoa two years before. But in recent years the clouds have spread to latitudes as low as 40°, while also growing in number and getting brighter. The reason for the clouds' spread is unclear, but some suspect it could be due to an increase in greenhouse gases. That's because the gases actually cause Earth's upper atmosphere to cool, and the clouds need cold temperatures to form.
Although the average number of noctilucent clouds has been increasing in recent decades, their abundance also seems to rise and fall with the sun's 11-year cycle of activity. The clouds thrive when the sun is quiet and spews less ultraviolet radiation, which can destroy water needed to form the clouds and can keep temperatures too high for ice particles to form.
Because the sun has been abnormally quiet in recent years, noctilucent clouds could be especially bright and numerous this summer in the Northern hemisphere. "We expect this year to be a bigger year because of lower solar activity," says Scott Bailey of Virginia Tech in Blacksburg, VA, and a lead scientist for NASA's Aeronomy of Ice in the Mesosphere (AIM) spacecraft, which launched in 2007 to study the clouds. The clouds may be about twice as abundant this year as they are when the sun is at the peak of its activity, he says.
Time Lag
Although amateur astronomers last week snapped photos of the Northern Hemisphere's first noctilucent clouds of the season, AIM caught the first hints of the new cloud season the previous week, on 22 May. The hints came from the subtle dimming of sunlight passing through the Earth's atmosphere, Bailey told New Scientist.
Northern sky watchers will have the best chance of seeing noctilucent clouds between mid-June and mid-August. The Southern Hemisphere, which has fewer and dimmer clouds, will have its own peak some six months later.
Still, it's not yet clear whether the number of northern clouds will truly crest this summer due to the solar cycle. Noctilucent cloud activity seems to peak roughly a year after solar activity hits its minimum, which researchers believe happened in December 2008 (see Solar cycle will be weakest since 1928, forecasters say).
But the exact time lag between solar minimum and peak cloud activity is uncertain, and researchers aren't entirely convinced a lag even exists, Bailey says.
There are no good theories to explain observations of the apparent lag. "There's no explanation for it," Bailey told New Scientist. "Every model says the clouds should respond immediately to what the sun is doing."
Following the clouds' behaviour in the coming years could help resolve the matter.
Link to this article: http://www.newscientist.com/article/dn17234-mysterious-nightshining-clouds-may-peak-this-year.html
Saturday, September 27, 2008
An explanation for noctilucent clouds
Puzzling Property Of Night-shining Clouds At Edge Of Space Explained
ScienceDaily (Sep. 26, 2008) — An explanation for a strange property of noctilucent clouds--thin, wispy clouds hovering at the edge of space at 85 km altitude--has been proposed by an experimental plasma physicist at the California Institute of Technology (Caltech), possibly laying to rest a decades-long mystery.
Noctilucent clouds, also known as night-shining clouds, were first described in 1885, two years after the massive eruption of Krakatoa, a volcanic island in Indonesia, sent up a plume of ash and debris up to 80 km into Earth's atmosphere. The eruption affected global climate and weather for years and may have produced the first noctilucent clouds.
The effects of Krakatoa eventually faded, but the unusual electric blue clouds remain, nestled into a thin layer of Earth's mesosphere, the upper atmosphere region where pressure is 10,000 times less than at sea level. The clouds, which are visible during the deep twilight, are most often observed during the summer months at latitudes from 50 to 70 degrees north and south--although in recent years they have been seen as far south as Utah and Colorado. Noctilucent clouds are a summertime phenomenon because, curiously, the atmosphere at 85 km altitude is coldest in summer, promoting the formation of the ice grains that make up the clouds.
"The incidence of noctilucent clouds seems to be increasing, perhaps because of global warming," says Paul M. Bellan, a professor of applied physics at Caltech.
Twenty-five years ago, researchers at Poker Flat, Alaska, discovered that the clouds were highly reflective to radar. This unusual property has long puzzled scientists. Bellan, reporting in the August issue of the Journal of Geophysical Research-Atmospheres, now has an explanation: the ice grains in noctilucent clouds are coated with a thin film of metal, made of sodium and iron. The metal film causes radar waves to reflect off ripples in the cloud in a manner analogous to how X-rays reflect from a crystal lattice.
Sodium and iron atoms collect in the upper atmosphere after being blasted off incoming micrometeors. These metal atoms settle into a thin layer of vapor that sits just above the altitude at which noctilucent clouds occur. Astronomers recently have been using the sodium layer to create laser-illuminated artificial guide stars for adaptive optics telescopes that remove the distorting affects of atmospheric turbulence to produce clearer celestial images.
Measurements of the density of sodium and iron atomic vapor layers show that the metal vapor is depleted by over 80 percent when noctilucent clouds are present. "Noctilucent clouds have been shown to act very much like a flycatcher for sodium and iron atoms," Bellan says. Indeed, in laboratory experiments, other researchers have found that at the frigid temperatures (-123 degrees Celsius) within noctilucent clouds, atoms in sodium vapor quickly become deposited on the surface of ice to form a metallic film.
"If you have metal-coated ice grains in noctilucent clouds, the radar reflectivity can become enormous" he says. "This reflectivity is not the sum of reflections from individual ice grains, which would not produce a very large reflection. Instead, what happens is that ripples in the cloud of metal-coated ice grains reflect in unison and reinforce each other, somewhat like an army marching in step across a bridge causes the bridge to vibrate."

