Mostrando entradas con la etiqueta Ice. Mostrar todas las entradas
Mostrando entradas con la etiqueta Ice. Mostrar todas las entradas

domingo, 26 de marzo de 2017

ESA : To the Arctic for CryoSat and beyond .- El CryoSat para el Ártico y más allá...............

http://www.esa.int/Our_Activities/Observing_the_Earth/CryoSat/To_the_Arctic_for_CryoSat_and_beyond

Sea ice
 
20 March 2017
After the relative quiet of the long dark winter months, the Arctic will be a tad busier over the coming weeks as numerous researchers descend on this harsh, yet fragile environment. Their aim is not to disturb its beauty, but to join forces in an all-out effort to measure ice on land and sea.
Environmental changes in the Arctic are no longer only of interest to scientists.
The need to understand and respond to dwindling polar ice is being given increasing importance at global climate discussions and vital for adopting strategies to mitigate and to adapt to change.
Unequivocal evidence of changing polar ice comes largely from satellites.
Since it was launched in 2010, ESA’s CryoSat orbiting 700 km up has been measuring the height of the ice, both of that floating in the polar oceans and of the vast ice sheets covering Greenland and Antarctica. This provides essential information on how the thickness is changing and, in turn, how the volume of ice is changing.
 
Campaign takes off

Over the last seven years, there have been several expeditions to the Arctic that involve taking measurements with a suite of sensors on aircraft and readings taken by hand actually on the ice to compare with those of CryoSat. By doing all this, scientists can ensure that ice-thickness maps created from satellite data are correct.
This week sees the beginning of one of the largest Arctic expedition ever undertaken by ESA.
“We have scientists from around 10 agencies and institutes from all over the world converging in the Arctic,” explained Malcolm Davidson, head of ESA Earth observation campaigns.
 
Checking instruments in flight

“We are pooling resources with other agencies such as NASA and other institutes to make our campaign a huge collaborative international effort.
Arne Olesen from the Technical University of Denmark added, “And, with so many people prepared to work for weeks in the most remote places on the planet and put up with the extreme cold and hazardous conditions, it just reflects how passionate and dedicated everyone is about polar science and getting the best data possible.”
There is another purpose: to prepare for future satellite missions similar to CryoSat, but with even better measurement capabilities.
Dr Davidson continued, “Our understanding of changing ice has improved enormously thanks to CryoSat, but we must prepare for the future now and test new types of sensor that may be able to give us even better information.
 
Two frequencies on one plane
 
“So, while we are out in the Arctic we will be testing a new concept that involves a radar altimeter that works with two different wavelengths instead of only one like CryoSat.
“It’s always very exciting to be at the forefront of new technology. It is essential that we put in the groundwork to make sure a new concept will work – and, in this case, it means getting very cold and even the prospect of facing the occasional polar bear!”
While the expedition gets underway, CryoSat is also the focus of a conference in Alberta in Canada this week. Here, scientists have come together to discuss the latest results emerging from the mission.

Related articles

ESA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com

Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

domingo, 18 de diciembre de 2016

ESA : Sentinel-3A measures height of Antarctic ice sheet .- Satélite Sentinel-3A mide la altura de la capa de hielo de la Antártica


Sentinel-3A measures height of Antarctic ice sheet

Details

Open/Close
  • Title Sentinel-3A measures height of Antarctic ice sheet
  • Released 13/12/2016 11:55 am
  • Copyright contains modified Copernicus Sentinel data (2015), processed by UCL–MSSL
  • Description
    Launched in February 2016 with a suite of cutting-edge instruments, Sentinel-3A is arguably the most comprehensive of all the Copernicus Sentinel missions. Since then, the satellite has been thoroughly tested and fine-tuned. This led to the release of its first Earth colour data in October and first radiometer data last month. Now, the public also have access to data from its radar altimeter.
    Sentinel-3A’s topography package will bring a step change in satellite altimetry, measuring the height of the sea surface, waves and surface wind speed over the oceans. It also provides accurate topography measurements over sea ice, ice sheets, rivers, lakes and land. Over the oceans, the radar altimeter contributes information for forecasting, which is essential for safe maritime operations, for example. Monitoring sea-level change and diminishing Arctic ice is also important for monitoring the effects brought about by climate change.
    As the image of Antarctica shows, the radar altimeter is also important for measuring changes in the height of land ice. The data may seem relatively sparse at the moment, but this is because they only show a few days’ readings.
    Accurately measuring changes in the height of the huge ice sheets that blanket Antarctica and Greenland is important for climate research and understanding sea-level change.
    ESA’s CryoSat mission currently measures changes in ice height and paved the way for Sentinel-3’s radar altimeter. Importantly, Sentinel-3’s radar altimeter is the first to provide 100% coverage over all of Earth’s surfaces in ‘synthetic aperture radar’ mode. For accuracy, Sentinel-3’s topography package also includes a microwave radiometer that is used to correct measurements from the radar altimeter affected by water vapour in the atmosphere.
    While changes in ice height may be relatively slow, the radar altimeter will also be used to measure changes that can be more abrupt, such as the height of water in lakes and rivers.
    The mission is managed jointly by ESA and Eumetsat. The day-to-day operations of the Sentinel-3A satellite are carried out by Eumetsat. ESA, as the developer of the mission, continues to monitor its health and performance.  ESA is responsible for the land data products and Eumetsat for the marine products – all of which are made available for application through Copernicus services.
    Read more about data access.
  • Id 370676

TAGS

Open/Close

TAGS

Open/Close
ESA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com a vuelo
Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

domingo, 4 de diciembre de 2016

ESA : Arctic sea-ice growth slower than ever .- El crecimiento del hielo marino en el Ártico es más lento que nunca..............

http://www.esa.int/Our_Activities/Observing_the_Earth/CryoSat/Arctic_freeze_slows_down
a vuelo

Arctic freeze slows down

November sea-ice thickness
 
30 November 2016
ESA’s CryoSat satellite has found that the Arctic has one of the lowest volumes of sea ice of any November, matching record lows in 2011 and 2012. Early winter growth of ice in the Arctic has been about 10% lower than usual.
CryoSat carries a radar altimeter that can measure the surface height variation of ice in fine detail, allowing scientists to record changes in its volume with unprecedented accuracy.
These observations are vital for tracking climate change and are an essential resource for maritime operators who increasingly navigate the icy waters of Earth’s polar regions.
The US National Snow and Ice Data Centre reported that the area of the Arctic covered by sea ice fell to 4.1 million sq km in September this year – slightly less than the sea-ice extent in September 2011.
But CryoSat shows that the ice was thicker at the end of summer than in most other years, at 116 cm on average. This means there was substantially more ice this year than in 2011.
Thicker ice can occur if melting is lower, or if snowfall or ice compaction is higher.
However, the Arctic usually gains about 161 cubic km of ice per day in November, but this year’s growth has been about 10% lower, at 139 cubic km per day, with a total ice volume estimated to have accumulated to 10 500 cubic km by the end of the month.
This would essentially tie with conditions in the Novembers of 2011, when levels were at their lowest on record for this time of the year.
Although sea ice in the central Arctic is currently thicker than it was in 2011, there is far less ice in more southerly regions such as the Beaufort, East Siberian and Kara Seas.
 
2011–16 November Arctic sea-ice volumen
 
“Because CryoSat can measure Arctic sea ice thickness in autumn, it gives us a much clearer picture of how it has fared during summer,” said Rachel Tilling, at the UK’s Centre for Polar Observation and Modelling (CPOM), who came to these conclusions.
“Although sea ice usually grows rapidly after the minimum extent each September, this year’s growth has been far slower than we’d expect – probably because this winter has been warmer than usual in the Arctic.”
As demand for information on Arctic conditions increases, CryoSat has become an essential source of information for polar stakeholders, ranging from ice forecasting services to scientists studying the effects of climate change.
“In its short, six years of life, we have learnt more about Arctic sea ice from CryoSat than from any other satellite mission,” commented CPOM Director and principal scientific advisor to the CryoSat mission, Professor Andrew Shepherd.
“To understand the role that sea ice plays in the climate system, and the restrictions it places on maritime operations, we must ensure that its measurements are continued into the future.”
CPOM plans to release a complete assessment of 2016 sea ice conditions in the coming weeks.

Related articles

ESA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

domingo, 27 de noviembre de 2016

ESA : Icy surprises at Rosetta's comet .- Sorpresas heladas en el cometa de Rosetta

http://www.esa.int/Our_Activities/Space_Science/Rosetta/Icy_surprises_at_Rosetta_s_comet
A day at the comet

Icy surprises at Rosetta's comet

17 November 2016
As Rosetta’s comet approached its most active period last year, the spacecraft spotted carbon dioxide ice – never before seen on a comet – followed by the emergence of two unusually large patches of water ice.
The carbon dioxide ice layer covered an area comparable to the size of a football pitch, while the two water ice patches were each larger than an Olympic swimming pool and much larger than any signs of water ice previously spotted at the comet.
The three icy layers were all found in the same region, on the comet’s southern hemisphere.
A combination of the complex shape of the comet, its elongated path around the Sun and the substantial tilt of its spin, seasons are spread unequally between the two hemispheres of the double-lobed Comet 67P/Churyumov–Gerasimenko.
When Rosetta arrived in August 2014, the northern hemisphere was still undergoing its 5.5 year summer, while the southern hemisphere was in winter and much of it was shrouded in darkness.
However, shortly before the comet’s closest approach to the Sun in August 2015, the seasons changed and the southern hemisphere experienced a brief but intense summer, exposing this region to sunlight again.
In the first half of 2015, as the comet steadily became more active, Rosetta observed water vapour and other gases pouring out of the nucleus, lifting its dusty cover and revealing some of the comet’s icy secrets.
In particular, on two occasions in late March 2015, Rosetta’s visible, infrared and thermal imaging spectrometer, VIRTIS, found a very large patch of carbon dioxide ice in the Anhur region, in the comet’s southern hemisphere.
This is the first detection of solid carbon dioxide on any comet, although it is not uncommon in the Solar System – it is abundant in the polar caps of Mars, for example.
 
Carbon dioxide detection
“We know comets contain carbon dioxide, which is one of the most abundant species in cometary atmospheres after water, but it’s extremely difficult to observe it in solid form on the surface,” explains Gianrico Filacchione from Italy’s INAF-IAPS Istituto di Astrofisica e Planetologia Spaziali, who led the study.
In the comet environment, carbon dioxide freezes at –193ºC, much below the temperature where water turns into ice. Above this temperature, it changes directly from a solid to a gas, hampering its detection in ice form on the surface.
By contrast, water ice has been found at various comets, and Rosetta detected plenty of small patches on several regions.
“We hoped to find signs of carbon dioxide ice and had been looking for it for quite a while, but it was definitely a surprise when we finally detected its unmistakable signature,” adds Gianrico.
The patch, consisting of a few percent of carbon dioxide ice combined with a darker blend of dust and organic material, was observed on two consecutive days in March. This was a lucky catch: when the team looked at that region again around three weeks later, it was gone.
Assuming that all of the ice had turned into gas, the scientists estimated that the 80 x 60 m patch contained about 57 kg of carbon dioxide, corresponding to a 9 cm-thick layer. Its presence on the surface is likely an isolated rare case, with the majority of carbon dioxide ice being confined to deeper layers of the nucleus.
Gianrico and his collaborators believe the icy patch dates back a few years, when the comet was still in the cold reaches of the outer Solar System and the southern hemisphere was experiencing its long winter. At that time, some of the carbon dioxide still outgassing from the interior of the nucleus condensed on the surface, where it remained frozen for a very long while, and vaporised only as the local temperature finally rose again in April 2015.
This reveals a seasonal cycle of carbon dioxide ice, which unfolds over the comet’s 6.5 year orbit, as opposed to the daily cycle of water ice, also spotted by VIRTIS shortly after Rosetta’s arrival.
Interestingly, shortly after the carbon dioxide ice had disappeared, Rosetta’s OSIRIS narrow-angle camera detected two unusually large patches of water ice in the same area, between the southern regions of Anhur and Bes.
 
Large patches of water ice
“We had already seen many metre-sized patches of exposed water ice in various regions of the comet, but the new detections are much larger, spanning some 30 x 40 m each, and they persisted for about 10 days before they completely disappeared,” says Sonia Fornasier from LESIA–Observatoire de Paris and Université Paris Diderot, France, lead scientist of the study focusing on seasonal and daily surface colour variations.
These ice-rich areas appear as very bright portions of the comet surface reflecting light that is bluer in colour compared with the redder surroundings. Scientists have experimented with mixtures of dust and water ice to show that, as the concentration of ice in them increases, the reflected light becomes gradually bluer in colour, until reaching a point where equal amounts of light are reflected in all colours.
The two newly detected patches contain 20–30% of water ice mixed with darker material, forming a layer up to 30 cm thick of solid ice. One of them was likely lurking underneath the carbon dioxide ice sheet revealed by VIRTIS about a month before.
 
Comet colours
 
“On a global scale, we also found that the entire comet surface turned increasingly bluer in colour as it approached the Sun and the intense activity lifted off large amounts of dust, exposing more of the ice-rich terrain underneath,” explains Sonia.
As the comet moved away from the Sun, the scientists observed the overall colour of the comet surface gradually turning redder again.
They also revealed local variations of colour, indicative of the daily cycle of water ice. Quickly turning into water vapour when exposed to sunlight during the local daytime, it condensed back into thin layers of frost and ice as the temperature decreases after sunset, only to vaporise again on the following day.
The distribution of water ice beneath the dusty surface of the comet seems widely but not uniformly spread, with small patches punctuating the nucleus, appearing and disappearing as a result of the comet's activity.
Occasionally, larger and thicker portions of ice are also uncovered, dating back to a previous approach to the Sun.
“These two studies of the comet's icy content are revealing new details about the composition and history of the nucleus,” says Matt Taylor, ESA Rosetta project scientist.
“While the flight part of the mission is now over, the scientific exploitation of the enormous quantity of data collected by Rosetta continues.”
Notes for Editors
For further information, please contact:
Gianrico Filacchione
INAF-IAPS Istituto di Astrofisica e Planetologia Spaziali
Rome, Italy
Email: gianrico.filacchione@iaps.inaf.it
Sonia Fornasier
LESIA–Observatoire de Paris
and Université Paris Diderot
Paris, France
Email: sonia.fornasier@obspm.fr
Matt Taylor
ESA Rosetta project scientist
Email: matthew.taylor@esa.int
Markus Bauer 



ESA Science and Robotic Exploration Communication Officer


Tel: +31 71 565 6799





Mob: +31 61 594 3 954





Email: markus.bauer@esa.int

ESA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

domingo, 13 de noviembre de 2016

ESA : Pío XI Glacier, Chile .- Glaciar Pío XI, Chile

http://www.esa.int/spaceinimages/Images/2016/11/Pio_XI_Glacier_Chile

Details

Open/Close
  • Title Pío XI Glacier, Chile
  • Released 04/11/2016 10:00 am
  • Copyright USGS/ESA
  • Description
    Part of Chile’s Bernardo O’Higgins National Park in southern Chile is pictured in this Landsat-8 image from 8 January 2016.
    The park includes much of the Southern Patagonian Ice Field – the world’s second largest contiguous ice field beyond the poles.
    Classified as an expanse of ice covering less than 50 000 sq km, ice fields are formed by a large accumulation of snow which turns into ice with years of compression and freezing. Shaped by the underlying topography, glaciers often form at the edges of an ice field, draining the ice off.
    The Southern Patagonian Ice Field is the larger of two remnant parts of the Patagonian Ice Sheet, which covered all of southern Chile during the last glacial period some 12 000 years ago.
    One of the main attractions in this area is the Brüggen Glacier, also known as Pío XI Glacier, visible in the lower left corner of the image. This is the longest glacier in the southern hemisphere outside Antarctica, and has been advancing, first reaching the western shore in the 1960s, and then advancing north and south.
    Just above this glacier, we can see how the waters of Lake Greve appear lighter in this false-colour image compared to other water bodies. This is due to the presence of suspended fine sediment in the water produced by the abrasion of glaciers rubbing against rock, called ‘glacier milk.’
    Another notable geological feature in this area is the active, ice-covered Lautaro Volcano in the lower-central part of the image.
    This image is also featured on the Earth from Space video programme.
  • Id 368021

TAGS

Open/Close
VERSIÓN EN ESPAÑOL :

Spain

Pío XI glacier, Chile

El glaciar Pío XI, Chile

4 noviembre 2016 Esta imagen captada el 8 de enero de 2016 por el satélite estadounidense Landsat 8 muestra parte del Parque Nacional Bernardo O’Higgins, situado en el sur de Chile.
Este parque alberga gran parte del Campo de hielo Patagónico Sur, la segunda mayor extensión de hielo continuo más allá de los polos.
Los campos de hielo, que por su clasificación ocupan menos de 50.000 km2, están formados por una gran acumulación de nieve, que se convierte en hielo por el efecto de años de compresión y congelación. Condicionados por la topografía subyacente, los glaciares suelen formarse en las márgenes de los campos de hielo, donde las masas de hielo se van desplazando.
El Campo de hielo Patagónico Sur es el mayor de los remanentes del Hielo Continental Patagónico, que cubría todo el sur de Chile durante el último periodo glaciar, hace unos 12.000 años.
Uno de los mayores atractivos de la zona es el Glaciar Brüggen, o Glaciar Pío XI, que puede verse en la esquina inferior izquierda de la imagen. Se trata del mayor glaciar del hemisferio sur fuera de la Antártida y, en su avance, primero llegó hasta la margen occidental en los años sesenta del siglo XX, para después continuar hacia el norte y el sur.
Justo por encima del glaciar podemos apreciar cómo las aguas del Lago Greve aparecen, en esta imagen en falso color, más claras que otras masas de agua. Esto se debe a la presencia de finos sedimentos en suspensión, conocidos como ‘leche glaciar’, producidos por la erosión de los lechos rocosos en contacto con el glaciar.
Otra figura geológica destacada de la zona es el volcán Lautaro, en activo y cubierto de hielo, que se ve en la parte inferior central de la imagen.
Esta imagen también aparece en la galería de vídeos de Earth from Space.
ESA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

miércoles, 20 de julio de 2016

NASA : Melt Water Over Arctic Sea Ice .- Derritiendo el hielo de agua sobre el mar Ártico

http://www.nasa.gov/image-feature/melt-water-over-arctic-sea-ice

overhead view of sea ice with a large melt pond
Sea ice across the Arctic Ocean is shrinking to below-average levels this summer. NASA’s Operation IceBridge, an airborne survey of polar ice, just completed its first flights studying the aquamarine pools of melt water on the ice surface that may be accelerating the overall sea ice retreat.
This large pool of melt water over sea ice was seen from an Operation IceBridge flight over the Beaufort Sea on July 14, 2016. During this summer campaign, IceBridge will map the extent, frequency and depth of melt ponds like these to help scientists forecast the Arctic sea ice yearly minimum extent in September.
Image Credit: NASA/Operation IceBridge
Last Updated: July 19, 2016
Editor: Sarah Loff
NASA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

domingo, 17 de abril de 2016

NASA : Early Ice Breakup of Beaufort Sea Due to Early Warm Temperatures .- Desintegración del hielo del mar de Beaufort temprana debido a las temperaturas calientes tempranas

Hola amigos: A VUELO DE UN QUINDE EL BLOG., Esta imagen de ruptura temprana de hielo del mar de Beaufort, al norte de Alaska, fue tomada por Infrared Imaging Radiometer Suite (VIIRS) instrumento canal infrarrojo visible del satélite Suomi NPP, en torno a 1148 UTC el 13 de abril de 2016.
Cada año, el tapón de agua de mar congelada flotando en la superficie del Océano Ártico y sus mares vecinos se derrite durante la primavera y el verano y vuelve a crecer en los meses de otoño e invierno, alcanzando su punto máximo anual entre febrero y abril. El 24 de marzo, Ártico extensión del hielo marino alcanzó un máximo de 5.607 millones de millas cuadradas (14,52 millones de kilómetros cuadrados), una nueva extensión máxima de invierno baja récord en los registros por satélite que comenzó en 1979.
More information...........

Sea ice breaking up in Alaska imaged from satellite
This image of early ice breakup of the Beaufort Sea, north of Alaska, was taken by the Suomi NPP satellite's Visible Infrared Imaging Radiometer Suite (VIIRS) instrument infrared channel, at around 1148 UTC on April 13, 2016.
Every year, the cap of frozen seawater floating on top of the Arctic Ocean and its neighboring seas melts during the spring and summer and grows back in the fall and winter months, reaching its maximum yearly extent between February and April. On March 24, Arctic sea ice extent peaked at 5.607 million square miles (14.52 million square kilometers), a new record low winter maximum extent in the satellite record that started in 1979.
Image Credit: NOAA/NASA
Last Updated: April 15, 2016
Editor: Sarah Loff
NASA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

viernes, 1 de abril de 2016

NASA : Greenland's Ice Sheet From 40,000 Feet .- Capa de hielo de Groenlandia de 40.000 pies

Hola amigos: A VUELO DE UN QUINDE EL BLOG.,  The Oceans Melting Greenland (OMG) field : El equipo de campaña de campo está volando la aeronave G-III de la NASA en cerca de 40.000 pies. En un día claro, esta altitud también proporciona una perspectiva impresionante de uno de los dos grandes capas de hielo del mundo (la otra es la Antártida). El vuelo sábado por la 26 de marzo sobre la costa noreste era uno de esos días claros.
El equipo de OMG es ahora sólo unos pocos vuelos de distancia de la cartografía de las alturas de los glaciares alrededor de toda la costa de Groenlandia. Estas medidas formarán la base de este primero de su clase experimento, aclarar la imagen de cómo los glaciares de Groenlandia están respondiendo a un momento en que muchas señales apuntan a que la aceleración del cambio
More information.............
http://www.nasa.gov/image-feature/greenlands-ice-sheet-from-40000-feet

Ice sheet of Greenland photographed from aircraft
The Oceans Melting Greenland (OMG) field campaign team is flying NASA’s G-III aircraft at about 40,000 feet. On a clear day, this altitude also provides a stunning perspective of one of the world’s two great ice sheets (the other is Antarctica). The flight Saturday, March 26, over the northeast coastline was one of those clear days.

The OMG team is now just a few flights away from mapping glacier heights around the entire coast of Greenland. These measurements will form the baseline of this first-of-its-kind experiment, clarifying the picture of how Greenland’s glaciers are responding at a time when many signs point to accelerating change.

OMG will pave the way for improved estimates of sea level rise by investigating the extent to which the oceans are melting Greenland’s ice. OMG will observe changing water temperatures and glaciers that reach the ocean around all of Greenland from 2015 to 2020.
Image Credit: NASA
Last Updated: March 29, 2016
Editor: Sarah Loff
NASA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

martes, 15 de septiembre de 2015

NASA : Arctic Sea Ice Minimum, 2015 .- Mínimo de hielo en el Mar Ártico en 2015


This animation shows the evolution of the Arctic sea ice cover from its wintertime maximum extent, which was reached on Feb. 25, 2015, and was the lowest on record, to its apparent yearly minimum, which occurred on Sept. 11, 2015, and is the fourth lowest in the satellite era.
Credits: NASA Goddard's Scientific Visualization Studio
Esta animación muestra la evolución de la cubierta de hielo marino en el Ártico desde su punto máximo el invierno, al que se llegó el 25 de febrero de 2015, y fue el más bajo de la historia, a su mínimo anual aparente, que ocurrió el 11 de septiembre de 2015, y es el cuarto más bajo de la era de los satélites.

Arctic Sea Ice Summertime Minimum Is Fourth Lowest on Record

Hielo marino del Ártico Summertime mínimo es el cuarto más bajo registrado .

Arctic sea ice
The 2015 Arctic sea ice summertime minimum is 699,000 square miles below the 1981-2010 average, shown here as a gold line.
Credits: NASA/Goddard Scientific Visualization Studio

According to a NASA analysis of satellite data, the 2015 Arctic sea ice minimum extent is the fourth lowest on record since observations from space began.
The analysis by NASA and the NASA-supported National Snow and Ice Data Center (NSIDC) at the University of Colorado at Boulder showed the annual minimum extent was 1.70 million square miles (4.41 million square kilometers) on Sept. 11. This year’s minimum is 699,000 square miles (1.81 million square kilometers) lower than the 1981-2010 average.

Arctic sea ice cover, made of frozen seawater that floats on top of the ocean, helps regulate the planet’s temperature by reflecting solar energy back to space. The sea ice cap grows and shrinks cyclically with the seasons. Its minimum summertime extent, which occurs at the end of the melt season, has been decreasing since the late 1970s in response to warming temperatures.

In some recent years, low sea-ice minimum extent has been at least in part exacerbated by meteorological factors, but that was not the case this year.

“This year is the fourth lowest, and yet we haven’t seen any major weather event or persistent weather pattern in the Arctic this summer that helped push the extent lower as often happens,” said Walt Meier, a sea ice scientist with NASA’s Goddard Space Flight Center in Greenbelt, Maryland. “It was a bit warmer in some areas than last year, but it was cooler in other places, too.”

In contrast, the lowest year on record, 2012, saw a powerful August cyclone that fractured the ice cover, accelerating its decline.

The sea ice decline has accelerated since 1996. The 10 lowest minimum extents in the satellite record have occurred in the last 11 years. The 2014 minimum was 1.94 million square miles (5.03 million square kilometers), the seventh lowest on record. Although the 2015 minimum appears to have been reached, there is a chance that changing winds or late-season melt could reduce the Arctic extent even further in the next few days.

“The ice cover becomes less and less resilient, and it doesn’t take as much to melt it as it used to,” Meier said. “The sea ice cap, which used to be a solid sheet of ice, now is fragmented into smaller floes that are more exposed to warm ocean waters. In the past, Arctic sea ice was like a fortress. The ocean could only attack it from the sides. Now it’s like the invaders have tunneled in from underneath and the ice pack melts from within.”

Some analyses have hinted the Arctic’s multiyear sea ice, the oldest and thickest ice that survives the summer melt season, appeared to have recuperated partially after the 2012 record low. But according to Joey Comiso, a sea ice scientist at Goddard, the recovery flattened last winter and will likely reverse after this melt season.

“The thicker ice will likely continue to decline,” Comiso said. “There might be some recoveries during some years, especially when the winter is unusually cold, but it is expected to go down again because the surface temperature in the region continues to increase.”

This year, the Arctic sea ice cover experienced relatively slow rates of melt in June, which is the month the Arctic receives the most solar energy. However, the rate of ice loss picked up during July, when the sun is still strong. Faster than normal ice loss rates continued through August, a transition month when ice loss typically begins to slow. A big “hole” appeared in August in the ice pack in the Beaufort and Chukchi seas, north of Alaska, when thinner seasonal ice surrounded by thicker, older ice melted. The huge opening allowed for the ocean to absorb more solar energy, accelerating the melt.

It’s unclear whether this year’s strong El Niño event, which is a naturally occurring phenomenon that typically occurs every two to seven years where the surface water of the eastern equatorial Pacific Ocean warms, has had any impact on the Arctic sea ice minimum extent.
No está claro si fuerte evento de El Niño de este año, que es un fenómeno natural que se produce normalmente cada dos a siete años, donde el agua de la superficie del Océano Pacífico ecuatorial este se calienta, ha tenido algún impacto en la extensión mínima del hielo marino del Ártico.

“Historically, the Arctic had a thicker, more rigid sea ice that covered more of the Arctic basin, so it was difficult to tell whether El Niño had any effect on it,” said Richard Cullather, a climate modeler at Goddard. “Although we haven’t been able to detect a strong El Niño impact on Arctic sea ice yet, now that the ice is thinner and more mobile, we should begin to see a larger response to atmospheric events from lower latitudes.”
 
"Históricamente, el Ártico tuvo una más gruesa, más rígida del hielo marino que cubre más de la cuenca del Ártico, así que era difícil decir si El Niño ha tenido algún efecto en él", dijo Richard Cullather, un modelador climático en Goddard. "Aunque no hemos sido capaces de detectar un fuerte impacto de El Niño en el hielo marino del Ártico, sin embargo, ahora que el hielo es más fina y más móvil, deberíamos empezar a ver una mayor respuesta a los eventos atmosféricos de latitudes más bajas."
In comparison, research has found a strong link between El Niño and the behavior of the sea ice cover around Antarctica. El Niño causes higher sea level pressure, warmer air temperature and warmer sea surface temperature in west Antarctica that affect sea ice distribution. This could explain why this year the growth of the Antarctic sea ice cover, which currently is headed toward its yearly maximum extent and was at much higher than normal levels throughout much of the first half of 2015, dipped below normal levels in mid-August.

Starting next week, NASA’s Operation IceBridge, an airborne survey of polar ice, will be carrying science flights over sea ice in the Arctic, to help validate satellite readings and provide insight into the impact of the summer melt season on land and sea ice.

NASA uses the vantage point of space to increase our understanding of our home planet, improve lives, and safeguard our future. NASA develops new ways to observe and study Earth's interconnected natural systems with long-term data records. The agency freely shares this unique knowledge and works with institutions around the world to gain new insights into how our planet is changing.

For more information about NASA’s Earth science activities, visit:


-end-

Steve Cole
Headquarters, Washington
202-358-0918
stephen.e.cole@nasa.gov

Rani Gran
Goddard Space Flight Center, Greenbelt, Md.
301-286-2483
rani.c.gran@nasa.gov
Last Updated: Sep. 15, 2015
Editor: Allard Beutel
Tags:  Climate, Earth, Ice, Water,
NASA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
Inscríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

martes, 25 de agosto de 2015

NASA : Sea Ice in the Greenland Sea .- Hielo marino en el Mar de Groenlandia

Hola mis amigos: A VUELO DE UN QUINDE EL BLOG., A medida que el Hemisferio Norte experimenta el calor del verano, el hielo se mueve y se deshace en las aguas del Ártico y las tierras más al norte que lo rodean. El Moderate Resolution Imaging Spectroradiometer (MODIS) a bordo del satélite Aqua de la NASA captó esta imagen en color verdadero de hielo del mar de Groenlandia el 16 de julio de 2015.
Grandes trozos de derretimiento del hielo marino se pueden ver en el hielo del mar frente a la costa, y las espirales al sur de hielo han sido moldeadas por los vientos y las corrientes que se mueven a través del Mar de Groenlandia. A lo largo de la costa de Groenlandia, el frío, el agua fresca fusión de los glaciares fluye hacia el mar, al igual que los icebergs recién parido. Aire frío del interior de Groenlandia empuja el hielo lejos de la costa, y la mezcla de agua fría y aire permite un poco de hielo mar para sostenerse incluso en pleno verano.
Según las observaciones de los satélites, 2015 está en camino de ser otro año de baja para la cubierta de hielo marino del verano ártico. Los últimos diez años han incluido nueve de la extensión de hielo más bajas de la historia. El mínimo anual se produce normalmente a finales de agosto o principios de septiembre. La cantidad de la cubierta de hielo marino del Ártico ha disminuido ya que las temperaturas globales aumentan. El Ártico es de dos a tres veces más sensibles a los cambios de temperatura como la Tierra en su conjunto.
 
More information......

Swirls of sea ice along the coast and dark blue waters of the Arctic
As the northern hemisphere experiences the heat of summer, ice moves and melts in the Arctic waters and the far northern lands surrounding it. The Moderate Resolution Imaging Spectroradiometer (MODIS) aboard NASA’s Aqua satellite captured this true-color image of sea ice off Greenland on July 16, 2015.
 
Large chunks of melting sea ice can be seen in the sea ice off the coast, and to the south spirals of ice have been shaped by the winds and currents that move across the Greenland Sea. Along the Greenland coast, cold, fresh melt water from the glaciers flows out to the sea, as do newly calved icebergs. Frigid air from interior Greenland pushes the ice away from the shoreline, and the mixing of cold water and air allows some sea ice to be sustained even at the height of summer.
According to observations from satellites, 2015 is on track to be another low year for arctic summer sea ice cover. The past ten years have included nine of the lowest ice extents on record. The annual minimum typically occurs in late August or early September. The amount of Arctic sea ice cover has been dropping as global temperatures rise. The Arctic is two to three times more sensitive to temperature changes as the Earth as a whole.
Image Credit: NASA/Jeff Schmaltz, MODIS Land Rapid Response Team, NASA GSFC
Last Updated: Aug. 24, 2015
Editor: Sarah Loff
Tags:  Aqua Satellite, Climate, Earth, Ice, Image of the Day,
NASA
Guillermo Gonzalo Sánchez Achutegui

domingo, 17 de mayo de 2015

NASA : Antarctica’s Larsen B Ice Shelf: The Final Act .- Estudio de la NASA de una muestra del hielo Larsen B de la Antártida ha llegando a su Acto Final


NASA research has found that the last section of Antarctica's Larsen B Ice Shelf is likely to disintegrate before the end of the decade.
Un nuevo estudio de la NASA encuentra el último tramo restante de la Antártida de hielo Larsen B, que se derrumbó parcialmente en 2002, se está debilitando y es probable que se desintegran por completo antes del final de la década rápidamente.
More information:

NASA Study Shows Antarctica’s Larsen B Ice Shelf Nearing Its Final Act


A new NASA study finds the last remaining section of Antarctica's Larsen B Ice Shelf, which partially collapsed in 2002, is quickly weakening and likely to disintegrate completely before the end of the decade.

A team led by Ala Khazendar of NASA's Jet Propulsion Laboratory (JPL) in Pasadena, California, found the remnant of the Larsen B Ice Shelf is flowing faster, becoming increasingly fragmented and developing large cracks. Two of its tributary glaciers also are flowing faster and thinning rapidly.

"These are warning signs that the remnant is disintegrating," Khazendar said. "Although it’s fascinating scientifically to have a front-row seat to watch the ice shelf becoming unstable and breaking up, it’s bad news for our planet. This ice shelf has existed for at least 10,000 years, and soon it will be gone."

Antarctica's Larsen B Ice Shelf
Antarctica's Larsen B Ice Shelf is likely to shatter into hundreds of icebergs before the end of the decade, according to a new NASA study.
Credits: NSIDC/Ted Scambos
Ice shelves are the gatekeepers for glaciers flowing from Antarctica toward the ocean. Without them, glacial ice enters the ocean faster and accelerates the pace of global sea level rise. This study, the first to look comprehensively at the health of the Larsen B remnant and the glaciers that flow into it, has been published online in the journal Earth and Planetary Science Letters.

Khazendar's team used data on ice surface elevations and bedrock depths from instrumented aircraft participating in NASA's Operation IceBridge, a multiyear airborne survey campaign that provides unprecedented documentation annually of Antarctica's glaciers, ice shelves and ice sheets. Data on flow speeds came from spaceborne synthetic aperture radars operating since 1997.
 
Khazendar noted his estimate of the remnant's remaining life span was based on the likely scenario that a huge, widening rift that has formed near the ice shelf's grounding line will eventually crack all the way across. The free-floating remnant will shatter into hundreds of icebergs that will drift away, and the glaciers will rev up for their unhindered move to the sea.

Located on the coast of the Antarctic Peninsula, the Larsen B remnant is about 625 square miles (1,600 square kilometers) in area and about 1,640 feet (500 meters) thick at its thickest point. Its three major tributary glaciers are fed by their own tributaries farther inland.

"What is really surprising about Larsen B is how quickly the changes are taking place," Khazendar said. "Change has been relentless."

The remnant's main tributary glaciers are named Leppard, Flask and Starbuck -- the latter two after characters in the novel Moby Dick. The glaciers' thicknesses and flow speeds changed only slightly in the first couple of years following the 2002 collapse, leading researchers to assume they remained stable. The new study revealed, however, that Leppard and Flask glaciers have thinned by 65-72 feet (20-22 meters) and accelerated considerably in the intervening years. The fastest-moving part of Flask Glacier had accelerated 36 percent by 2012 to a flow speed of 2,300 feet (700 meters) a year -- comparable to a car accelerating from 55 to 75 mph.

Flask's acceleration, while the remnant has been weakening, may be just a preview of what will happen when the remnant breaks up completely. After the 2002 Larsen B collapse, the glaciers behind the collapsed part of the shelf accelerated as much as eightfold – comparable to a car accelerating from 55 to 440 mph.

The third and smallest glacier, Starbuck, has changed little. Starbuck's channel is narrow compared with those of the other glaciers, and strongly anchored to the bedrock, which, according to authors of the study, explains its comparative stability.

"This study of the Antarctic Peninsula glaciers provides insights about how ice shelves farther south, which hold much more land ice, will react to a warming climate," said JPL glaciologist Eric Rignot, a coauthor of the paper.

The research team included scientists from JPL, the University of California, Irvine, and the University Centre in Svalbard, Norway. The paper is online at:


NASA uses the vantage point of space to increase our understanding of our home planet, improve lives and safeguard our future. NASA develops new ways to observe and study Earth's interconnected natural systems with long-term data records. The agency freely shares this unique knowledge and works with institutions around the world to gain new insights into how our planet is changing.

For more information about NASA’s Earth science activities, visit:

NASA
Guillermo Gonzalo Sánchez Achutegui
Incríbete en el Foro del blog y participa : A Vuelo De Un Quinde - El Foro!

martes, 3 de febrero de 2015

NASA : Cloud Streets in the Bering Sea .- Calles de la nube en el mar de Bering

Hola amigos. A VUELO DE UN QUINDE EL BLOG., . hemos recibido de la Fundación Nacional de Ciencias de Los Estados Unidos, sobre una espectacular fotografía del Mar de Bering, que precisamente la toma da una idea como si fuesen calles de hielo, captada por  NASA's Aqua satellite: Aguas de hielo, viento, temperaturas frías y mar se combinaron para creadas formaciones de nubes dramáticas sobre el mar de Bering a finales de enero de 2015....
La tundra congelada de Rusia se encuentra en el noroeste de la imagen, y Alaska nevado se encuentra en el noreste. El hielo marino se extiende desde la tierra hasta bien entrado el Mar de Bering. Durante la brillante línea de nubes blancas agua oscura en de cerca, filas paralelas. Estas formaciones son conocidas como "calles de nubes".

Más información. lea usted abajo....

Cloud Streets in the Bering Sea
Ice, wind, cold temperatures and ocean waters combined to created dramatic cloud formations over the Bering Sea in late January, 2015. The Moderate Resolution Imaging Spectroradiometer (MODIS) aboard NASA's Aqua satellite passed over the region and captured this true-color image on Jan. 23.
The frozen tundra of Russia lies in the northwest of the image, and snow-covered Alaska lies in the northeast. Sea ice extends from the land well into the Bering Sea. Over the dark water bright white clouds line in up close, parallel rows. These formations are known as “cloud streets”.
Air blowing over the cold, snowy land and then over ice becomes both cold and dry. When the air then moves over relatively warmer and much moister water and lead to the development of parallel cylinders of spinning air. On the upper edge of these cylinders of air, where the air is rising, small clouds form. Where air is descending, the skies are clear. This clear/cloudy pattern, formed in parallel rows, gives the impression of streets.
The clouds begin over the sea ice, but they primarily hang over open ocean. The streets are neat and in tight rows closest to land, while further over the Bering Sea the pattern widens and begins to become more random. The rows of clouds are also not perfectly straight, but tend to curve. The strength and direction of the wind helps create these features: where the wind is strongest, nearest to shore, the clouds line up most neatly. The clouds align with the wind direction, so the direction of the streets gives strong clues to prevailing wind direction.
Image Credit: NASA/Jeff Schmaltz, MODIS Land Rapid Response Team, NASA GSFC
NASA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com 



























Mi lista de blogs