Mostrando entradas con la etiqueta ESA’s CryoSat satellite. Mostrar todas las entradas
Mostrando entradas con la etiqueta ESA’s CryoSat satellite. Mostrar todas las entradas

domingo, 12 de febrero de 2017

ESA : CryoSat reveals lake outbursts beneath Antarctic ice.- CryoSat revela estallidos debajo del lago del hielo antártico

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

Four lakes under Thwaites
 
8 February 2017
A novel way of using ESA’s CryoSat mission has revealed how lakes beneath Thwaites Glacier drained into the Amundsen Sea – potentially the largest such outflow ever reported in this region of West Antarctica.
This new information is helping scientists understand more about what’s going on deep below the surface of the ice and what affects how fast the glaciers flow towards the ocean.
Thwaites and its neighbouring Pine Island Glacier are the fastest-receding glaciers on the Western Antarctic Ice Sheet.
Although this huge sheet is some 2 km thick in places, much of its floor is well below sea level. This makes it is particularly vulnerable to change, especially where the warmer ocean waters meet the underside of the floating terminus of the glacier.
Understanding the movements of these glaciers is critical for predicting how the ice sheet may behave in the future and how it may affect sea level.
A paper published today in The Cryosphere explains how CryoSat measurements have been processed in a new way and reveal that, in 2013, four interlinked lakes under Thwaites drained into the ocean.
 
Glacier speed West Antarctica
 
Lakes have been found under glaciers in many parts of Antarctica and are, indeed, commonly associated with fast-flowing glaciers. However, this is the first time they have been found and observed draining into the Amundsen Sea. In addition, this emptying is thought to happen only every 20–80 years.
Water below the ice sheet plays an important role in how quickly glaciers flow towards the sea, thought to be because a layer of meltwater reduces friction between the ice and the bedrock.
In addition, when channels form under the ice they lubricate the glacier bed.
Benjamin Smith from the University of Washington and lead author of the paper said, “This is first time we’ve been able to monitor both elevation changes and ice speed in this kind of detail over such a large area. 
“Without a satellite like CryoSat, we would have probably have missed the lake draining and we would have had to guess how the lake drainage might have affected the ice speed.
“Together, they tell us about how water moving at the glacier bed affects ice speed, and what processes we need to understand so that we are better equipped to predict the future of Thwaites.”
 
One of four lakes under the glacier
 
Noel Gourmelen from the University of Edinburgh explained, “Repeat observations from CryoSat over Thwaites revealed that the surface of the ice subsided by several metres as water drained away from the four lakes under the ice. The lakes totalled an area of about 700 sq km.
“On average, Thwaites carries about 135 cubic km of ice to the sea every year, but drainage from these lakes released an extra 3.5 cubic km of freshwater.
“In addition, the speed of the glacier increased by about 10% and would have contributed to a discharge of around 150 cubic km a year between 2013 and 2014.”
Drainage is estimated to have peaked at about 240 cubic m a second, possibly the largest outflow of meltwater ever reported from subglacial lakes in this region. This peak rate is about four times faster than the River Thames in England discharges to the North Sea each year.
Before this discovery, scientists had thought that this part of the ice sheet did not store water in lakes beneath the surface for very long because abrupt drainage had not been seen before in the area.

ESA's ice misión
 
Mark Drinkwater, head of ESA’s Earth observation mission science, said, “Previous studies have investigated if CryoSat could be used for monitoring small vertical displacements associated with these events.
“The main issue has been the limited coverage of standard altimeter measurements. But thanks to new processing techniques, the capability of using CryoSat to both discover and monitor Antarctic subglacial lakes has vastly increased.
Tommaso Parrinello, ESA’s CryoSat mission manager, added, “CryoSat again is proving what a versatile satellite it is. Now we also have the Copernicus Sentinel-1, with both providing powerful tools for developing further understanding of the relationship between lake drainage and ice dynamics in Antarctica.”

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Guillermo Gonzalo Sánchez Achutegui
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domingo, 25 de diciembre de 2016

ESA : Monitorización del hielo mediante una combinación de satélites


http://www.esa.int/esl/ESA_in_your_country/Spain/Monitorizacion_del_hielo_mediante_una_combinacion_de_satelites
Datos de grosor del hielo procedentes de CryoSat y SMOS
 
19 diciembre 2016
Aunque no fue diseñado para ofrecer este tipo de información, el satélite SMOS de la ESA, que forma parte del programa Earth Explorer, es capaz detectar el hielo marino más delgado. Dado que otro de los satélites del programa, CryoSat, está mejor dotado para medir el hielo más grueso, los científicos han encontrado una forma de combinar ambas misiones para obtener información aún más clara de los cambios en el Ártico.
SMOS fue concebido para capturar imágenes de la temperatura de brillo, gracias a su radiómetro embarcado. Aunque estas imágenes pueden convertirse en información sobre humedad del suelo y salinidad de los océanos para comprender mejor el ciclo hidrológico, da la casualidad de que estos datos también pueden utilizarse para medir la banquisa.
Por su parte, CryoSat aloja un altímetro radar que mide el francobordo del hielo marino, que es la distancia vertical entre la línea de flotación y el punto más alto de la banquisa. Este valor se emplea para estudiar cómo cambia el grosor del hielo y cómo el clima afecta al volumen del hielo terrestre.
A pesar de que ambas misiones son muy diferentes, científicos de la Universidad de Hamburgo y del Instituto Alfred Wegener (AWI), en Alemania, que participan en las dos misiones Earth Explorer, han encontrado la forma de combinar los datos de SMOS y CryoSat para obtener una imagen más clara de los cambios en el grosor del hielo flotante en las aguas del Ártico.
Mientras que la precisión de las medidas de CryoSat aumenta en función del espesor del hielo, los datos de SMOS son más precisos cuando la banquisa es relativamente delgada, de menos de un metro. 
 
Hielo delgado

Las mediciones de CryoSat ofrecen información de alta resolución espacial, que abarca el Ártico, cada mes. SMOS, en cambio, proporciona imágenes diarias, pero con una resolución mucho menor que CryoSat.
“Al combinar las estimaciones de grosor del hielo de CryoSat y SMOS, obtenemos una visión más precisa y completa del estado actual del hielo ártico”, comenta el doctor Robert Ricker, del AWI.
“Los usuarios necesitan información oportuna de todo el Ártico y nosotros podemos responder a esta necesidad combinando los datos de estas dos misiones, distintas pero complementarias”.
La Universidad de Hamburgo ya utiliza SMOS para ofrecer mapas diarios del grosor del hielo del Ártico durante el invierno. Estos mapas se producen a las 24 horas de haberse tomado las mediciones en el espacio.
SMOS también ayuda a mejorar la precisión de las previsiones de banquisas, lo que ayuda a los operadores de tráfico marítimo a determinar las rutas más seguras y económicas a través del Paso del Noroeste o de la Ruta Marítima del Norte, por ejemplo, a medida que el grosor del hielo se va reduciendo por efecto del cambio climático.
Además, los archivos de datos de ambas misiones se han fusionado para generar información sobre la banquisa desde 2010. 
 
Cambios del hielo marino a partir de SMOS
 
Esto contribuirá enormemente a los estudios sobre este frágil componente de nuestro planeta y nos ayudará a comprender las variaciones anuales y el cambio climático.
El profesor Lars Kaleschke, de la Universidad de Hamburgo, lo explica así: “Es bueno ver cómo la información de dos tipos de mediciones pueden combinarse en un solo producto para hacer avanzar la ciencia y mejorar las aplicaciones funcionales”.
“Se ha demostrado que el uso de la información sobre el grosor del hielo de SMOS mejora los cálculos de los modelos y las previsiones. Resultará interesante ver cómo los modelos de las corrientes oceánicas y la temperatura del aire aprovecharán estos datos para ofrecer una mejor comprensión de la banquisa”. 
 

Artículos relacionados

Arctic freeze slows down
30 noviembre 2016
ESA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
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domingo, 18 de diciembre de 2016

ESA : Satellite cousins have ice covered .- Satélites primos tienen cubierto el hielo

http://www.esa.int/Our_Activities/Observing_the_Earth/SMOS/Satellite_cousins_have_ice_covered

Ice thickness from CryoSat and SMOS
 
16 December 2016
Although not designed to deliver information on ice, ESA’s Earth Explorer SMOS satellite can detect thin sea-ice. Since its cousin, CryoSat, is better at measuring thicker ice scientists have found a way of using these missions together to yield an even clearer picture of the changing Arctic.
Carrying a radiometer, SMOS was designed capture images of brightness temperature. While these images can be turned into information on soil moisture and ocean salinity to improve our understanding of the water cycle, it turns out that these data can also be used to measure sea ice.
In contrast, CryoSat carries a radar altimeter that measures freeboard of sea ice, which is the distance between the waterline and the top of the ice.
This is being used to work out how the thickness of sea ice is changing and, in addition, how the volume of Earth’s ice is being affected by the climate.
Despite the two missions being very different, scientists from the University of Hamburg and the Alfred Wegener Institute (AWI) in Germany, who are involved in both Earth Explorer missions, have found a way of combining data from both satellites to gain a more complete picture of changes in the thickness of ice floating in Arctic waters.
While the accuracy of measurements from CryoSat increases with increasing ice thickness, SMOS data are more accurate when the sea ice is relatively thin, less than about a metre.
 
Thin sea-ice

CryoSat measurements yield high-spatial resolution information and cover the Arctic every month. While SMOS offers daily images, they are a much coarser resolution than CryoSat.
Dr Robert Ricker from AWI said, “By combining ice-thickness estimates from CryoSat and SMOS, we obtain a more accurate and comprehensive view on the actual state of Arctic sea ice.
“Users need timely information across the entire Arctic and we can meet their needs by combing information from these two different, but complementary satellite missions.”
The University of Hamburg is already using SMOS to provide daily maps of Arctic sea-ice thickness during the winter. These maps are produced within 24 hours of the measurements being taken in space.
SMOS is also helping to improve the accuracy of sea-ice forecasts, which could help marine traffic operators to determine the safest and most economic routes through waters such as the Northwest Passage and the Northern Sea Route as the ice becomes thinner owing to climate change.
In addition, both missions’ archived data have been merged to generate information on thin sea-ice going back to 2010.
 
Sea-ice change from SMOS
 
This will make an important contribution to studies into the fragile component of the Earth system and help to understand annual variations and climate change.
Prof. Lars Kaleschke, from the University of Hamburg, emphasised, “It is good see how information from two different types of measurements can be combined into one product to advance science and improve operational applications.
“It has now been demonstrated that using ice thickness information from SMOS improves the model computations and forecasts. It will be interesting to see how ocean current and air temperature models will benefit from a better understanding of the sea-ice fields.”
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Arctic freeze slows down
30 November 2016
ESA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
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lunes, 12 de diciembre de 2016

ESA : Satellites track variations in Antarctica’s glacial retreat .-Los satélites rastrean variaciones en el retiro glacial antártico...........

http://www.esa.int/Our_Activities/Observing_the_Earth/CryoSat/Satellites_track_variations_in_Antarctica_s_glacial_retreat
                
                      
Variatons in glacial retreat
 
Satellites track variations in Antarctica’s glacial retreat
12 December 2016
Five satellites spanning two decades have revealed variations in the timing and pace of glacial retreat in West Antarctica. Some glaciers’ thinning spreads up to three times faster than on neighbouring tributarie, and was offset by decades.
The glaciers flowing into the Amundsen Sea have been drastically losing ice, likely due to rising sea temperatures recorded around Antarctica in recent decades.
The Pine Island Glacier is known to contribute more to rising sea levels than any other ice stream on the planet, and the neighbouring Thwaites and smaller Pope, Smith and Kohler Glaciers are also losing ice.
But the rate at which these glaciers are melting varies between them, despite their relative vicinity. Possible reasons for this include differences in glacier catchment size, bedrock, topography and hydrology.
 
 
What remains clear, however, is that over the past 25 years, all three have seen thinning from the grounding line – where the ice stream lifts up off the land and begins to float out over the ocean – across the glacier surface.
“Scientists generally agree that it is warm ocean water that melts the floating part of the glacier, which then allows the glacier to flow more easily because it’s no longer held back by the floating ice shelf. As the glacier flows faster, it starts to become thinner,” said Dr Hannes Konrad, lead author of the study published in Geophysical Research Letters.
“If there’s not enough snow and ice accumulating higher up to compensate, the glaciers lose more and more of their mass as they flow towards the sea, and that’s exactly what we are seeing here, but the detail varies considerably between the three systems, and even within each glacier.”
Using data dating back to 1992 from the ERS-1 mission, together with information from ERS-2, Envisat, CryoSat and NASA’s IceSat, scientists from the UK’s Centre for Polar Observation and Modelling reconstructed surface heights along a series of glacial flowlines to see how thinning at the grounding lines had been passed further inland.
In 1992, all three were already experiencing height loss at or near the grounding line, with Pine Island Glacier losing height by around 1 m every year – although  the interior surface was stable.
Thinning then spread steadily, first up the glacier’s main trunk, and then further inland.  While the pace at which it spread across the surface varied, rates of thinning reached up to 13 km/year.
 
Measuring freeboard
 
Changes at Thwaites Glacier were more erratic. The surface at the grounding line was already falling by up to 3 m/year in 1992, but thinning ceased around 2000.  In 2004, thinning continued and spread at similar rates to those seen at Pine Island Glacier, but the offset of about 10 years means that it did not spread as far inland.
The Pope, Smith and Kohler Glaciers experienced the largest falls in surface height of up to 7 m/year, most likely beginning before the data record. The thinning spread much more slowly than at Pine Island Glacier or Thwaites Glacier.
“As well as being able to routinely monitor the polar ice sheets as a whole, these results show the ability of satellites to pinpoint how individual glaciers are responding to environmental change,” said CPOM Director Professor Andy Shepherd.
“The next steps are to refine our calculations of ice loss and sea level rise from the Antarctic ice sheet as a whole, and, in turn, improve our models of what might happen in the future.”
The study is being presented today at the American Geophysical Union’s Fall Meeting held in San Francisco, USA.
ESA
Guillermo Gonzalo Sánchez Achutegui
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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.

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Guillermo Gonzalo Sánchez Achutegui
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viernes, 18 de noviembre de 2016

ESA : Probing Greenland’s ice sheet for future satellites .- Sondar la capa de hielo de Groenlandia para futuros satélites

http://www.esa.int/Our_Activities/Observing_the_Earth/The_Living_Planet_Programme/Campaigns/Probing_Greenland_s_ice_sheet_for_future_satellites

A desolate place to work
 
16 November 2016
With a helicopter the sole feature on the vast expanse of ice and her only way back to warmth and safety, polar scientist Anna Hogg must have thought, “What on Earth am I doing out here?” as she set to taking ice samples.
Anna and fellow scientist Andrew Shepherd, from the University of Leeds in the UK, spent two days extracting long cylindrical ice cores and using instruments to probe the ice sheet as part of an international effort to develop new space technology to monitor our changing polar environment.
Since it was launched in 2010, ESA’s CryoSat has been delivering vital information about how the thickness of Earth’s ice is changing. To do this, the satellite carries a radar altimeter, and now scientists want to find out if an altimeter working at two wavelengths would provide even better information in the future.
 
Monitoring the radar

So, as well as work on the ice, the experiment included taking measurements from an aircraft carrying two radar altimeters: one working at ‘Ka-band’ radio wavelengths less than 1 cm (8 mm) long and the other at ‘Ku-band’ around 2.2 cm.
While Anna and Andrew braved the cold down on the ice sheet, scientists from the Technical University of Denmark and Metasensing operated the complex radar instruments on the plane, focusing their attention on the precious data being collected as they flew back and forth across the ice sheet.
Henriette Skourup, in charge of the airborne measurements, said, “CryoSat relies on a Ku-band radar altimeter to map how the height of the ice caps change over time. Because it has a shorter wavelength, Ka-band penetrates the snow less and therefore provides useful complementary information on ice-sheet topography.
“By comparing airborne and ground data, the campaign will provide valuable feedback on the benefits we expect from Ka-band measurements.”
 
: First Ka-band data

Malcolm Davidson, ESA campaign coordinator, added, “Before any new space technology can be built, a huge effort goes into prototyping the measurements.
“In this case, we need to understand how a two-wavelength radar altimeter could offer continuity and improve the current single-wavelength measurements provided by CryoSat.
“The results from the campaign should help us, together with European space industry, to design future space missions to monitor polar regions.
“Earth’s ice is extremely vulnerable, so it is important that we investigate different ways it could be measured in the future.”
After some well-deserved rest, the campaign team are now busy processing and analysing the data they collected in Greenland and will have the first results before the end of the year.
 
Karen field campaign
ESA
Guillermo Gonzalo Sánchez Achutegui
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miércoles, 3 de julio de 2013

ESA - CryoSat maps largest-ever flood beneath Antarctica




Location of the crater in Victoria Land, East Antarctica at about 73ºS and 156ºE. The colour scale shows height derived from CryoSat data. The crater is located within the white box. 

 ESA’s CryoSat satellite has found a vast crater in Antarctica’s icy surface. Scientists believe the crater was left behind when a lake lying under about 3 km of ice suddenly drained.
Far below the thick ice sheet that covers Antarctica, there are lakes of fresh water without a direct connection to the ocean. These lakes are of great interest to scientists who are trying to understand water transport and ice dynamics beneath the frozen Antarctic surface – but this information is not easy to obtain.
One method is to drill holes through kilometres of ice to the water – a difficult endeavour in the harsh conditions of the polar regions.
But instead of looking down towards the ice, a team of European scientists is looking to the sky to improve our understanding of subglacial water and its transport.
By combining new measurements acquired by CryoSat with older data from NASA’s ICESat satellite, the team has mapped the large crater left behind by a lake, and even determined the scale of the flood that formed it.
3D view
From 2007 to 2008, six cubic kilometres of water – about the same amount that is stored in Scotland’s Loch Ness – drained from the lake, making it the largest event of its kind ever recorded.
That amount of water equals a tenth of the melting that occurs beneath Antarctica each year.
Since the end of 2008, the lake appears to be refilling but six times slower than it drained. It could take decades to reform.
The study, published recently in Geophysical Research Letters, highlights CryoSat’s unique capacity to map changes in Antarctica’s subglacial lakes in 3D, and sheds new light on events at the base of the ice sheet.
CryoSat carries a radar altimeter that can ‘see’ through clouds and in the dark, providing continuous measurements over areas like Antarctica that are prone to bad weather and long periods of darkness.
The radar can measure both the area and depth of ice craters in high resolution, allowing scientists to calculate its volume accurately.
ESA's ice mission
“Thanks to CryoSat, we can now see fine details that were not apparent in older satellite data records,” said Dr Malcolm McMillan from the UK’s University of Leeds and lead author of the study ‘Three-dimensional mapping by CryoSat-2 of subglacial lake volume changes’.
With every subglacial lake, there is hope of finding prehistoric marine life. The rapid draining and apparent refilling of this lake, however, suggests this was not the first time water has drained from the lake.
“It seems likely that the flood water – and any microbes or sediments it contained – has been flushed into the Southern Ocean, making it difficult to imagine that life in this particular lake has evolved in isolation,” said Prof. Andrew Shepherd, a co-author of the study.
About 400 lakes have been discovered at the base of the Antarctic ice sheet. When they drain, they disrupt subglacial habitats and can cause the ice above to slide more quickly into the sea.
 ESA
Guillermo Gonzalo Sánchez Achutegui
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