Showing posts with label Glaciers. Show all posts
Showing posts with label Glaciers. Show all posts

Saturday, June 7, 2014

Mount Kenya


Mount Kenya, the second-highest mountain in Africa, is pictured in this image from Japan’s ALOS satellite from 25 February 2011.

Standing just above 5000 m, this stratovolcano is one of many volcanoes in the East African Rift, an area where two tectonic plates are moving apart.

The mountain has 11 small glaciers but, like all glaciers on the high mountains of tropical Africa, they are rapidly retreating. Less snow accumulates during the winter than melts in the summer, and there is little to no formation of new ice. According to some predictions, there will no longer be any ice on the mountain in the next three decades.

The area around Mount Kenya is a national park protecting the biodiversity and forming an attractive destination for tourists, making it a key economic resource for the region. The area is home to monkeys, antelopes, elephants and leopards.

The Mount Kenya National Park and its natural forest has been an UNESCO World Heritage Site since 1997.

North of the mountain peak we can see a brown patchwork of fields, and a distinct line where the protected area ends and agriculture begins. In fact, a small portion of the park’s borders have fences and other barriers to keep animals within the reserve and off of the farmland.

In the upper right, there are large patches of light green, which are probably areas of failed agricultural development that now belong to the protected area.

Past threats from commercial tree plantations and other habitat destruction have been alleviated through long-term efforts, including the government’s policy of not converting any more natural forest for plantation development. But some areas that had been cleared but never planted are now colonized by grasses, and are being maintained as open grazing lands, rather than being allowed to revert to natural forest.

This image is featured on the Earth from Space video program.

Image credit: JAXA/ESA

Sunday, May 18, 2014

The 'Unstable' West Antarctic Ice Sheet: A Primer


Although the Amundsen Sea region is only a fraction of the whole West Antarctic Ice Sheet, the region contains enough ice to raise global sea levels by 4 feet (1.2 meters).

The new finding that the eventual loss of a major section of West Antarctica's ice sheet "appears unstoppable" was not completely unexpected by scientists who study this area. The study, led by glaciologist Eric Rignot at NASA's Jet Propulsion Laboratory, Pasadena, California, and the University of California, Irvine, follows decades of research and theory suggesting the West Antarctic Ice Sheet is inherently vulnerable to change.

Antarctica is so harsh and remote that scientists only began true investigation of its ice sheet in the 1950s. It didn't take long for the verdict on the West Antarctic Ice Sheet to come in. "Unstable," wrote Ohio State University glaciologist John Mercer in 1968. It was identified then and remains today the single largest threat of rapid sea level rise.

Why is West Antarctica's ice sheet considered "unstable"?

The defining characteristic of West Antarctica is that the majority of the ice sheet is "grounded" on a bed that lies below sea level.

In his 1968 paper, Mercer called the West Antarctic Ice Sheet a "uniquely vulnerable and unstable body of ice." Mercer based his statement on geologic evidence that West Antarctica's ice had changed considerably many, many millennia ago at times when the ice sheets of East Antarctica and Greenland had not.

In 1973, University of Maine researcher Terry Hughes asked the question that scientists continue to investigate today. The title of his paper: "Is The West Antarctic Ice Sheet Disintegrating?" In 1981, Hughes published a closer look at the Amundsen Sea region specifically. He called it "the weak underbelly of the West Antarctic ice sheet."

Here's the cause for concern: When the ice sheet is attached to a bed below sea level, ocean currents can deliver warm water to glacier grounding lines, the location where the ice attaches to the bed.

Scientists recognized that this is the first step in a potential chain reaction. Ocean heat eats away at the ice, the grounding line retreats inland and ice shelves lose mass. When ice shelves lose mass, they lose the ability to hold back inland glaciers from their march to the sea, meaning those glaciers can accelerate and thin as a result of the acceleration. This thinning is only conducive to more grounding line retreat, more acceleration and more thinning. In this equation, more ice flows to sea every year and sea level rises.

But that's not all.

Beginning with research flights in the 1960s that made radar measurements over West Antarctica, scientists began to understand that, inland of the ice sheet's edge, the bed slopes downward, precipitously, in some cases.

This downward, inland slope was theorized decades ago, but has been confirmed and mapped in detail in recent years by airborne campaigns such as NASA's Operation IceBridge. In some spots the bed lies more than a mile and a half below sea level. The shape of this slope means that when grounding lines start to retreat, ocean water can infiltrate between the ice and the bed and cause the ice sheet to float off its grounding line.

Why is the Amundsen Sea region more at risk than other parts of West Antarctica?

In addition to the ice sheet being grounded below sea level, there are three main reasons. First, the glaciers here lack very large ice shelves to stem ice flow. Second, they aren't "pinned" by obstructions in their beds except in a few small places, unlike the Ronne and Ross shelves which are pinned down by large islands. Third, as first observed in the 1990s, the area is vulnerable to a regional ocean current, ushered in by the shape of the sea floor and the proximity of the circumpolar deep current. This current delivers warm water to grounding lines and the undersides of ice shelves in the region.

The pace and magnitude of the changes observed in this region match the expectation that Amundsen Sea embayment glaciers should be less stable than others. In some cases, the changes have outstripped expectations.

Pine Island and Thwaites glaciers have experienced significant flow acceleration since the 1970s. Both saw the center of their grounding lines retreat dramatically. From 1992 to 2011, Pine Island's grounding line retreated by 19 miles (31 kilometers) while the center of the Thwaites grounding line retreated by nearly 9 miles (14 kilometers). Annual ice discharge from this region as a whole has increased 77 percent since 1973.

What would a loss of the Amundsen Sea region mean for sea level rise?

Even as Rignot and colleagues suggest that loss of the Amundsen Sea embayment glaciers appears inevitable, it remains extremely difficult to predict exactly how this ice loss will unfold and how long it will take. A conservative estimate is that it could take several centuries.

The region contains enough ice to raise global sea levels by 4 feet (1.2 meters). The most recent U.N. Intergovernmental Panel on Climate Change (IPCC) report estimates that by 2100, sea level will rise somewhere from just less than 1 foot to about 3 feet (26 to 98 centimeters). But the vast majority of these projections do not take into account the possibility of major ice loss in Antarctica. Rignot said this new study suggests sea level rise projections for this century should lean toward the high-end of the IPCC range.

The Amundsen Sea region is only a fraction of the whole West Antarctic Ice Sheet, which if melted completely would raise global sea level by about 16 feet (5 meters).

What are NASA and other science agencies doing to better understand this vulnerable region and its potential impact on global sea level?

To better understand how this section of the ice sheet has changed in recent decades, scientists from NASA and research institutions around the world have made field campaigns to the region and used every airborne and spaceborne tool at their disposal, including NASA satellites and those launched by space agencies in Europe, Japan and Canada.

The National Science Foundation has funded major field campaigns to West Antarctica, including POLENET, which place Global Positioning System (GPS) stations in the area to measure geological changes. A campaign to the Pine Island Glacier ice shelf led by NASA glaciologist Bob Bindschadler measured variables such as water temperature and melting rate at the underside of the ice shelf.

NASA's Operation IceBridge, which began in 2009, continues to fly one extended research campaign over Antarctica each year. IceBridge flights put multiple scientific instruments over key regions of the ice sheet to measure glacier thinning, the shape of the bed and other factors.

In 2017, NASA will launch ICESat-2, the follow-up mission to ICESat, which operated from 2003 to 2009. ICESat-2 will use laser altimetry to make precise measurements of glacier heights. Combined with the ICESat and IceBridge data records, the ICESat-2 measurements will allow for a continuous record of year-over-year change in some of the most remote regions of the world.

Image credit: NASA/GSFC/SVS

Note: For more information, see West Antarctic Glacier Loss Appears Unstoppable.

Thursday, May 15, 2014

Mount Huascarán, Peru


The snow-capped mountains running through the center of this satellite image are part of the Cordillera Blanca – or ‘white range’ – in South America’s Andes. Even though they are part of the typically warm Tropics – the region of Earth surrounding the equator – the mountain range is high enough to be permanently covered in snow and ice.

There are hundreds of glaciers in this range, providing a major source of water for irrigation and hydroelectric power. The glaciers and snow-covered areas ‘collect’ rain and snow during the rainy season and slowly release it during the drier times of the year. Over the last decades, the glaciers have experienced major losses owing to climate change, causing a major threat to water supply during the dry season in the future.

Located near the center of this image, Mount Huascarán is the highest peak in Peru at 6768 m. The summit is one of the farthest points from Earth’s center, meaning it experiences the lowest gravity on the planet.

North of Huascarán, we can see an outlet glacier that meets another outlet from the Chopicalqui mountain to the east. Numerous blue glacial lakes are visible in the valleys between the mountains.

The Huascarán National Park protects this mountainous area, and has been on the UNESCO world heritage list since 1985. The spectacled bear, puma, mountain cat, white-tailed deer and vicuna are important indigenous species, but have all been heavily hunted in the past.

This image, acquired by Japan’s ALOS satellite on 24 August 2010, is featured on the Earth from Space video program.

Image credit: JAXA/ESA

Thursday, April 17, 2014

Pine Island and Thwaites Glaciers, Antarctica


Acquired on 13 April 2014 at 09:03 GMT (11:03 CEST) this image covers parts of Pine Island Glacier and Thwaites Glacier in West Antarctica. This image is among the first from Sentinel-1A, which was launched on 3 April. It was acquired in ‘Interferometric Wide Swath’ mode with a swath width of 250 km and in single polarization. With Pine Island Glacier in a state of irreversible retreat, the Sentinel-1 mission is set to be an excellent tool for monitoring such glaciers as well as for providing timely information on many other aspects of the polar regions, such as sea ice and icebergs.

Image credit: ESA

Saturday, March 29, 2014

Pine Island Glacier Retreat


Pine Island is the largest glacier in the West Antarctic Ice Sheet and one of the fastest ice streams on the continent, flowing into Pine Island Bay in the Amundsen Sea. Ten percent of the West Antarctic Ice Sheet drains out to the sea by way of this glacier. Radar data from the two ERS missions show that from 1992–2011 the glacier thinned by about 200 m, and its grounding line retreated up to 40 km. This animation is based on data from the of the STSE-GreenSAR project.

Video credit: Planetary Visions / University of Edinburgh / University of Leeds / ESA

Saturday, March 15, 2014

Imja Glacier, Himalayas, Nepal


This satellite image shows an area of the Himalaya mountain range in northeastern Nepal, about 8 km south of Mount Everest (not pictured).

The Himalayas are the world’s highest mountain range and home to the world’s highest peak, Mt Everest (about 8850 m), as well as dozens of other peaks over 7000 m high. These high peaks are covered permanently with snow.

The range is also home to thousands of glaciers, including the Imja glacier in the upper-central part of this image. Studies have shown an increase in the rate of glacial retreat for Imja and many other glaciers in the region – and in the world.

Glaciers are the largest reservoirs of freshwater on our planet, and their melting or growing is one of the best indicators of climate change. Satellite radar data can help monitor changes in glacier mass and, subsequently, their contribution to rising sea levels.

Glacial runoff from the Himalayas has a direct effect on the nearby rivers such as the Indus and Ganges, and is very important for lower-lying regions where there is a very large human population.

At the foot of the Imja glacier is the Imja lake, pictured in the upper-left. Melt-water makes this one of the fastest growing lakes in the Himalayas, and a threat to downstream communities.

This image, also featured in the Earth from Space video program, was acquired by the Kompsat-2 satellite on 14 January 2013.

Photo credit: KARI/ESA

Wednesday, January 29, 2014

Hofsjökull Ice Cap, Iceland


This image shows a small part of the Hofsjökull ice cap in Iceland, which encompasses several glaciers. The fan at upper left is part of a glacier called Mûlajökul.


The above map shows the flight path (red lines) for a single flight to map flow speeds across two ice caps with the UAVSAR instrument. Each five-hour flight will follow this same complicated path for optimal coverage. The ice caps appear in white in the center of the tangled flight lines; Langjökull is west (left) of Hofsjökull. Keflavik International Airport is on the peninsula in the southwest.

A high-precision radar instrument from NASA's Jet Propulsion Laboratory, Pasadena, California, left Southern California for Iceland today to create detailed maps of how glaciers move in the dead of winter. This will help scientists better understand some of the most basic processes involved in melting glaciers, which are major contributors to rising sea levels.

Photo and map credit: Caltech

Note: For more information, see NASA Radar Maps the Winter Pace of Iceland's Glaciers.

Saturday, December 21, 2013

Westfjords Peninsula, Iceland


This Envisat image was acquired over the Westfjords peninsula in northwest Iceland.

Located in the North Atlantic Ocean east of Greenland and immediately south of the Arctic Circle, Iceland is the westernmost European nation, and has more land covered by glaciers than the whole of continental Europe. The country sits on the mid-Atlantic Ridge, where two tectonic plates are moving away from each other, causing strong geothermal and volcanic activity.

The grey area that is somewhat shaped like a Christmas tree is land, while the colorful spaces between the 'branches' are long fjords – long, narrow arms of the sea that stretch far inland.

During the ice ages both ice and rivers carved deep valleys in the mountains. As the climate changed, most of the ice melted, and the valleys were gradually filled with salt water from the coast, giving birth to the fjords.

The white dots along one of the fjords close to the center of the image are radar reflections from Westfjords peninsula’s largest town, Ísafjörður. More radar reflections from other towns can also be seen scattered along the coastline.

This image, also featured in the Earth from Space video program, was created by combining three Envisat radar acquisitions from 11 September 2004, 14 April 2007 and 3 May 2008 over the same area.

Image credit: ESA

Saturday, December 7, 2013

Totten Glacier Ice Shelf


This image shows the Totten Glacier ice shelf in East Antarctica (the wrinkled white area at top left) on September 25, 2013. Two large open-water polynyas appear on the sea ice below and to the right of the shelf, as well as several smaller ones. The open-water areas are bright black. The stippled diagonal line from lower left to upper right is the outer edge of the sea ice, with cloud cover to the right of that line. The image is from the Moderate Resolution Imaging Spectroradiometer instrument on NASA's Aqua satellite.

Photo credit: NASA

Note: For more information, see NASA Finds Reducing Salt Is Bad for Glacial Health.

Saturday, December 22, 2012

Kangerdlugssuaq Glacier, Greenland


The Kangerdlugssuaq glacier and its ice stream are pictured in this week’s image, acquired on 19 September 2012 by Landsat-7. It is the largest outlet glacier on Greenland’s east coast, discharging ice into the surrounding oceans. In this image we can see hundreds of icebergs speckling the water. A recent study based on satellite observations revealed that over the past 20 years the ice melting in Greenland and Antarctica has contributed about 11 mm to the global sea-level rise. This image clearly shows the glacier’s calving front, where ice breaks away. Over the years, satellite images have shown that this front has retreated – an indication that the glacier is getting smaller over time.

This image is featured on the Earth from Space video program.

Photo credit: USGS/ESA

Sunday, July 22, 2012

Petermann Glacier


The Petermann Glacier grinds and slides toward the sea along the northwestern coast of Greenland, terminating in a giant floating ice tongue. Like other glaciers that end in the ocean, Petermann periodically calves icebergs. A massive iceberg, or ice island, broke off of the Petermann Glacier in 2010. Now, nearly two years later, another chunk of ice has broken free.

The Moderate Resolution Imaging Spectroradiometer, or MODIS, on NASA’s Aqua satellite observed the new iceberg calving and drifting downstream on July 16–17, 2012. Because Aqua is a polar-orbiting satellite, it makes multiple passes over the polar regions each day.

Photo credit: NASA

Sunday, June 10, 2012

A Crack on Pine Island Glacier


This Envisat image shows the Pine Island Glacier in West Antarctica and reveals a crack in the glacier’s tongue about 25 km long. The image was acquired by Envisat’s radar on 6 April 2012, just two days before contact with the satellite was lost.

Photo credit: ESA

Monday, April 16, 2012

Greenland Coast


The west coast of Greenland is one of Earth's premiere incubators for icebergs, large blocks of land ice that break off from glaciers or ice shelves and float in the ocean, where they are transported by winds and currents and can pose potential threats to shipping. The Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) instrument on NASA's Terra spacecraft captured this image of icebergs off the west coast of Greenland, on July 17, 2005. The largest iceberg in the image, seen in the top center of the image coming off of a glacier, is about 4,128 feet (1,270 meters) in length. The image covers an area of 26.8 by 29.3 miles (43.2 by 47.2 kilometers), and is located at 74.6 degrees north latitude, 56.7 degrees west longitude. The reddish color on land is vegetation.

Photo credit: NASA/GSFC/METI/ERSDAC/JAROS, and U.S./Japan ASTER Science Team