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New study reveals strong El Nino events cause large changes in Antarctic ice shelves
by Staff Writers
San Diego CA (SPX) Jan 09, 2018


Unusual weather accelerates Arctic sea ice loss
Washington (UPI) Jan 16, 2018 - New research suggests weather anomalies are to blame for intense periods of accelerating Arctic sea ice loss.

While research has confirmed links between global warming, rising Arctic temperatures and ongoing sea ice loss, variability remains. A pair of new studies conducted by Swiss scientists suggests unusual weather patterns account for the variability.

Most recently, researchers were able to show a strong link between high pressure systems and accelerated ice melting during the summers of 2007 and 2012.

While summer sea ice minimums in the Arctic have been on the general decline for several decades, 2007 and 2012 featured extreme melting. Scientists have struggled to account for the outliers

When scientists compared regional weather patterns with periods of accelerated melting during the two summers, they found low pressure systems over the North Atlantic and North Pacific triggered the injection of air masses into the Arctic atmosphere. The injections raised the height of the tropopause, the boundary layer separating the troposphere and stratosphere. The influx of air caused high pressure systems to develop below, causing several days of cloudless skies.

The unusual weather allowed solar radiation to melt the sea ice nonstop for nearly two weeks. During the studied periods of high pressure, sea ice receded and thinned at accelerated rates.

"The level of solar radiation is the main factor in the melting of the ice in summer," Heini Wernli, an atmospheric scientist at ETH Zurich, said in a news release.

Wernli and his colleagues published their findings this week in the journal Nature Geoscience.

Wernli also led an investigation of melting during a recent Arctic winter. In winter, Arctic sea ice grows. Its size is a product of the previous summer's melting rates and growth rates during the winter.

But in the winter of 2015 and 2016, at the end of December, temperatures rose above freezing for several days. Scientists determined that a rare combination of air currents delivered unusually warm air to the region. One of the air masses was heated by compression, while another was heated by the warmth of the ocean. A third air mass delivered already warm, surface-level air from the Sahara.

"It's extremely rare for warm, near-surface subtropical air to be transported as far as the Arctic," said Hanin Binder, a doctoral student at ETH Zurich.

A unique pattern of high and low pressure systems among the middle latitudes created unique atmospheric highway systems, funneling the air masses toward the Arctic at high speeds.

"These weather conditions and their effect on the sea ice were really exceptional," said Binder.

While scientists say global warming is to blame for longterm melting trends in the Arctic, it's not clear what role climate change played in the unique circumstances studied by Wernli and Binder.

"We only carried out an analysis of a single event -- we didn't research the long-term climate aspects" Binder said.

A new study published Jan. 8 in the journal Nature Geoscience reveals that strong El Nino events can cause significant ice loss in some Antarctic ice shelves while the opposite may occur during strong La Nina events.

El Nino and La Nina are two distinct phases of the El Nino/Southern Oscillation (ENSO), a naturally occurring phenomenon characterized by how water temperatures in the tropical Pacific periodically oscillate between warmer than average during El Ninos and cooler during La Ninas.

The research, funded by NASA and the NASA Earth and Space Science Fellowship, provides new insights into how Antarctic ice shelves respond to variability in global ocean and atmospheric conditions.

The study was led by Fernando Paolo while a PhD graduate student and postdoc at Scripps Institution of Oceanography at the University of California San Diego. Paolo is now a postdoctoral scholar at NASA's Jet Propulsion Laboratory.

Paolo and his colleagues, including Scripps glaciologist Helen Fricker, discovered that a strong El Nino event causes ice shelves in the Amundsen Sea sector of West Antarctica to gain mass at the surface and melt from below at the same time, losing up to five times more ice from basal melting than they gain from increased snowfall. The study used satellite observations of the height of the ice shelves from 1994 to 2017.

"We've described for the first time the effect of El Nino/Southern Oscillation on the West Antarctic ice shelves," Paolo said.

"There have been some idealized studies using models, and even some indirect observations off the ice shelves, suggesting that El Nino might significantly affect some of these shelves, but we had no actual ice-shelf observations. Now we have presented a record of 23 years of satellite data on the West Antarctic ice shelves, confirming not only that ENSO affects them at a yearly basis, but also showing how."

The opposing effects of El Nino on ice shelves - adding mass from snowfall but taking it away through basal melt - were at first difficult to untangle from the satellite data.

"The satellites measure the height of the ice shelves, not the mass, and what we saw at first is that during strong El Ninos the height of the ice shelves actually increased," Paolo said.

"I was expecting to see an overall reduction in height as a consequence of mass loss, but it turns out that height increases."

After further analysis of the data, the scientists found that although a strong El Nino changes wind patterns in West Antarctica in a way that promotes flow of warm ocean waters towards the ice shelves to increase melting from below, it also increases snowfall particularly along the Amundsen Sea sector. The team then needed to determine the contribution of the two effects. Is the atmosphere adding more mass than the ocean is taking away or is it the other way around?

"We found out that the ocean ends up winning in terms of mass. Changes in mass, rather than height, control how the ice shelves and associated glaciers flow into the ocean," Paolo said. While mass loss by basal melting exceeds mass gain from snowfall during strong El Nino events, the opposite appears to be true during La Nina events.

Over the entire 23-year observation period, the ice shelves in the Amundsen Sea sector of Antarctica had their height reduced by 20 centimeters (8 inches) a year, for a total of 5 meters (16 feet), mostly due to ocean melting. The intense 1997-98 El Nino increased the height of these ice shelves by more than 25 centimeters (10 inches).

However, the much lighter snow contains far less water than solid ice does. When the researchers took density of snow into account, they found that ice shelves lost about five times more ice by submarine melting than they gained from new surface snowpack.

"Many people look at this ice-shelf data and will fit a straight line to the data, but we're looking at all the wiggles that go into that linear fit, and trying to understand the processes causing them," said Fricker, who was Paolo's PhD adviser at the time the study was conceived.

"These longer satellite records are allowing us to study processes that are driving changes in the ice shelves, improving our understanding on how the grounded ice will change," Fricker said.

"The ice shelf response to ENSO climate variability can be used as a guide to how longer-term changes in global climate might affect ice shelves around Antarctica," said co-author Laurie Padman, an oceanographer with Earth and Space Research, a nonprofit research company based in Seattle.

"The new data set will allow us to check if our ocean models can correctly represent changes in the flow of warm water under ice shelves," he added.

Melting of the ice shelves doesn't directly affect sea level rise, because they're already floating. What matters for sea-level rise is the addition of ice from land into the ocean, however it's the ice shelves that hold off the flow of grounded ice toward the ocean.

Understanding what's causing the changes in the ice shelves "puts us a little bit closer to knowing what's going to happen to the grounded ice, which is what will ultimately affect sea-level rise," Fricker said.

"The holy grail of all of this work is improving sea-level rise projections," she added.

Research paper

ICE WORLD
In Antarctic dry valleys, early signs of climate change-induced shifts in soil
Fort Collins CO (SPX) Jan 09, 2018
In a study spanning two decades, a team of researchers led by Colorado State University found declining numbers of soil fauna, nematodes and other animal species in the McMurdo Dry Valleys, one of the world's driest and coldest deserts. This discovery is attributed to climate change, which has triggered melting and thawing of ice in this desert since an uncharacteristically warm weather event in ... read more

Related Links
University of California - San Diego
Beyond the Ice Age


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