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Showing posts with label Arctic Ocean Observatory. Show all posts
Showing posts with label Arctic Ocean Observatory. Show all posts

Monday, May 26, 2014

Trillions of Plastic Pieces May Be Trapped in Arctic Ice

Published in Science AAAS by
Missing waste. Ice cores taken from the Arctic Ocean contain small pieces of plastic, such as this blue piece of polypropylene (inset).
D. K. Perovich/CRREL; (inset) S. Sadri/R. C. Thompson/Plymouth University
Missing waste. Ice cores taken from the Arctic Ocean contain small pieces of plastic, such as this blue piece of polypropylene (inset).
Humans produced nearly 300 million tons of plastic in 2012, but where does it end up? A new study has found plastic debris in a surprising location: trapped in Arctic sea ice. As the ice melts, it could release a flood of floating plastic onto the world.

Scientists already knew that microplastics—polymer beads, fibers, or fragments less than 5 millimeters long—can wind up in the ocean, near coastlines, or in swirling eddies such as the Great Pacific Garbage Patch. But Rachel Obbard, a materials scientist at Dartmouth College, was shocked to find that currents had carried the stuff to the Arctic.

In a study published online this month in Earth’s Future, Obbard and her colleagues argue that, as Arctic ice freezes, it traps floating microplastics—resulting in abundances of hundreds of particles per cubic meter. That’s three orders of magnitude larger than some counts of plastic particles in the Great Pacific Garbage Patch. “It was such a surprise to me to find them in such a remote region,” she says. “These particles have come a long way.”

The potential ecological hazards of microplastics are still unknown. But the ice trap could help solve a mystery: Industrial plastic production has increased markedly in the last half-century, reaching 288 million tonnes in 2012, according to Plastics Europe, an industry association. But ecologists have not been able to account for the final disposition of much of it.

The paper shows that sea ice could be an important sink—albeit one that is melting, says Kara Lavender Law, an oceanographer at the Sea Education Association in Woods Hole, Massachusetts, who was not part of the study. “There could be freely floating plastics, in short order.” The authors estimate that, under current melting trends, more than 1 trillion pieces of plastic could be released in the next decade.

Obbard and her colleagues based their counts on four ice cores gathered during Arctic expeditions in 2005 and 2010. The researchers melted parts of the cores, filtered the water, and put the sediments under a microscope, selecting particles that stood out because of their shape or bright color.

The particles’ chemistry was then determined by an infrared spectrometer. Most prevalent among the particles was rayon (54%), technically not a synthetic polymer because it is derived from natural cellulose. The researchers also found polyester (21%), nylon (16%), polypropylene (3%), and 2% each of polystyrene, acrylic, and polyethylene.

Co-author Richard Thompson, a marine biologist at the University of Plymouth in the United Kingdom, says it’s difficult to pinpoint the source of these materials. Rayon, for instance, can be found in clothing, cigarette filters, and diapers.

Abundances are likely to grow as scientists learn to sift more finely. Law points out that microplastic estimates for the Great Pacific Garbage Patch are based on phytoplankton nets that catch only particles bigger than 333 microns.

Obbard, who used a much smaller 0.22 micron filter, says she still probably missed many particles herself; searching by eye, she easily could have missed brownish or clear plastic particles that were masquerading as sand grains.

What is the consequence of all this plastic floating around? At this point, it is hard to say. Plastic is chemically inert. But the plastic can absorb organic pollutants in high concentrations, says Mark Browne, an ecologist at the University of California, Santa Barbara.

Browne has performed laboratory experiments with marine organisms showing not only how the microplastics can be retained in tissues, but also how pollutants might be released upon ingestion.

“We’re starting to worry a bit more,” he says

Friday, October 26, 2012

Plastic trash invades arctic seafloor

Posted By Megan Gannon, News Editor /Livescience.com/ October 25, 2012 on CBS News.com


Plastic bags strangling sea sponges. Beer bottles colonized by sea lilies. Such images of ocean pollution aren't usually associated with the remote, icy waters of the Arctic, but snapshots of the seafloor suggest the northern region is becoming increasingly littered with plastic.

Scientists regularly drag an underwater camera just above the sea bed during expeditions to HAUSGARTEN, a deep-sea Arctic observatory in the eastern Fram Strait, between Greenland and Norway's Svalbard archipelago. The photos it takes are usually analyzed for the presence of sea cucumbers, fish, shrimp and other large inhabitants, which could indicate changes in Arctic biodiversity. But the camera sometimes catches unwelcome guests: plastic bags and other trash resting on the seafloor.

"The study was prompted by a gut feeling," said researcher Melanie Bergmann in a statement. "When looking through our images I got the impression that plastic bags and other litter on the seafloor were seen more frequently in photos from 2011 than in those dating back to earlier years. For this reason I decided to go systematically through all photos from 2002, 2004, 2007, 2008 and 2011."

Bergmann, a biologist with the Alfred Wegener Institute for Polar and Marine Research, found waste in 1 percent of the pictures from 2002 and 2 percent in the 2011 images, marking a twofold increase over the decade. The sharpest rise in garbage occurred between 2007 and 2011, according to the study of more than 2,000 images.

Two percent is a high figure for a region thought to be one of the most secluded on the planet, the researchers said. Bergmann pointed out that they recorded more garbage in their study than was observed in a deep-sea canyon not far from the industrialized Portuguese capital Lisbon.

Almost 70 percent of the litter in the pictures was in contact with deep-sea organisms, the researchers said, warning that garbage can injure creatures like sea sponges and impair their ability to breathe and absorb food. Moreover, chemicals in plastic can have toxic effects and alter gas exchange on the seafloor.

Plastic even poses a threat when it's no longer visible to the naked eye. Earlier studies have demonstrated how plastic that has broken down into microscopic particles can soak up pollutants such as polychlorinated biphenyls, or PCBs. When ingested by tiny ocean animals, these toxin-loaded plastic particles contaminate the food chain.

On a positive note, waste could provide a good surface for some organisms to latch on to and flourish, but researchers are not sure how this would affect the deep-sea composition of species and biodiversity in the region.

The scientists, whose study appears online this month in the journal Marine Pollution Bulletin, pointed to melting sea ice and increasing ship traffic in the Arctic as possible causes for the rise in plastic.

"The Arctic sea ice cover normally acts as a natural barrier, preventing wind blowing waste from land out onto the sea, and blocking the path of most ships," Bergmann explained. "Ship traffic has increased enormously since the ice cover has been continuously shrinking and getting thinner. We are now seeing three times the number of private yachts and up to 36 times more fishing vessels in the waters surrounding Spitsbergen compared to pre-2007 times."

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