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

viernes, 1 de abril de 2016

NSF : Press Release 16-032 .- Ocean temperatures predict U.S. heat waves 50 days out .- Las temperaturas del océano predijeron olas de calor de Estados Unidos 50 días fuera..............

Hola amigos: A VUELO DE UN QUINDE EL BLOG., La formación de un patrón distinto de las temperaturas superficiales del mar en el medio del Océano Pacífico Norte puede predecir un mayor riesgo de olas de calor del verano en la mitad oriental de los EE.UU. hasta 50 días de antelación.
El patrón es un contraste de más cálido que el promedio de agua procedentes de mares fríos en contra de lo normal. Cuando aparece, las probabilidades de que el calor extremo se huelga durante una semana en particular - o incluso en un día en particular - puede más que el triple, dependiendo de lo bien formado es el patrón.
Los hallazgos fueron publicados en la revista Nature Geoscience. El autor principal es el científico Karen McKinnon, del Centro Nacional de Investigación Atmosférica (NCAR) en Boulder, Colorado.
"Olas de calor del verano se encuentran entre los fenómenos meteorológicos más mortales, y pueden tener grandes efectos sobre la agricultura, el uso de energía y otros aspectos críticos de la sociedad", dijo McKinnon. "Si podemos dar a los planificadores urbanos y los agricultores un mano a mano que el calor extremo se encuentra en el camino, que podría ser capaz de evitar algunas de las peores consecuencias."
More information.........
Pacific pattern forms in advance of hot days in eastern U.S.

cars in traffic on a highway and a big sun
Scientists have found a way of predicting an increased chance of a summer heat wave.
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March 28, 2016
This is part 14 in a series on NSF's geosciences risk and resilience interest area. Please see parts one, two, three, four, five, six, seven, eight, nine, 10, 11, 12, 13 and 15.
The formation of a distinct pattern of sea surface temperatures in the middle of the North Pacific Ocean can predict an increased chance of summer heat waves in the eastern half of the U.S. up to 50 days in advance.
The pattern is a contrast of warmer-than-average water coming up against cooler-than-average seas. When it appears, the odds that extreme heat will strike during a particular week -- or even on a particular day -- can more than triple, depending on how well-formed the pattern is.
The findings were published today in the journal Nature Geoscience. The lead author is scientist Karen McKinnon of the National Center for Atmospheric Research (NCAR) in Boulder, Colorado.
"Summertime heat waves are among the deadliest weather events, and can have big effects on farming, energy use and other critical aspects of society," said McKinnon. "If we can give city planners and farmers a heads-up that extreme heat is on the way, we might be able to avoid some of the worst consequences."
In addition to McKinnon, the research team includes Andrew Rhines of the University of Washington, Martin Tingley of Pennsylvania State University and Peter Huybers of Harvard University.
"This intriguing result has enormous practical implications," said Candace Major, program director in the National Science Foundation (NSF) Division of Ocean Sciences, which funded the research along with NSF's Division of Atmospheric and Geospace Sciences. "The potential for predicting the risk of dangerous heat waves more than a month in advance is very exciting. With more time to prepare, communities have a greater chance of avoiding the serious economic and health consequences of weather extremes."
 
A fingerprint on the ocean
 
For the study, the scientists divided the country into regions that tend to experience extreme heat at the same time. They then focused on the largest of the resulting blocks: a swath that stretches across much of the Midwest and up the East Coast, encompassing important agricultural areas and heavily populated cities.
The researchers looked for a relationship between global sea surface temperature anomalies -- waters warmer or cooler than average -- and extreme heat in the eastern half of the U.S.
A pattern popped out in the middle of the Pacific, above a point roughly 20 degrees north latitude. The scientists could find the particular configuration of ocean water temperatures, which they named the Pacific Extreme Pattern, not only when the eastern U.S. was already hot, but also in advance of that heat.
"Whatever mechanisms ultimately lead to the heat wave also leave a fingerprint of sea surface temperature anomalies behind," McKinnon said.
 
Improving seasonal forecasts
 
To test how well that activity could predict future heat, the scientists used data collected from 1,613 weather stations across the eastern U.S. between 1982 and 2015, as well as daily sea surface temperatures from the same time period.
The researchers defined extreme heat in the eastern U.S. as a summer day when the temperature readings from the warmest 5 percent of weather stations in the region were at least 6.5 degrees Celsius (11.7 degrees Fahrenheit) hotter than average. They only examined extreme heat during that region's 60 hottest days of the year: June 24 through Aug. 22.
The scientists "hindcasted" each year in the data set to see if they could retrospectively predict extreme heat events -- or the lack of those events -- during that year's summer.
At 50 days out, they were able to predict an increase in the odds -- from about one-in-six to about one-in-four -- that a heat wave would strike somewhere in the eastern U.S. during a given week.
For a particularly well-formed pattern, at 30 days out or closer the scientists were able to predict that a heat wave would strike on a particular day at odds of better than one-in-two.
This new technique could improve existing seasonal forecasts, which do not focus on predicting daily extremes. Seasonal forecasts typically predict whether an entire summer is expected to be warmer than normal, normal, or cooler than normal.
For example, the seasonal forecast issued for the summer of 2012 predicted normal heat for the Northeast and Midwest. But the summer ended up being especially hot, thanks to three major heat waves that struck in late June, mid-July and late July.
When the research team used the Pacific Extreme Pattern to hindcast 2012, they were able to determine as early as mid-May increased odds of extremely hot days occurring in late June.
The hottest day of the summer of 2012, as measured by the technique used for this study, was June 29, when the warmest 5 percent of weather stations recorded temperatures that were 10.4 degrees Celsius (18.7 degrees Fahrenheit) above average.
"We found that we could go back as far as seven weeks and still predict an increase in the odds of future heat waves," McKinnon said. "What's exciting about this is the potential for long-range predictions of individual heat waves that give society far more notice than current forecasts."
 
Looking ahead
 
Scientists don't yet know why the fingerprint of sea surface temperatures in the Pacific predicts heat on the East Coast.
It could be that the sea surface temperatures themselves kick off weather patterns that cause the heat. Or it could be that they are both different results of the same phenomenon, but one does not cause the other.
To learn more about how the two are connected, McKinnon is working with colleagues at NCAR to use sophisticated computer models to try to tease apart what's happening.
The study's findings also point to the possibility that the Pacific Extreme Pattern, or a different oceanic fingerprint, could be used to forecast other weather events far in advance, including cooler-than-average days and extreme rainfall events.
"The results suggest that the state of the mid-latitude ocean may be a previously overlooked source of predictability for summer weather," McKinnon said.
-NSF-
Media Contacts Cheryl Dybas, NSF, (703) 292-7734,
cdybas@nsf.gov
David Hosansky, NCAR, (303) 497-8611,
hosansky@ucar.edu


The National Science Foundation (NSF) is an independent federal agency that supports fundamental research and education across all fields of science and engineering. In fiscal year (FY) 2016, its budget is $7.5 billion. NSF funds reach all 50 states through grants to nearly 2,000 colleges, universities and other institutions. Each year, NSF receives more than 48,000 competitive proposals for funding and makes about 12,000 new funding awards. NSF also awards about $626 million in professional and service contracts yearly.
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map of United States showing different temperatures in 2012
June 29, 2012, was the hottest day of the year in the eastern U.S.
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map showing the Pacific region with highlight of area with abnormal temperatures
Sea surface temperature anomalies in the mid-latitude Pacific 50 days out from June 29, 2012.
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heat map of the Chicago skyline
The summer of 2012 was a scorcher. Three heat waves struck the U.S.
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Heat waves affect energy use, farming and other aspects of society.
Heat waves affect energy use, farming and other aspects of society.
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Grasses become sere and brown in the baking summer sun.
Grasses become sere and brown in the baking summer sun.
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The National Science Foundation (NSF)
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
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martes, 9 de septiembre de 2014

nsf.gov - National Science Foudation - Ocean Acidification: NSF awards $11.4 million in new grants to study effects on marine ecosystems


Oceans may be acidifying faster today than in the past 300 million years

Coral reefs
Coral reefs' ability to adapt to acidifying waters is the focus of an ocean acidification grant.
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September 9, 2014
With increasing levels of carbon dioxide accumulating in the atmosphere and moving into marine ecosystems, the world's oceans are becoming more acidic.
The oceans may be acidifying faster today than at any time in the past 300 million years, scientists have found.
To address concerns for acidifying oceans, the National Science Foundation (NSF) has awarded new grants totaling $11.4 million through its Ocean Acidification program. The awards are supported by NSF's Directorates for Geosciences and Biological Sciences.
From tropical oceans to icy seas, the projects funded will foster research on the nature, extent and effects of ocean acidification on marine environments and organisms.
"The Ocean Acidification program at NSF has been wonderfully successful," says David Garrison, program director in NSF's Division of Ocean Sciences.
"We're seeing exciting results from earlier funding, and looking forward to similarly productive research from the current group of awardees."
Ocean acidification affects marine ecosystems, organisms' life histories, ocean food webs, and biogeochemical cycling, scientists have discovered.
Researchers believe there is a need to understand the chemistry of ocean acidification and its interplay with marine biochemical and physiological processes before Earth's seas become inhospitable to life as it is known today.
Animal species from pteropods--delicate, butterfly-like planktonic drifters--to hard corals are affected by ocean acidification. So, too, are the unseen microbes that fuel ocean productivity and influence the chemical functioning of ocean waters.
As the oceans become more acidic, the balance of molecules needed for shell-bearing organisms to manufacture shells and skeletons is altered.
The physiology of many marine species, from microbes to fish, may be affected. A myriad of chemical reactions and cycles are influenced by the pH, or acidity, of the oceans.
"Ocean acidification is an under-appreciated aspect of climate change, affecting the ecology of organisms and creating novel evolutionary pressures," says George Gilchrist, program director in NSF's Division of Environmental Biology.
"The integrated nature of these eco-evolutionary studies will provide new insights into how changes in ocean chemistry reshape populations and communities of marine organisms."
NSF Ocean Acidification grantees will ask such questions as: Will regional differences in marine chemistry and physics increase acidification? Are there complex interactions, cascades and bottlenecks that will emerge as the oceans acidify, and what are their ecosystem implications? And if current trends continue, how far-reaching will the changes be?
"This research on the physiological and metabolic responses of organisms to ocean acidification," says Irwin Forseth of NSF's Division of Integrative Organismal Systems, "is essential to our understanding of how these environmental changes will affect the structure and function of sensitive ecosystems worldwide."
The grants are part of NSF's Science, Engineering and Education for Sustainability (SEES) initiative.
NSF 2014 Ocean Acidification awardees, their institutions and projects are:
Marguerite Koch, Florida Atlantic University:
Robert Toonen, University of Hawaii:
Rodney Johnson, Bermuda Institute of Ocean Sciences:
Timothy Bralower, Pennsylvania State University:
James Zachos, University of California, Santa Cruz:
Paul Falkowski, Rutgers University:
Zackary Johnson, Duke University:
Konstantinos Konstantinidis, Georgia Institute of Technology:
Jan Pechenik, Tufts University:
Anthony Pires, Dickinson College:
Andreas Schmittner, Oregon State University:
Robert Carpenter, University of California - Northridge:
Kevin Gross, North Carolina State University:
Eric Kaltenbacher, SRI International:
Robert Byrne, University of South Florida:
Giulio De Leo, Stanford University:
James Barry, Monterey Bay Aquarium Research Institute:
C. Brock Woodson, University of Georgia:
Scott Hamilton, San Jose State University:
Cheryl Logan, California State University - Monterey Bay:
Brian Tissot, Humboldt State University:
-NSF-
Media Contacts Cheryl Dybas, NSF, (703) 292-7734, cdybas@nsf.gov
Related WebsitesNSF News: Natural Underwater Springs Show How Coral Reefs Respond to Ocean Acidification: http://www.nsf.gov/news/news_summ.jsp?cntn_id=128243
NSF News: World Oceans Month Brings Mixed News for Oysters: http://www.nsf.gov/news/news_summ.jsp?cntn_id=128228
NSF News: Ocean Acidification Linked With Larval Oyster Failure in Hatcheries: http://www.nsf.gov/news/news_summ.jsp?cntn_id=123822
NSF Discovery: Trouble in Paradise: Ocean Acidification This Way Comes: http://www.nsf.gov/discoveries/disc_summ.jsp?cntn_id=122642
NSF News and Audioslideshow: On 'Earth Week,' World Is No Longer Our Oyster: http://www.nsf.gov/news/news_summ.jsp?cntn_id=116767
NSF News: Palau's coral reefs surprisingly resistant to ocean acidification: http://www.nsf.gov/news/news_summ.jsp?cntn_id=130129
NSF News: Ocean Acidification Changes Nitrogen Cycling in World Seas: http://www.nsf.gov/news/news_summ.jsp?cntn_id=118233
NSF News: Oceans Acidifying Faster Today Than in Past 300 Million Years: http://www.nsf.gov/news/news_summ.jsp?cntn_id=123324


The National Science Foundation (NSF) is an independent federal agency that supports fundamental research and education across all fields of science and engineering. In fiscal year (FY) 2014, its budget is $7.2 billion. NSF funds reach all 50 states through grants to nearly 2,000 colleges, universities and other institutions. Each year, NSF receives about 50,000 competitive requests for funding, and makes about 11,500 new funding awards. NSF also awards about $593 million in professional and service contracts yearly.
Useful NSF Web Sites:
NSF Home Page:
 http://www.nsf.gov
NSF News
: http://www.nsf.gov/news/
For the News Media:
 http://www.nsf.gov/news/newsroom.jsp
Science and Engineering Statistics:
 http://www.nsf.gov/statistics/
Awards Searches:
abalone
Decreasing ocean pH (increasing acidity) threatens already vulnerable abalone populations.
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Juvenile rockfish and corals
Juvenile rockfish are susceptible to changing ocean pH: ocean acidification.
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 sattelite photo of blue and green blooms of tiny phytoplankton
Tiny phytoplankton, shown here as light blue and green blooms, are at risk from ocean acidification.
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Tropical algae
Tropical algae may respond well to acidification, affecting coral reefs the algae may overgrow.
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hand holding an instrument immersed in water
NSF ocean acidification grant awardees will develop compact new ocean instruments.
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The National Science Foundation (NSF)
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
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