Mostrando entradas con la etiqueta The Stratosphere. Mostrar todas las entradas
Mostrando entradas con la etiqueta The Stratosphere. Mostrar todas las entradas

martes, 6 de mayo de 2014

NASA: Earth's Atmospheric Layers


Earth's Atmospheric Layers
International Space Station astronauts captured this photo of Earth's atmospheric layers on July 31, 2011, revealing the troposphere (orange-red), stratosphere and above. Satellite instruments allow scientists to better understand the chemistry and dynamics occurring within and between these layers.
NASA monitors Earth’s vital signs from land, air and space with a fleet of satellites and ambitious and ground-based observation campaigns. NASA develops new ways to observe and study Earth’s interconnected natural systems with long-term data records and computer analysis tools to better see how our planet is changing. The agency shares this unique knowledge with the global community and works with institutions in the United States and around the world that contribute to understanding and protecting our home planet.
Image Credit: NASA/JSC Gateway to Astronaut Photography of Earth
NASA
Guillermo Gonzalo Sánchez Achutegui

domingo, 12 de enero de 2014

nsf.gov - National Science Foundation - Scientists to study Pacific Ocean's "global chimney"

Remote waters affect billions of people, shape climate and air chemistry worldwide
CONTRAST logo
Scientists working on the CONTRAST project will be in the field this month and next.
Credit and Larger Version
January 7, 2014
Although few people live in the Western tropical Pacific Ocean region, the remote waters there affect billions of people by shaping climate and air chemistry worldwide.
Next week, scientists will head to the region to better understand its influence on the atmosphere--including how that influence may change in coming decades if storms over the Pacific become more powerful with rising global temperatures.
With the warmest ocean waters on Earth, the Western tropical Pacific fuels a sort of chimney whose output has global reach.
The region feeds heat and moisture into huge clusters of thunderstorms that loft gases and particles into the stratosphere, where they spread out over the entire planet and influence climate.
"To figure out the future of the air above our heads, we need to go to the western Pacific," said Laura Pan, a scientist at the National Center for Atmospheric Research (NCAR) and one of the principal investigators on the field project.
"This region has been called the holy grail for understanding global air transport, because so much surface air gets lifted by the storms and then spreads globally."
The field project is called CONTRAST (Convective Transport of Active Species in the Tropics). It is funded by the National Science Foundation (NSF), which sponsors NCAR.
More than 40 scientists are taking part from NCAR, the University of Maryland, the University of Miami, other universities across the country and NASA.
CONTRAST, which is based in Guam, is being coordinated with two other field projects in order to give researchers a detailed view of the air masses over the Pacific with a vertical range spanning tens of thousands of feet.
One of these projects, NASA's Airborne Tropical Tropopause Experiment (ATTREX), will use a Global Hawk robotic aerial vehicle to study upper-atmospheric water vapor, which influences global climate.
The other, CAST (Coordinated Airborne Studies in the Tropics), is funded by Britain's Natural Environment Research Council Facility and will deploy a BAe146 research aircraft that will focus on air near the ocean surface.
Together, the sensor-laden research flights will provide a comprehensive view of the atmosphere from the ocean surface, where gases produced by marine organisms enter the air, to the stratosphere, more than 60,000 feet above.
"It's a huge region, and that means we have to use multiple aircraft," said University of Maryland's Ross Salawitch, a CONTRAST principal investigator.
"We will attempt to stage these three airplanes in harmony to measure the atmospheric composition over the western Pacific when both ocean biology and atmospheric storms are raging."
As trade winds blow across the tropical Pacific, they push warm water to the west, where it piles up in and near the CONTRAST study region.
The waters around Guam have the world's highest sea surface temperatures in open oceans. They provide heat and moisture to feed clusters of thunderstorms that lift air through the troposphere (the lowest level of the atmosphere) and the tropopause (a cold, shallow region atop the troposphere) and then up into the stratosphere.
Once in the stratosphere--where the air tends to flow horizontally--the gases and particles spread out around the world and linger for years or even decades.
Some of the gases, such as ozone and water vapor, affect the amount of energy from the sun that reaches Earth's surface.
"Research results from CONTRAST will be extremely important for understanding the ozone-depleting effects of certain chemicals, such as short-lived halogen species like those containing chlorine and bromine, in the tropical upper troposphere and lower stratosphere," said Sylvia Edgerton, program director in NSF's Division of Atmospheric and Geospace Sciences.
"It appears that high particle concentrations in the tropical tropopause can increase the ozone-depleting potential of short-lived halogens in the region," said Edgerton.
The amount of these gases in the stratosphere is important for the planet's climate.
Chemicals such as bromine compounds have indirect effects by destroying ozone or otherwise altering the chemistry of the stratosphere. And the gases produced by ocean organisms create a chemical reaction that can be detected in the stratosphere.
"There are so few measurements of atmospheric composition in this important region of the atmosphere that we expect to be able to significantly advance our understanding with the data we will be able to collect during CONTRAST," said Elliot Atlas of the University of Miami, a CONTRAST principal investigator.
As atmospheric patterns evolve and sea surface temperatures warm further due to climate change, the storm clusters over the Pacific are likely to influence climate in ways that are now challenging to anticipate, NCAR's Pan said.
"Understanding the impact of these storms will help us gain ground truth for improving the chemistry-climate models we use to project future climate," she said.
The CONTRAST team will deploy the NSF/NCAR HIAPER aircraft, a Gulfstream V jet modified for advanced research that will fly at altitudes between about 25,000 and 50,000 feet.
Using spectrometers and other instruments on board, the researchers will measure various chemicals and take air samples across a wide region, both in storm clouds and far away from them.
The measurements will be analyzed in conjunction with data from the ATTREX Global Hawk (covering altitudes up to 65,000 feet) and CAST BAe146 (with observations from the ocean surface to about 20,000 feet).
The researchers are planning as many as 16 flights, targeting both towering storms that loft fresh air into the stratosphere as well as collapsed storms to examine the composition of the air that remains lower down, in the troposphere.
State-of-the-art models of atmospheric chemistry will help guide the research flights in the field, as well as aid in subsequent analysis of the observations.
-NSF-
Media Contacts Cheryl Dybas, NSF, (703) 292-7734, cdybas@nsf.gov
David Hosansky, NCAR, (303) 497-8611, hosansky@ucar.edu
Related WebsitesNSF Award: Photochemical Modeling in Support of CONTRAST (CONvective TRansport of Active Species in the Tropics):
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) 2012, its budget was $7.0 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: http://www.nsf.gov/awardsearch/
 
Earth globe showing ocean surface circulation and winds, including in the Western tropical Pacific.
Ocean surface circulation and winds, including in the Western tropical Pacific.

Credit: NASA
Download the high-resolution JPG version of the image. (71.4 KB)

 
illustration showing the Earth map with a mass of water in the Western tropical Pacific
An enormous mass of water in the Western tropical Pacific, the "warm pool," is shown in orange-red.

Credit: IRD, France
Download the high-resolution JPG version of the image. (155.5 KB)
The National Science Foundation (NSF)
Guillermo Gonzalo Sánchez Achutegui

sábado, 12 de enero de 2013

NASA - NASA Chases Climate Change Clues Into The Stratosphere

ATTREX
Despite its low concentration, stratospheric water vapor has large impacts on the earth’s energy budget and climate. Recent studies suggest that even small changes in stratospheric humidity may have climate impacts that are significant compared to those of decadal increases in greenhouse gases. Future changes in stratospheric humidity and ozone concentration in response to changing climate are significant climate feedbacks.
While the tropospheric water vapor climate feedback is well represented in global models, predictions of future changes in stratospheric humidity are highly uncertain because of gaps in our understanding of physical processes occurring in the Tropical Tropopause Layer (TTL, ~13-18 km), the region of the atmosphere that controls the composition of the stratosphere. Uncertainties in the TTL chemical composition also limit our ability to predict future changes in stratospheric ozone.
Airborne Tropical TRopopause EXperiment (ATTREX) will perform a series of measurement campaigns using the long-range NASA Global Hawk (GH) unmanned aircraft system (UAS) to directly address these problems.

NASA Chases Climate Change Clues Into The Stratosphere
 
 
WASHINGTON -- Starting this month, NASA will send a remotely piloted research aircraft as high as 65,000 feet over the tropical Pacific Ocean to probe unexplored regions of the upper atmosphere for answers to how a warming climate is changing Earth.

The first flights of the Airborne Tropical Tropopause Experiment (ATTREX), a multi-year airborne science campaign with a heavily instrumented Global Hawk aircraft, will take off from and be operated by NASA's Dryden Flight Research Center at Edwards Air Force Base in California. The Global Hawk is able to make 30-hour flights.

Water vapor and ozone in the stratosphere can have a large impact on Earth's climate. The processes that drive the rise and fall of these compounds, especially water vapor, are not well understood. This limits scientists' ability to predict how these changes will influence global climate in the future. ATTREX will study moisture and chemical composition in the upper regions of the troposphere, the lowest layer of Earth's atmosphere. The tropopause layer between the troposphere and stratosphere, 8 miles to 11 miles above Earth's surface, is the point where water vapor, ozone and other gases enter the stratosphere.

Studies have shown even small changes in stratospheric humidity may have significant climate impacts. Predictions of stratospheric humidity changes are uncertain because of gaps in the understanding of the physical processes occurring in the tropical tropopause layer. ATTREX will use the Global Hawk to carry instruments to sample this layer near the equator off the coast of Central America.

"The ATTREX payload will provide unprecedented measurements of the tropical tropopause," said Eric Jensen, ATTREX principal investigator at NASA's Ames Research Center in Moffett Field, Calif. "This is our first opportunity to sample the tropopause region during winter in the northern hemisphere when it is coldest and extremely dry air enters the stratosphere."

Led by Jensen and project manager Dave Jordan of Ames, ATTREX scientists installed 11 instruments in the Global Hawk. The instruments include remote sensors for measuring clouds, trace gases and temperatures above and below the aircraft, as well as instruments to measure water vapor, cloud properties, meteorological conditions, radiation fields and numerous trace gases around the aircraft. Engineering test flights conducted in 2011 ensured the aircraft and instruments operated well at the very cold temperatures encountered at high altitudes in the tropics, which can reach minus 115 degrees Fahrenheit.

Six science flights are planned between Jan. 16 and March 15. The ATTREX team also is planning remote deployments to Guam and Australia in 2014. Scientists hope to use the acquired data to improve global model predictions of stratospheric humidity and composition.
The ATTREX team consists of investigators from Ames and three other NASA facilities; the Langley Research Center in Hampton, Va., Goddard Space Flight Center in Greenbelt, Md., and Jet Propulsion Laboratory in Pasadena, Calif. The team also includes investigators from the National Oceanic and Atmospheric Administration, National Center for Atmospheric Research, academia, and private industry.

ATTREX is one of the first investigations in NASA's new Venture-class series of low- to moderate-cost projects. The Earth Venture missions are part of NASA's Earth System Science Pathfinder Program managed by Langley. These small, targeted science investigations complement NASA's larger science research satellite missions.

ATTREX is one of several active science missions that will be featured during a NASA Airborne Science Mission media day at Dryden on Jan. 25. Reporters interested in attending should submit requests for credentials to Dryden's Public Affairs Office by Jan. 11, either by email at DrydenPAO@nasa.gov or by telephone at 661-276-3449. Media representatives wishing to participate must be U.S. citizens or permanent resident aliens on assignment from a verifiable media organization. No substitutions of non-credentialed personnel will be allowed.

For more information about the ATTREX mission, visit:

A digital ATTREX press kit is available at:
 NASA
Guillermo Gonzalo Sánchez Achutegui
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