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

domingo, 11 de enero de 2015

NASA : NASA Satellite Set to Get the Dirt on Soil Moisture .- Un satélite de la NASA, que será la próxima misión intentará sacar la suciedad de la humedad del suelo

Hola amigos: A VUELO DE UN QUINDE EL BLOG., la Agencia Espacial NASA, nos informa que uno de sus satélites : The Soil Moisture Active Passive (SMAP) misión;(SMAP - Humedad del Suelo Activo Pasivo). La próxima misión de la NASA para estudiar la Tierra es un asignador de humedad del suelo conocido como SMAP (Humedad del Suelo Activo Pasivo). Los datos de SMAP se utilizarán para mejorar la comprensión de los procesos que vinculan los ciclos del agua, energía y carbono, y para ampliar las capacidades de los modelos meteorológicos y de predicción del clima, incluyendo la mejora de las capacidades de predicción de inundaciones y control de la sequía...... Un nuevo satélite de la NASA que mirar en la capa superior de los suelos de la Tierra para medir las aguas ocultas que influyen en nuestro tiempo y el clima está en los preparativos finales para un amanecer de lanzamiento 29 de enero de California...."
NASA, nos dice ...:
La humedad del suelo Activo Pasivo (SMAP) misión tomará el pulso de una medida clave de nuestro planeta el agua: cómo el agua dulce ciclos sobre la superficie terrestre de la Tierra en forma de humedad del suelo. La misión producirá el, la más alta resolución más precisa mapas globales jamás obtenidas desde el espacio de la humedad presente en la parte superior 2 pulgadas (5 centímetros) de los suelos de la Tierra. También será detectar y cartografiar si el suelo está congelado o descongelado. Estos datos serán utilizados para mejorar la comprensión científica de los procesos que vinculan agua, energía y carbono ciclos de la Tierra............."
 
 
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NASA's next mission to study Earth is a soil moisture mapper know as SMAP (Soil Moisture Active Passive). Data from SMAP will be used to enhance understanding of processes that link the water, energy and carbon cycles, and to extend the capabilities of weather and climate prediction models including improved flood prediction and drought monitoring capabilities.
Image Credit: 
NASA
 
A new NASA satellite that will peer into the topmost layer of Earth's soils to measure the hidden waters that influence our weather and climate is in final preparations for a Jan. 29 dawn launch from California.
The Soil Moisture Active Passive (SMAP) mission will take the pulse of a key measure of our water planet: how freshwater cycles over Earth's land surfaces in the form of soil moisture. The mission will produce the most accurate, highest-resolution global maps ever obtained from space of the moisture present in the top 2 inches (5 centimeters) of Earth's soils. It also will detect and map whether the ground is frozen or thawed. This data will be used to enhance scientists' understanding of the processes that link Earth's water, energy and carbon cycles.
"With data from SMAP, scientists and decision makers around the world will be better equipped to understand how Earth works as a system and how soil moisture impacts a myriad of human activities, from floods and drought to weather and crop yield forecasts," said Christine Bonniksen, SMAP program executive with the Science Mission Directorate's Earth Science Division at NASA Headquarters in Washington. "SMAP's global soil moisture measurements will provide a new capability to improve our understanding of Earth's climate."
Globally, the volume of soil moisture varies between three and five percent in desert and arid regions, to between 40 and 50 percent in saturated soils. In general, the amount depends on such factors as precipitation patterns, topography, vegetation cover and soil composition. There are not enough sensors in the ground to map the variability in global soil moisture at the level of detail needed by scientists and decision makers. From space, SMAP will produce global maps with 6-mile (10-kilometer) resolution every two to three days.
 
Researchers want to measure soil moisture and its freeze/thaw state better for numerous reasons. Plants and crops draw water from the soil through their roots to grow. If soil moisture is inadequate, plants fail to grow, which over time can lead to reduced crop yields. Also, energy from the sun evaporates moisture in the soil, thereby cooling surface temperatures and also increasing moisture in the atmosphere, allowing clouds and precipitation to form more readily. In this way, soil moisture has a significant effect on both short-term regional weather and longer-term global climate.
In summer, plants in Earth's northern boreal regions -- the forests found in Earth's high northern latitudes -- take in carbon dioxide from the air and use it to grow, but lay dormant during the winter freeze period. All other factors being equal, the longer the growing season, the more carbon plants take in and the more effective forests are in removing carbon dioxide from the air. Since the start of the growing season is marked by the thawing and refreezing of water in soils, mapping the freeze/thaw state of soils with SMAP will help scientists more accurately account for how much carbon plants are removing from the atmosphere each year. This information will lead to better estimates of the carbon budget in the atmosphere and, hence, better assessments of future global warming.
SMAP data will enhance our confidence in projections of how Earth's water cycle will respond to climate change.
"Assessing future changes in regional water availability is perhaps one of the greatest environmental challenges facing the world today," said Dara Entekhabi, SMAP science team leader at the Massachusetts Institute of Technology in Cambridge. "Today's computer models disagree on how the water cycle -- precipitation, clouds, evaporation, runoff, soil water availability -- will increase or decrease over time and in different regions as our world warms. SMAP's higher-resolution soil moisture data will improve the models used to make daily weather and longer-term climate predictions."
SMAP also will advance our ability to monitor droughts, predict floods and mitigate the related impacts of these extreme events. It will allow the monitoring of regional deficits in soil moisture and provide critical inputs into drought monitoring and early warning systems used by resource managers. The mission's high-resolution observations of soil moisture will improve flood warnings by providing information on ground saturation conditions before rainstorms.
SMAP's two advanced instruments work together to produce soil moisture maps. Its active radar works much like a flash camera, but instead of transmitting visible light, it transmits microwave pulses that pass through clouds and moderate vegetation cover to the ground and measures how much of that signal is reflected back. Its passive radiometer operates like a natural-light camera, capturing emitted microwave radiation without transmitting a pulse. Unlike traditional cameras, however, SMAP's images are in the microwave range of the electromagnetic spectrum, which is invisible to the naked eye. Microwave radiation is sensitive to how much moisture is contained in the soil.
The two instruments share a large, lightweight reflector antenna that will be unfurled in orbit like a blooming flower and then spin at about 14 revolutions per minute. The antenna will allow the instruments to collect data across a 621-mile (1,000-kilometer) swath, enabling global coverage every two to three days.
SMAP's radiometer measurements extend and expand on soil moisture measurements currently made by the European Space Agency's Soil Moisture Ocean Salinity (SMOS) mission, launched in 2009. With the addition of a radar instrument, SMAP's soil moisture measurements will be able to distinguish finer features on the ground.
SMAP will launch from Vandenberg Air Force Base on a United Launch Alliance Delta II rocket and maneuver into a 426-mile (685-kilometer) altitude, near-polar orbit that repeats exactly every eight days. The mission is designed to operate at least three years.
SMAP is managed for NASA's Science Mission Directorate in Washington by the agency’s Jet Propulsion Laboratory (JPL) in Pasadena, California, with instrument hardware and science contributions made by NASA's Goddard Space Flight Center in Greenbelt, Maryland. JPL is responsible for project management, system engineering, radar instrumentation, mission operations and the ground data system. Goddard is responsible for the radiometer instrument. Both centers collaborate on science data processing and delivery to the Alaska Satellite Facility, in Fairbanks, and the National Snow and Ice Data Center, at the University of Colorado in Boulder, for public distribution and archiving. NASA's Launch Services Program at the agency’s Kennedy Space Center in Florida is responsible for launch management. JPL is managed for NASA by the California Institute of Technology in Pasadena.
For more information about the Soil Moisture Active Passive mission, visit:
and
 
SMAP will be the fifth NASA Earth science mission to launch within a 12-month period. NASA monitors Earth’s vital signs from land, air and space with a fleet of satellites and ambitious airborne 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.
For more information about NASA's Earth science activities, visit:

NASA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@yahoo.com
ayabaca@hotmail.com
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domingo, 8 de septiembre de 2013

nsf.gov - News - NSF Frontiers in Earth-System Dynamics awards explore links among Earth processes and systems

Scientists investigate a changing planet now and in the past, with a view toward predicting its future,.
graphic illustration showing a termometer, the sun, ocean and ice
From burning hot to freezing cold places, FESD awardees conduct research on Earth systems.
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September 4, 2013
The effects of the ozone hole on the Southern Hemisphere's climate; biodiversity in the Amazon/Andean forest; Earth system dynamics and human evolution in Africa; deep-Earth dynamics and long-term climate; the Earth system and its oxygen; and links among volcanoes, oceans, ice and carbon.
To explore the connections among our planet's dynamic systems, the National Science Foundation (NSF) has made awards totaling $28 million for research on these six topics. They are the second set of grants in NSF's Frontiers in Earth-System Dynamics (FESD) Program. Earth is often characterized as "dynamic" because its systems are variable over time and can respond rapidly to changes.
The FESD Program is supported by three divisions in NSF's Directorate for Geosciences (GEO): Atmospheric and Geospace Sciences, Earth Sciences and Ocean Sciences.
"FESD is one of GEO's efforts to fund high-risk, high-return research," says Roger Wakimoto, NSF Assistant Director for Geosciences.
"The awards reflect a multi-disciplinary approach that goes beyond what a single core program can support," says Wakimoto. "The 2013 awardees' projects are impressive, and will lead to exciting research discoveries."
The goals of the FESD program are to foster an interdisciplinary and multi-scale understanding of the interplay among and within the sub-systems at work on Earth, and to catalyze research in geoscience areas poised for major advances.
The program also seeks to improve data resolution and modeling capabilities to more realistically simulate complex processes and forecast disruptive or threshold events, and to improve knowledge of the resilience of the Earth and its systems.
Understanding and predicting the behavior of the complex and evolving Earth system was identified as a major challenge in the report GEOVision: Unraveling Earth's Complexities Through the Geosciences, released by the NSF Advisory Committee for Geosciences.
"Earth's systems interact with each other on different scales, linked across space and time," states the GEOVision report. "Changes in one component affect the status and function of other elements, and not always in straightforward or obvious ways."
Studying one component in isolation yields an incomplete, and sometimes misleading, picture, according to the report.
"One of the most striking characteristics of the Earth system is the presence of patterns," states GEOVision.
"Understanding how such methodical arrangements emerge over Earth's history may provide an important key to predicting Earth-system behavior."
The FESD awards address the need to discover and predict rates of change in these systems by fostering an integrated and multi-scale understanding of Earth's processes and systems, improving data resolution and modeling capabilities to discover and predict how rapidly these processes and systems are changing, and determining how resilient they are to the effects of human activities.
The recent human footprint on Earth has been large. The FESD awards will help scientists discover how large, as measured against naturally-occurring events; how Earth might respond; and what actions might be taken now and in the future to help shrink our global footprint.
2013 NSF FESD Awards
 Ariel Anbar, Arizona State University
 Paul Baker, Duke University
 Andrew Cohen, University of Arizona
Charles Langmuir, Harvard University
Cin-Ty Lee, William Marsh Rice University
John Marshall, Massachusetts Institute of Technology
-NSF-
Media Contacts Cheryl Dybas, NSF (703) 292-7734 cdybas@nsf.gov
Related WebsitesNSF News: NSF Advisory Committee Offers New View for the Geosciences:
http://www.nsf.gov/geo/acgeo/geovision/start.jsp
NSF News: First Awards Made in Frontiers in Earth-System Dynamics Program:
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:
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Science and Engineering Statistics:
Volcanic erruption
Volcanoes, ice, oceans and carbon: Their connections are the subject of FESD research.
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photo of forest and mountains in the Andes region
Scientists funded by the FESD Program are studying Andes and Amazon biodiversity.
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Photo of iron formations in soil in a canyon
Banded iron formations: important in the development of Earth's oxygenated environment.
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Lake Turkana and vehicles on it banks in Kenya
Deposits in Kenya's Lake Turkana help scientists link paleoclimate and human evolution.
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Illustration showing the ozone hole in the Southern Hemisphere
FESD grantees are studying the ozone hole and its effects on Southern Hemisphere climate.
Credit and Larger Version
 
The National Science Foundation (NSF)
Guillermo Gonzalo Sánchez Achutegui

jueves, 14 de junio de 2012

Science: Predators Have Outsized Influence Over Habitats

Hi My Friends: A VUELO DE UN QUINDE EL BLOG., A grasshopper's change in diet to high-energy carbohydrates while being hunted by spiders may affect the way soil releases carbon dioxide into the atmosphere, according to research results published this week in the journal Science.
 Grasshoppers' diets while being hunted may affect how soil releases carbon dioxide.
Credit: Dror Hawlena

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 Field experiments underway at the Yale Myers forest research site.
Credit: Dror Hawlena

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 Coping with stress from fear of predation leads to a shift in grasshopper food choices.
Credit: Dror Hawlena

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 Scientists take measurements of carbon dioxide during field experiments.
Credit: Dror Hawlena

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Grasshopper decomposition is important to biologists studying predator-prey relationships.
Credit: Dror Hawlena

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Experiments continue in the laboratory, here measuring soil respiration.
Credit: Dror Hawlena

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 The researchers' work is described in the June 15, 2012 issue of the journal Science.
Credit: Copyright AAAS 2012

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 Study of grasshoppers' diets shows that animals are an important part of organic matter decomposition
A grasshopper's change in diet to high-energy carbohydrates while being hunted by spiders may affect the way soil releases carbon dioxide into the atmosphere, according to research results published this week in the journal Science.
Grasshoppers like to munch on nitrogen-rich grass because it stimulates their growth and reproduction.
But when spiders enter the picture, grasshoppers cope with the stress from fear of predation by shifting to carbohydrate-rich plants, setting in motion dynamic changes to the ecosystem they inhabit, scientists have found.
"Under stressful conditions they go to different parts of the 'grocery store' and choose different foods, changing the makeup of the plant community," said Oswald Schmitz, a co-author of the paper and an ecologist at Yale University.
The high-energy, carbohydrate diet also tilts a grasshopper's body chemistry toward carbon at the expense of nitrogen.
So when a grasshopper dies, its carcass breaks down more slowly, thus depriving the soil of high-quality fertilizer and slowing the decomposition of uneaten plants.
"This study casts a new light on the importance of predation in natural communities," said Saran Twombly, program director in the National Science Foundation's Division of Environmental Biology, which funded the research.
"A clever suite of experiments shows that the dark hand of predation extends all the way from altering what prey eat to the nutrients their decomposing bodies contribute to soil."
Microbes in the soil require a lot of nitrogen to function and to produce the enzymes that break down organic matter.
"It only takes a slight change in the chemical composition of that animal biomass to fundamentally alter how much carbon dioxide the microbial pool is releasing to the atmosphere while it is decomposing plant organic matter," said Schmitz.
"This shows that animals could potentially have huge effects on the global carbon balance because they're changing the way microbes respire organic matter."
The researchers found that the rate at which the organic matter of leaves decomposed increased between 60 percent and 200 percent in stress-free conditions relative to stressed conditions, which they consider "huge."
"Climate and litter quality are considered the main controls on organic-matter decomposition, but we show that aboveground predators change how soil microbes break down organic matter," said Mark Bradford, a co-author of the study and also an ecologist at Yale.
Schmitz added: "What it means is that we're not paying enough attention to the control that animals have over what we view as a classically important process in ecosystem functioning."
The researchers took soil from the field, put it in test tubes and ground up grasshopper carcasses obtained from environments either with or without grasshopper predators.
They then sprinkled the powder atop the soil, where the microbes digested it.
When the grasshopper carcasses were completely decomposed, the researchers added leaf litter and measured the rate of leaf-litter decomposition.
The experiment was then replicated in the field at the Yale Myers Forest in northeastern Connecticut.
"It was a two-stage process where the grasshoppers were used to prime the soil, then we measured the consequences of that priming," said Schmitz.
The effect of animals on ecosystems is disproportionately larger than their biomass would suggest.
"Traditionally people thought that animals had no important role in recycling of organic matter, because their biomass is relatively small compared to the plant material that's entering ecosystems," Schmitz said.
"We need to pay more attention to the role of animals, however. In an era of biodiversity loss we're losing many top predators and larger herbivores from ecosystems."
Other co-authors are Michael Strickland of Yale, and Dror Hawlena of the Hebrew University of Jerusalem.
-NSF-

Media Contacts Cheryl Dybas, NSF (703) 292-7734 cdybas@nsf.gov
Dave DeFusco, Yale University (203) 436-4842 david.defusco@yale.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) 2012, its budget is $7.0 billion. NSF funds reach all 50 states through grants to nearly 2,000 colleges, universities and other institutions. Each year, NSF receives over 50,000 competitive requests for funding, and makes about 11,000 new funding awards. NSF also awards nearly $420 million in professional and service contracts yearly.
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Guillermo Gonzalo Sánchez Achutegui
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ayabaca@hotmail.com 
 ayabaca@yahoo.com
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domingo, 27 de mayo de 2012

Astronomy: NASA Funded Research Shows Existence Of Reduced Carbon On Mars

Hi My Friends: A VUELO DE UN QUINDE EL BLOG., NASA-funded research on Mars meteorites that landed on Earth shows strong evidence that very large molecules containing carbon, which is a key ingredient for the building blocks of life, can originate on the Red Planet. These macromolecules are not of biological origin, but they are indicators that complex carbon chemistry has taken place on Mars.
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 NASA Funded Research Shows Existence Of Reduced Carbon On Mars
 
 
WASHINGTON -- NASA-funded research on Mars meteorites that landed on Earth shows strong evidence that very large molecules containing carbon, which is a key ingredient for the building blocks of life, can originate on the Red Planet. These macromolecules are not of biological origin, but they are indicators that complex carbon chemistry has taken place on Mars.

Researchers from the Carnegie Institution for Science in Washington who found reduced carbon molecules now have better insight into the chemical processes taking place on Mars. Reduced carbon is carbon that is bonded to hydrogen or itself. Their findings also may assist in future quests for evidence of life on the Red Planet. The findings are published in Thursday's online edition of Science Express.

"These findings show that the storage of reduced carbon molecules on Mars occurred throughout the planet's history and might have been similar to processes that occurred on the ancient Earth," said Andrew Steele, lead author of the paper and researcher from Carnegie. "Understanding the genesis of these non-biological, carbon-containing macromolecules on Mars is crucial for developing future missions to detect evidence of life on our neighboring planet."

Finding molecules containing large chains of carbon and hydrogen has been one objective of past and present Mars missions. Such molecules have been found previously in Mars meteorites, but scientists have disagreed about how the carbon in them was formed and whether it came from Mars. This new information proves Mars can produce organic carbon.

"Although this study has not yielded evidence that Mars has or once may have supported life, it does address some important questions about the sources of organic carbon on Mars," said Mary Voytek, director of NASA's Astrobiology Program at the agency's Headquarters in Washington. "With the Curiosity rover scheduled to land in August, these new research results may help Mars Science Laboratory scientists fine-tune their investigations on the surface of the planet by understanding where organic carbon may be found and how it is preserved."

Scientists have theorized that the large carbon macromolecules detected on Martian meteorites could have originated from terrestrial contamination from Earth or other meteorites, or chemical reactions or biological activity on Mars.

Steele's team examined samples from 11 Martian meteorites from a period spanning about 4.2 billion years of Martian history. They detected large carbon compounds in 10 of them. The molecules were found inside grains of crystallized minerals.

Using an array of sophisticated research techniques, the team was able to show that at least some of the macromolecules of carbon were indigenous to the meteorites themselves and not contamination from Earth.

The team next looked at the carbon molecules in relation to other minerals in the meteorites to see what kinds of chemical processing these samples endured before arriving on Earth. The crystalline grains encasing the carbon compounds provided a window into how the carbon molecules were created. Their findings indicate that the carbon was created by volcanic activity on Mars and show that Mars has been doing organic chemistry for most of its history.

In a separate paper published by American Mineralogist, Steele and his team report their findings on the same meteorite announced in 1996 to contain possible -- but subsequently discounted -- relics of ancient biological life on Mars. Called ALH84001, the meteorite was found to also contain organic macromolecules of non-biological origin.

The Steele team's research indicates that Mars does have a pool of reduced carbon. Their findings should help scientists involved in current and future Mars missions distinguish non-biologically formed carbon molecules from potential life.

For an image and more information about the meteorite, visit:

 
Guillermo Gonzalo Sánchez Achutegui
 ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com 
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