Mostrando entradas con la etiqueta NASA's Solar Dynamics Observatory (SDO). Mostrar todas las entradas
Mostrando entradas con la etiqueta NASA's Solar Dynamics Observatory (SDO). Mostrar todas las entradas

domingo, 12 de julio de 2015

NASA : NuSTAR Stares at the Sun .- NuSTAR mira al Sol ( NASA's Nuclear Spectroscopic Telescope Array)

Hola amigos: A VUELO DE UN QUINDE EL BLOG., hemos recibido una espectacular fotografía de El Sol, realizada por múltiples telescopios : NASA's Nuclear Spectroscopic Telescope Array (NuSTAR),Japan's Hinode spacecraft y NASA's Solar Dynamics Observatory (SDO), en donde se observa gigantescas llamaradas que resaltan las regiones activas de  El Sol. Los tres telescopios captaron la imagen al mismo tiempo el 29 de Abril del 2015.

More information.....
http://www.nasa.gov/jpl/pia19821/nustar-stares-at-the-sun

Flaring, active regions of our sun are highlighted in this new image combining observations from several telescopes
Flaring, active regions of our sun are highlighted in this new image combining observations from several telescopes. High-energy X-rays from NASA's Nuclear Spectroscopic Telescope Array (NuSTAR) are shown in blue; low-energy X-rays from Japan's Hinode spacecraft are green; and extreme ultraviolet light from NASA's Solar Dynamics Observatory (SDO) is yellow and red.
All three telescopes captured their solar images around the same time on April 29, 2015. The NuSTAR image is a mosaic made from combining smaller images.
The active regions across the sun’s surface contain material heated to several millions of degrees. The blue-white areas showing the NuSTAR data pinpoint the most energetic spots. During the observations, microflares went off, which are smaller versions of the larger flares that also erupt from the sun's surface. The microflares rapidly release energy and heat the material in the active regions.
NuSTAR typically stares deeper into the cosmos to observe X-rays from supernovas, black holes and other extreme objects. But it can also look safely at the sun and capture images of its high-energy X-rays with more sensitivity than before. Scientists plan to continue to study the sun with NuSTAR to learn more about microflares, as well as hypothesized nanoflares, which are even smaller.
In this image, the NuSTAR data shows X-rays with energies between 2 and 6 kiloelectron volts; the Hinode data, which is from the X-ray Telescope instrument, has energies of 0.2 to 2.4 kiloelectron volts; and the Solar Dynamics Observatory data, taken using the Atmospheric Imaging Assembly instrument, shows extreme ultraviolet light with wavelengths of 171 and 193 Angstroms.
Note the green Hinode image frame edge does not extend as far as the SDO ultraviolet image, resulting in the green portion of the image being truncated on the right and left sides.
Image credit: NASA/JPL-Caltech/GSFC/JAXA
Last Updated: July 12, 2015
Editor: Tony Greicius
Tags:  Image of the Day, NuSTAR (Nuclear Spectroscopic Telescope Array), Sun
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Guillermo Gonzalo Sánchez Achutegui
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domingo, 24 de mayo de 2015

NASA : Coronal Loops Over a Sunspot Group .- Lazos coronales sobre un grupo de manchas solares

Hola amigos: A VUELO DE UN QUINDE EL BLOG., hemos recibido información de la Agencia Espacial NASA, sobre los instrumentos que lleva el observatorio NASA's Solar Dynamics Observatory (SDO, siendo uno de ellos llamado : The Atmospheric Imaging Assembly (AIA); que permite captar imágenes de la atmósfera solar en múltiples longitudes de onda, para vincular los cambios en la superficie a los cambios anteriores. Su datos incluyen imágenes del sol en 10 longitudes de onda cada 10 segundos. Cuando las imágenes de AFP se agudizan un poco, como esta imagen del canal AIA 171Å, el campo magnético puede visualizarse fácilmente a través de los hilos brillantes y delgadas que son llamados "arcos coronales".Los Arcos (LAZOS) se muestran aquí en una superposición de mezclado con el campo magnético medido con Imager Heliosísmicas y Magnético de SDO debajo. Azul y amarillo representan las polaridades opuestas del campo magnético. Las imágenes combinadas fueron tomadas el 24 de octubre de 2014, a 23:50:37 UT.

More information...........
http://www.nasa.gov/image-feature/coronal-loops-over-a-sunspot-group

Closeup of coronal loops in bright color on surface of sun
The Atmospheric Imaging Assembly (AIA) instrument aboard NASA's Solar Dynamics Observatory (SDO) images the solar atmosphere in multiple wavelengths to link changes in the surface to interior changes. Its data includes images of the sun in 10 wavelengths every 10 seconds. When AIA images are sharpened a bit, such as this AIA 171Å channel image, the magnetic field can be readily visualized through the bright, thin strands that are called "coronal loops". Loops are shown here in a blended overlay with the magnetic field as measured with SDO's Helioseismic and Magnetic Imager underneath. Blue and yellow represent the opposite polarities of the magnetic field. The combined images were taken on Oct. 24, 2014, at 23:50:37 UT.
Image Credit: NASA SDO
Last Updated: May 24, 2015
Editor: Sarah Loff
Tags:  Image of the Day, SDO (Solar Dynamics Observatory), Solar System, Sun
 NASA
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domingo, 15 de febrero de 2015

NASA : Giant Filament Seen on the Sun .- Filamento gigante visto en el Sol

Hola amigos : A VUELO DE UN QUINDE EL BLOG., la Agencia Espacial NASA, nos informa que su telescopio NASA's Solar Dynamics Observatory (SDO), ha captado una imagen de gigantesco filamento; 10 de febrero muestra un filamento de material solar flotando por encima de la superficie del sol. SDO muestra el material más frío como materia oscura y más caliente como la luz, por lo que la línea es, de hecho, una enorme muestra de material más frío flotando en la atmósfera del Sol, la corona. Tendido, esa línea - o filamento solar como los científicos llaman - sería más de 533.000 millas de largo.
Eso es más de 67 Tierras alineados en una fila. Los filamentos pueden flotar tranquilamente durante días antes de desaparecer. A veces también entran en erupción en el espacio, la liberación de material solar en una ducha que las lluvias ya sea hacia abajo o se escapa hacia el espacio, convirtiéndose en una nube moviéndose conocida como una eyección de masa coronal o CME. SDO captó imágenes del filamento en numerosas longitudes de onda, cada una de ellas ayuda a resaltar el material de diferentes temperaturas, en el sol. Al observar estas características en diferentes longitudes de onda y las temperaturas, los científicos a aprender más sobre las causas de estas estructuras, así como lo que cataliza sus erupciones ocasionales.
Lanzado el 11 de febrero 2010 a bordo de un cohete Atlas V ULA de la estación de la Fuerza Aérea de Cabo Cañaveral, Florida., Observatorio de Dinámica Solar de la NASA está diseñado para estudiar las causas de la variabilidad solar y su impacto en la Tierra. Mediciones a largo plazo de la nave espacial dan a los científicos solares en profundidad la información para ayudar a caracterizar el interior del Sol, el campo magnético del sol, el plasma caliente de la corona solar, y la densidad de radiación que crea la ionosfera de los planetas. La información se utiliza para crear mejores predicciones del clima espacial necesaria para proteger a las aeronaves, satélites y los astronautas que viven y trabajan en el espacio.

Giant Filament Seen on the Sun
A dark, snaking line across the lower half of the sun in this Feb. 10, 2015 image from NASA's Solar Dynamics Observatory (SDO) shows a filament of solar material hovering above the sun's surface. SDO shows colder material as dark and hotter material as light, so the line is, in fact, an enormous swatch of colder material hovering in the sun's atmosphere, the corona. Stretched out, that line – or solar filament as scientists call it – would be more than 533,000 miles long. That is longer than 67 Earths lined up in a row. Filaments can float sedately for days before disappearing. Sometimes they also erupt out into space, releasing solar material in a shower that either rains back down or escapes out into space, becoming a moving cloud known as a coronal mass ejection, or CME. SDO captured images of the filament in numerous wavelengths, each of which helps highlight material of different temperatures on the sun. By looking at such features in different wavelengths and temperatures, scientists learn more about what causes these structures, as well as what catalyzes their occasional eruptions.
Launched on Feb. 11, 2010 aboard a ULA Atlas V rocket from Cape Canaveral Air Force Station, Fla., NASA's Solar Dynamics Observatory is designed to study the causes of solar variability and its impacts on Earth. The spacecraft's long-term measurements give solar scientists in-depth information to help characterize the interior of the sun, the sun's magnetic field, the hot plasma of the solar corona, and the density of radiation that creates the ionosphere of the planets. The information is used to create better forecasts of space weather needed to protect aircraft, satellites and astronauts living and working in space.
Image Credit: NASA/SDO

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domingo, 9 de noviembre de 2014

NASA : NASA's Solar Dynamics Observatory Captures Intense Space Weather .- Observatorio Dinámica Solar de la NASA Capta Espacio intenso deTiempo

Hola amigos: A VUELO DE UN QUIND EL BLOG., la Agencia Espacial NASA, nos informa sobre la captación de una imagen del Sol por el Satélite Observatorio de Dinámica Solar en una región solar sobre las famosas llamaradas solares  , NASA nos dice:..................."Una región activa en el Sol emitió una llamarada solar de nivel medio, con un pico a las 4:47 am hora del este el 5 de noviembre de 2014. Este es el segundo brote de nivel medio de la misma región activa, etiquetado AR 12205, que giraba sobre la extremidad izquierda del sol en noviembre 3. la imagen fue captada por el Observatorio de Dinámica Solar de la NASA (SDO) en extrema Que la luz ultravioleta fue coloreada en rojo y oro......................"
NASA's Solar Dynamics Observatory Captures Intense Space Weather
An active region on the sun emitted a mid-level solar flare, peaking at 4:47 a.m. EST on Nov. 5, 2014. This is the second mid-level flare from the same active region, labeled AR 12205, which rotated over the left limb of the sun on Nov. 3. The image was captured by NASA's Solar Dynamics Observatory (SDO) in extreme ultraviolet light that was colorized in red and gold.
Solar flares are powerful bursts of radiation. Harmful radiation from a flare cannot pass through Earth's atmosphere to physically affect humans on the ground, however -- when intense enough -- they can disturb the atmosphere in the layer where GPS and communications signals travel.
This flare is classified as an M7.9-class flare. M-class flares are a tenth the size of the most intense flares, the X-class flares. The number provides more information about its strength. An M2 is twice as intense as an M1, an M3 is three times as intense, etc.
Image Credit: NASA/SDO
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martes, 26 de agosto de 2014

NASA : Solar Dynamics Observatory Captures Images of a Late Summer Flare


 
Solar Dynamics Observatory Captures Images of a Late Summer Flare
On Aug. 24, 2014, the sun emitted a mid-level solar flare, peaking at 8:16 a.m. EDT. NASA's Solar Dynamics Observatory captured images of the flare, which erupted on the left side of the sun. Solar flares are powerful bursts of radiation. Harmful radiation from a flare cannot pass through Earth's atmosphere to physically affect humans on the ground, however -- when intense enough -- they can disturb the atmosphere in the layer where GPS and communications signals travel. This flare is classified as an M5 flare. M-class flares are ten times less powerful than the most intense flares, called X-class flares.
Image Credit: NASA/SDO
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martes, 25 de febrero de 2014

NASA : First Moments of a Solar Flare in Different Wavelengths of Light


First Moments of a Solar Flare in Different Wavelengths of Light
On Feb. 24, 2014, the sun emitted a significant solar flare, peaking at 7:49 p.m. EST. NASA's Solar Dynamics Observatory (SDO), which keeps a constant watch on the sun, captured images of the event. These SDO images from 7:25 p.m. EST on Feb. 24 show the first moments of this X-class flare in different wavelengths of light -- seen as the bright spot that appears on the left limb of the sun. Hot solar material can be seen hovering above the active region in the sun's atmosphere, the corona.
Solar flares are powerful bursts of radiation, appearing as giant flashes of light in the SDO images. Harmful radiation from a flare cannot pass through Earth's atmosphere to physically affect humans on the ground, however -- when intense enough -- they can disturb the atmosphere in the layer where GPS and communications signals travel.
Image Credit: NASA/SDO
NASA
Guillermo Gonzalo Sánchez Achutegui
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martes, 18 de febrero de 2014

NASA : Coronal Loops in an Active Region of the Sun


Coronal Loops in an Active Region of the Sun
An active region of the sun just rotating into the view of NASA's Solar Dynamics Observatory gives a profile view of coronal loops over about a two-day period, from Feb. 8-10, 2014. Coronal loops are found around sunspots and in active regions. These structures are associated with the closed magnetic field lines that connect magnetic regions on the solar surface. Many coronal loops last for days or weeks, but most change quite rapidly. This image was taken in extreme ultraviolet light.
Image Credit: NASA/Solar Dynamics Observatory
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Guillermo Gonzalo Sánchez Achutegui
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lunes, 3 de febrero de 2014

NASA : Solar Dynamics Observatory Sees Lunar Transit


Solar Dynamics Observatory Sees Lunar Transit
On Jan. 30, 2014, beginning at 8:31 a.m EST, the moon moved between NASA’s Solar Dynamics Observatory, or SDO, and the sun, giving the observatory a view of a partial solar eclipse from space. Such a lunar transit happens two to three times each year. This one lasted two and one half hours, which is the longest ever recorded. When the next one will occur is as of yet unknown due to planned adjustments in SDO's orbit.
Image Credit: NASA/SDO
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jueves, 2 de enero de 2014

NASA : Quiet Corona and Upper Transition Region of the Sun


Quiet Corona and Upper Transition Region of the Sun
This image, taken on Dec. 31, 2013 by the AIA instrument on NASA's Solar Dynamics Observatory at 171 Angstrom, shows the current conditions of the quiet corona and upper transition region of the Sun.
Image Credit: NASA/SDO

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lunes, 29 de julio de 2013

NASA - NASA's IRIS Telescope Offers First Glimpse of Sun's Mysterious Atmosphere

NASA Selects Contract for Information Technology Services
WASHINGTON -- NASA has awarded Arctic Slope Regional Corp. (ASRC) Federal Research and Technology Solutions of Greenbelt, Md., for information technology (IT) services at the agency's Ames Research Center in Moffett Field, Calif.
This firm-fixed-price, cost-plus-fixed-fee, indefinite-delivery, indefinite-quantity hybrid contract begins Sept. 1. The contract has a maximum value of $403.4 million and a two-year base period with three one-year options.
The contractor will provide IT system and governance support, IT security, network and communication systems and support, and application management and support. It also will provide scientific computing systems and support, innovation and emerging technologies, and outreach and informational systems and support.
For information about NASA and agency programs, visit:
 

NASA's IRIS Telescope Offers First Glimpse of Sun's Mysterious Atmosphere
These two images show a section of the sun as seen by NASA's Interface Region Imaging Spectrograph, or IRIS, on the right and NASA's SDO on the left. The IRIS image provides scientists with unprecedented detail of the lowest parts of the sun's atmosphere, known as the interface region.
Image Credit:  NASA/SDO/IRIS
The moment when a telescope first opens its doors represents the culmination of years of work and planning -- while simultaneously laying the groundwork for a wealth of research and answers yet to come. It is a moment of excitement and perhaps even a little uncertainty. On July 17, 2013, the international team of scientists and engineers who supported and built NASA's Interface Region Imaging Spectrograph, or IRIS, all lived through that moment. As the spacecraft orbited around Earth, the door of the telescope opened to view the mysterious lowest layers of the sun's atmosphere and the results thus far are nothing short of amazing. The data is crisp and clear, showing unprecedented detail of this little-observed region.
"These beautiful images from IRIS are going to help us understand how the sun's lower atmosphere might power a host of events around the sun," said Adrian Daw, the mission scientist for IRIS at NASA's Goddard Space Flight Center in Greenbelt, Md. "Anytime you look at something in more detail than has ever been seen before, it opens up new doors to understanding. There's always that potential element of surprise."
As the telescope door opened on July 17, 2013, IRIS’s single instrument began to observe the sun in exceptional detail. IRIS’s first images showed a multitude of thin, fibril-like structures that have never been seen before, revealing enormous contrasts in density and temperature occur throughout this region even between neighboring loops that are only a few hundred miles apart. The images also show spots that rapidly brighten and dim, which provide clues to how energy is transported and absorbed throughout the region.
The IRIS images of fine structure in the interface region will help scientists track how magnetic energy contributes to heating in the sun’s atmosphere. Scientists need to observe the region in exquisite detail, because the energy flowing through it powers the upper layer of the sun’s atmosphere, the corona, to temperatures greater than 1 million kelvins (about 1.8 million F), almost a thousand times hotter than the sun's surface itself.
IRIS is a NASA Small Explorer mission that launched from Vandenberg Air Force Base, Calif., on June 27, 2013. IRIS's capabilities are uniquely tailored to unravel the interface region. Understanding the interface region is important because it forms the ultraviolet emission that impacts near-Earth space and Earth’s climate. Energy traveling through the region also helps drive the solar wind, which during extreme space weather events near Earth can affect satellites, power grids, and global positioning systems, or GPS.
Designed to research the interface region in more detail than has ever been done before, IRIS's instrument is a combination of an ultraviolet telescope and what's called a spectrograph. Light from the telescope is split into two components. The first provides high-resolution images, capturing data on about one percent of the sun at a time. While these are relatively small snapshots, the images can resolve very fine features, as small as 150 miles across.
While the images are of one wavelength of light at a time, the second component is the spectrograph that provides information about many wavelengths of light at once. The instrument splits the sun's light into its various wavelengths and measures how much of any given wavelength is present. This information is then portrayed on a graph showing spectral "lines." Taller lines correspond to wavelengths in which the sun emits relatively more light. Analysis of the spectral lines can also provide velocity, temperature and density, key information when trying to track how energy and heat moves through the region.
"The quality of images and spectra we are receiving from IRIS is amazing. This is just what we were hoping for," said Alan Title, IRIS principal investigator at the Lockheed Martin Advanced Technology Center Solar and Astrophysics Laboratory in Palo Alto, Calif. "There is much work ahead to understand what we're seeing, but the quality of the data will enable us to do that."
Not only does IRIS provide state-of-the-art observations to look at the interface region, it makes uses of advanced computing to help interpret what it sees. Indeed, interpreting the light flowing out of the interface region could not be done well prior to the advent of today's supercomputers because, in this area of the sun, the transfer and conversion of energy from one form to another is not understood.
The IRIS mission has long-term implications for understanding the genesis of space weather near Earth. Understanding how energy and solar material move through the interface region could help scientists improve forecasts for the kinds of events that can disrupt Earth technologies.
The IRIS Observatory was designed and the mission managed by Lockheed Martin. The Harvard-Smithsonian Center for Astrophysics in Cambridge, Mass., built the telescope. Montana State University in Bozeman, Mont. designed the spectrograph. NASA's Ames Research Center in Moffett Field, Calif., provides mission operations and ground data systems. Goddard manages the Small Explorer Program for NASA's Science Mission Directorate in Washington, D.C. The Norwegian Space Centre is providing regular downlinks of science data. Other contributors include the University of Oslo in Norway and Stanford University in Stanford, Calif.
For more information about the IRIS mission, visit:
Karen C. Fox
NASA's Goddard Space Flight Center, Greenbelt, Md.
 
NASA
Guillermo Gonzalo Sánchez Achutegui

domingo, 2 de junio de 2013

NASA - NASA Hosts June 4 Media Briefing on Next Solar Mission Launch

NASA IRIS: Improving Our View Of the Sun
05.29.13
 
This image from JAXA’s Hinode mission shows the lower regions of the sun’s atmosphere, the interface region, which a new mission called the Interface Region Imaging Spectrograph, or IRIS, will study in exquisite detail.
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This image from the Japan Aerospace Exploration Agency’s Hinode mission shows the lower regions of the sun’s atmosphere, the interface region, which a new mission called the Interface Region Imaging Spectrograph, or IRIS, will study in exquisite detail. Where previous missions have been able to image material at only a few predetermined temperatures in this region, IRIS will observe a wide range of temperatures from 5,000 kelvins to 65,000 kelvins (8,540 F to 116,540 F), and up to 10 million kelvins (about 18 million F) during solar flares. Its images will resolve structures down to 150 miles across. Credit: JAXA/Hinode

In late June 2013, NASA will launch a new set of eyes to offer the most detailed look ever of the sun’s lower atmosphere, called the interface region. This region is believed to play a crucial role in powering the sun’s dynamic million-degree atmosphere, the corona. The Interface Region Imaging Spectrograph or IRIS mission will provide the best resolution so far of the widest range of temperatures for of the interface region, an area that has historically been difficult to study.

"This region is crucial for understanding how the corona gets so hot,” said Joe Davila, IRIS project scientist at NASA's Goddard Space Flight Center in Greenbelt, Md. "For the first time, we will have the capability to observe it at fundamental physical scale sizes and see details that have previously been hidden."

IRIS’s capabilities are uniquely tailored to unravel the interface region by providing both high-resolution images and a kind of data known as spectra.

For its high-resolution images, IRIS will capture data on about one percent of the sun at a time. While these are relatively small snapshots, IRIS will be able to see very fine features, as small as 150 miles across.

“We have some great space observatories currently looking at the sun,” said Bart DePontieu, the IRIS science lead at Lockheed Martin in Palo Alto, Calif. “But when it comes to the interface region, we’ve never been able to resolve individual structures. We have been able only to see conglomerates of various structures. Now we will finally be able to observe the details.”

IRIS’s images will be three to four times as detailed as the images from NASA’s Solar Dynamics Observatory – though SDO can observe the whole sun at once. SDO’s wavelengths are not tailored, however, to see the interface region. Scientists can use IRIS observations to hone in on smaller details while working with the larger instruments, such as SDO or the Japan Aerospace Exploration Agency’s Hinode, to capture images of the entire sun. Together, the observatories will explore how the corona works and impacts Earth – SDO and Hinode monitoring the solar surface and outer atmosphere, with IRIS watching the region in between.

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These movies use data from the Japan Aerospace Exploration Agency’s Hinode mission to provide an example of IRIS’ improved resolution over previous observations. Credit: JAXA/Hinode/De Pontieu


Ultraviolet images look at only one wavelength of light at a time, but IRIS will also provide spectra, a kind of data that can show information about many wavelengths of light at once. Spectrographs split the sun’s light into its various wavelengths and measure how much of any given wavelength is present. This is then portrayed on a graph showing spectral "lines" – taller lines correspond to wavelengths in which the sun emits relatively more radiation.

Each spectral line also corresponds to a given temperature, so this provides information about how much material of a particular temperature is present. The images from IRIS' telescope will record observations of material at specific temperatures, ranging from 5,000 kelvins to 65,000 kelvins (8,540 F to 116,540 F) -- and up to 10 million kelvins (about 18 million F) during solar flares -- a range best suited to observe material on the sun's surface and in the interface region.

“By looking at spectra of material in these temperature ranges, we can also diagnose velocity and perhaps density of the material, too,” said De Pontieu.

The IRIS instrument will capture a new image every five to 10 seconds, and spectra about once every two seconds. These unique capabilities will be coupled with state-of-the-art 3-D numerical modeling sophisticated enough to deal with the complexity of this region. The modeling makes use of supercomputers at NASA’s Ames Research Center, Moffet Field, Calif.

In combination, IRIS’ resolution, fast imaging rate, wide temperature coverage and computer modeling will enable scientists for the first time to track solar material as it is accelerated and heated in the interface region and thus help pinpoint where and how the plasma gains energy and heat along its travels through the lower levels of the solar atmosphere.

IRIS was developed by Lockheed Martin as a NASA Small Explorer mission. The NASA Explorer Program is designed to provide frequent, low-cost access to space for heliophysics and astrophysics missions using small- to mid-sized spacecraft. Goddard manages the Explorer Program for the agency’s Science Mission Directorate in Washington. Major contributions for IRIS were provided by Lockheed Martin Sensing and Exploration Systems, NASA’s Ames Research Center, Smithsonian Astrophysical Observatory, Montana State University, Stanford University, the Norwegian Space Centre and the University of Oslo.

For more information about NASA's IRIS mission, please visit: 
Karen C. Fox
NASA's Goddard Space Flight Center, Greenbelt, Md.
NASA
Guillermo Gonzalo Sánchez Achutegui
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martes, 9 de abril de 2013

NASA - Sun's Quiet Corona

Hola amigos: A VUELO DE UN QUINDE EL BLOG., la Agencia Espacial NASA, nos envía esta bellísima imagen de El Sol, enfocando la Corona con su último aparato llamado: the Solar Dynamics Observatory's Atmospheric Imaging Assembly (AIA), donde se aprecia la corona solar en completa calma, o quieta como la define la NASA
Les sugiero hagan clik sobre la imagen y apreciarán pantalla gigante la imagen de El Sol y lean la versión original de la NASA ... en inglés....
 


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sábado, 16 de febrero de 2013

NASA - Flux Ropes on the Sun


 Image of magnetic loops on the sun, captured by NASA's Solar Dynamics Observatory (SDO). It has been processed to highlight the edges of each loop to make the structure more clear. Image Credit: NASA/Goddard Space Flight Center/SDO

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sábado, 21 de julio de 2012

Astronomy: NASA Telescope Captures Sharpest Images of Sun's Corona

Hi My Friends: A VUELO DE UN QUINDE EL BLOG., A telescope launched July 11 aboard a NASA sounding rocket has captured the highest-resolution images ever taken of the sun's million-degree atmosphere called the corona. The clarity of the images can help scientists better understand the behavior of the solar atmosphere and its impacts on Earth's space environment.
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Venus appears as a black dot on the lower left edge of the sun in this image from NASA's Transition Region and Coronal Explorer (TRACE), captured during the 2004 transit. Credit: NASA/TRACE/LMSAL


On June 5, 2012 at 6:03 PM EDT, the planet Venus will do something it has done only seven times since the invention of the telescope: cross in front of the sun. This transit is among the rarest of planetary alignments and it has an odd cycle. Two such Venus transits always occur within eight years of each other and then there is a break of either 105 or 121 years before it happens again.

The moments when Venus first appears to cross the limb of the sun and the moments it leaves, known as ingress and egress respectively, are historically the most scientifically important aspects of the transit since comparison of Venus's journey viewed from different points on Earth provided one of the earliest ways to determine the distance between Earth and the sun. The transit is also helpful to scientists today: NASA's Solar Dynamics Observatory (SDO) will be watching the June 2012 transit to help calibrate its instruments as well as to learn more about Venus's atmosphere.

Since the points at which Venus will first touch and later leave the sun is known down to minute detail, SDO can use this information to make sure its images are oriented to true solar North. Orienting instruments is a constant adjustment game for telescopes in space, since their original position can be shifted during launch. Various calibrations throughout the two years SDO has been in space have left the scientists confident that the instruments are highly accurate, but making sure that Venus appears in the SDO images exactly where scientists know it should be will help make sure SDO's orientation is accurate to within a tenth of a pixel.

Second, the SDO team can use the lightless center of Venus to help calibrate what is called the point spread function of the telescope. This function describes how much light leaks from one pixel into others around it. Since there is no light emitted from the very center of Venus as it crosses the sun, it serves as a perfect test case for an area of the image where the pixels should remain black. By measuring how much light bleeds into those pixels from the rest of the sun, the SDO team will have a better sense of how to correct for that. These measurements also help us to understand the black drop effect – in which a tiny black spot appears to connect Venus to the limb of the sun -- that bedeviled scientists' attempts to measure the exact position of Venus during transits in the 18th and 19th centuries.

And last, the SDO team hopes to learn more about Venus's atmosphere as it is partially transparent to the extreme ultraviolet light observed by the telescopes on SDO. Venus will appear to be a little bigger in longer wavelengths (such as 304) as compared to shorter wavelengths (such as 171). This difference tells us how much oxygen is in Venus’s atmosphere.

More information from SDO about the Venus Transit (and SDO footage of the transit available June 5 and June 6:
 
 


EVE Underflight Calibration Sounding Rocket Launches Successfully
06.23.12
 
UPDATE: June 23, 2012, 13:30 MDT: The NASA EVE Underflight Calibration Sounding Rocket launched successfully. Based on the quicklook realtime data, all of the rocket EVE instrument channels appear to have made excellent solar EUV irradiance measurements. The two new soft X-ray spectrometers appear to have worked too. Detailed data analysis will be done to further analyze the quality of the rocket data and to produce a solar EUV irradiance reference spectrum that then can be used to calibrate the satellite SDO EVE and other solar EUV instruments.
  http://www.youtube.com/watch?feature=player_embedded&v=TTfgOYb1Fn8
 http://www.youtube.com/watch?feature=player_embedded&v=TTfgOYb1Fn8
 On March 23, 2011, two on-board cameras followed a sounding rocket on its journey from Earth to space and back again. The rocket was launched to measure solar energy output and calibrate the EVE instrument on the Solar Dynamics Observatory. Credit: NASA
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The Solar Dynamics Observatory (SDO) was launched on 11 February 2010, and the EUV Variability Experiment (EVE), one of the three solar instruments aboard SDO, began normal operations on 1 May 2010. As part of the planned SDO EVE program, sounding rockets are flown regularly to provide underflight calibrations in order to more accurately track instrument degradation trends.

The principal investigator is Dr. Tom Woods from the Laboratory For Atmospheric And Space Physics, University of Colorado.

The next launch of the EVE underflight calibration sounding rocket payload is planned for June 23, 2012 at 13:00 MDT (window 13:00 - 13:30 MDT) (3:00pm EDT) from the White Sands Missile Range. This flight's primary purpose is to provide the third underflight calibration for the SDO EVE satellite instrument. Launch time is near local noon to minimize the atmospheric absorption of the solar EUV radiation during the rocket observations.

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NASA Telescope Captures Sharpest Images of Sun's Corona
 
 
WASHINGTON -- A telescope launched July 11 aboard a NASA sounding rocket has captured the highest-resolution images ever taken of the sun's million-degree atmosphere called the corona. The clarity of the images can help scientists better understand the behavior of the solar atmosphere and its impacts on Earth's space environment.

"These revolutionary images of the sun demonstrate the key aspects of NASA's sounding rocket program, namely the training of the next generation of principal investigators, the development of new space technologies, and scientific advancements," said Barbara Giles, director for NASA's Heliophysics Division at NASA Headquarters in Washington.

Launched from White Sands Missile Range in New Mexico, the 58-foot-tall sounding rocket carried NASA's High Resolution Coronal Imager (Hi-C) telescope. Weighing 464 pounds, the 10-foot-long payload took 165 images during its brief 620-second flight. The telescope focused on a large active region on the sun with some images revealing the dynamic structure of the solar atmosphere in fine detail. These images were taken in the extreme ultraviolet wavelength. This higher energy wavelength of light is optimal for viewing the hot solar corona.

"We have an exceptional instrument and launched at the right time," said Jonathan Cirtain, senior heliophysicist at NASA's Marshall Space Flight Center in Huntsville, Ala. "Because of the intense solar activity we're seeing right now, we were able to clearly focus on a sizeable, active sunspot and achieve our imaging goals."

The telescope acquired data at a rate of roughly one image every 5 seconds. Its resolution is approximately five times more detailed than the Atmospheric Imaging Assembly (AIA) instrument flying aboard NASA's Solar Dynamics Observatory (SDO). For comparison, AIA can see structures on the sun's surface with the clarity of approximately 675 miles and observes the sun in 10 wavelengths of light. Hi-C can resolve features down to roughly 135 miles, but observed the sun in just one wavelength of light.

The high-resolution images were made possible because of a set of innovations on Hi-C's optics array. Hi-C's mirrors are approximately 9 1/2 inches across, roughly the same size as the SDO instrument's. The telescope includes some of the finest mirrors ever made for space-based instrumentation. The increase in resolution of the images captured by Hi-C is similar to making the transition in television viewing from a cathode ray tube TV to high definition TV.

Initially developed at Marshall, the final mirror configuration was completed with inputs from partners at the Smithsonian Astrophysical Observatory (SAO) in Cambridge, Mass., and a new manufacturing technique developed in coordination with L-3Com/Tinsley Laboratories of Richmond, Calif.

The high-quality optics were aligned to determine the spacing between the optics and the tilt of the mirror with extreme accuracy. Scientists and engineers from Marshall, SAO, and the University of Alabama in Huntsville worked to complete alignment of the mirrors, maintaining optic spacing to within a few ten-thousandths of an inch.

NASA's suborbital sounding rockets provide low-cost means to conduct space science and studies of Earth's upper atmosphere. In addition, they have proven to be a valuable test bed for new technologies for future satellites or probes to other planets.

Launched in February 2010, SDO is an advanced spacecraft studying the sun and its dynamic behavior. The spacecraft provides images with clarity 10 times better than high definition television and provides more comprehensive science data faster than any solar observing spacecraft in history.

Partners associated with the development of the Hi-C telescope also include Lockheed Martin's Solar Astrophysical Laboratory in Palo Alto, Calif.; the University of Central Lancashire in Lancashire, England; and the Lebedev Physical Institute of the Russian Academy of Sciences in Moscow.

For more information about SDO, visit:

http://www.nasa.gov/sdo

For more information about NASA's sounding rocket program, visit:

http://sites.wff.nasa.gov/code810/

For more information about Hi-C, visit:

http://www.nasa.gov/topics/solarsystem/features/hic.html
 NASA
Guillermo Gonzalo Sánchez Achutegui
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