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

jueves, 10 de mayo de 2012

Astronomy: NASA Spacecraft Detects Changes in Martian Sand Dunes

Hi My Friends: A VUELO DE UN QUINDE EL BLOG., NASA's Mars Reconnaissance Orbiter has revealed that movement in sand dune fields on the Red Planet occurs on a surprisingly large scale, about the same as in dune fields on Earth.
Ripple Movement on Sand Dune in Nili Patera, Mars
Back-and-forth blinking of this two-image animation shows movement of ripples covering a sand dune on Mars. The images are part of a study published by Nature on May 9, 2012, reporting movement of Martian sand dunes at about the same flux (volume per time) as movement of dunes in Antarctica on Earth.

The before-and-after images were taken 15 weeks apart by the High Resolution Imaging Science Experiment (HiRISE) camera on NASA's Mars Reconnaissance Orbiter. The scale bar is 85 meters (279 feet). The site is part of a dune field inside the summit caldera of Nili Patera, an ancient volcano, at 8.7 degrees north latitude, 67.3 degrees east longitude.

The images show a dark, rippled sand dune overlying bright-toned rock. They have been "orthorectified," that is, adjusted such that they appear as if viewed from directly overhead. They were then positionally tied together by registering fixed features on the bedrock seen in one image to the same features seen in the other. When the images are blinked back and forth, ripple motion during the intervening period of 105 days is clearly seen.

The first image, in which the side of the dune toward the bottom of the frame looks paler due to lighting effects, was taken on June 30, 2007. It is one image product of HiRISE observation PSP_004339_1890. Other image products from the same observation are at http://hirise.lpl.arizona.edu/PSP_004339_1890 . The "after" image was taken on Oct. 13, 2007. Other image products from the same HiRISE observation are at http://hirise.lpl.arizona.edu/PSP_005684_1890 .

HiRISE is one of six instruments on NASA's Mars Reconnaissance Orbiter. The University of Arizona, Tucson, operates the orbiter's HiRISE camera, which was built by Ball Aerospace & Technologies Corp., Boulder, Colo. NASA's Jet Propulsion Laboratory, a division of the California Institute of Technology in Pasadena, manages the Mars Reconnaissance Orbiter Project for the NASA Science Mission Directorate, Washington.

Image Credit: NASA/JPL-Caltech/Univ. of Arizona/JHU-APL


PASADENA, Calif. -- NASA's Mars Reconnaissance Orbiter has revealed that movement in sand dune fields on the Red Planet occurs on a surprisingly large scale, about the same as in dune fields on Earth.
This is unexpected because Mars has a much thinner atmosphere than Earth, is only about one percent as dense, and its high-speed winds are less frequent and weaker than Earth's.
For years, researchers debated whether sand dunes observed on Mars were mostly fossil features related to past climate, rather than currently active. In the past two years, researchers using images from Mars Reconnaissance Orbiter's High Resolution Imaging Science Experiment (HiRISE) camera have detected and reported sand movement.
Now, scientists using HiRISE images have determined that entire dunes as thick as 200 feet (61 meters) are moving as coherent units across the Martian landscape. The study was published online today by the journal Nature.
"This exciting discovery will inform scientists trying to better understand the changing surface conditions of Mars on a more global scale," said Doug McCuistion, director, NASA's Mars Exploration Program, Washington. "This improved understanding of surface dynamics will provide vital information in planning future robotic and human Mars exploration missions."
Researchers analyzed before-and-after images using a new software tool developed at the California Institute of Technology (Caltech) in Pasadena, Calif. The tool measured changes in the position of sand ripples, revealing the ripples move faster the higher up they are on a dune.
The study examined images taken in 2007 and 2010 of the Nili Patera sand dune field located near the Martian equator. By correlating the ripples' movement to their position on the dune, the analysis determined the entire dunes are moving. This allows researchers to estimate the volume, or flux, of moving sand.
"We chose Nili Patera because we knew there was sand motion going on there, and we could quantify it," said Nathan Bridges, a planetary scientist at Johns Hopkins University Applied Physics Laboratory in Laurel, Md., and lead author of the Nature paper. "The Nili dunes also are similar to dunes in places like Antarctica and to other locations on Mars."
The study adds important information about the pace at which blowing sand could be actively eroding rocks on Mars. Using the new information about the volume of sand that is moving, scientists estimate rocks in Nili Patera would be worn away at about the same pace as rocks near sand dunes in Antarctica, where similar sand fluxes occur.
"Our new data shows wind activity is indeed a major agent of evolution of the landscape on Mars," said Jean-Philippe Avouac, Caltech team leader. "This is important because it tells us something about the current state of Mars and how the planet is working today, geologically."
Scientists calculate that if someone stood in the Nili Patera dunes and measured out a one-yard (one-meter) width, they would see more than two cubic yards (1,500 liters) of sand pass by in an Earth year, about as much as in a child's sand box.
"No one had estimates of this flux before," said Bridges. "We had seen with HiRISE that there was dune motion, but it was an open question how much sand could be moving. Now, we can answer that."
Scientists will use the information to understand broader mysteries on Mars, like why so much of the surface appears heavily eroded, how that occurred, and whether it is a current process or it was done in the past. Scientists can now point to sand flux as a mechanism capable of creating significant erosion today on the Red Planet.
The HiRISE camera provides unprecedented resolution in studying the Martian landscape. NASA's Jet Propulsion Laboratory, Pasadena, Calif., a division of Caltech, manages the Mars Reconnaissance Orbiter for NASA's Science Mission Directorate in Washington. Lockheed Martin Space Systems, Denver, built the spacecraft. HiRISE is operated by the University of Arizona and was built by Ball Aerospace & Technologies Corp., Boulder, Colo.
For related images and more information about Mars Reconnaissance Orbiter, visit: http://www.nasa.gov/mro .
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
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martes, 1 de noviembre de 2011

ASTRONOMY: Mars' Newton Crater

Hi My Friends: A VUELO DE UN QUINDE EL BLOG., Newton is a large crater on Mars, with a diameter close to 300 km. It is located south of the planet's equator in the heavily cratered highlands of Terra Sirenum. The impact that formed Newton likely occurred more than 3 billion years ago. The crater was named in 1973 in honour of Sir Isaac Newton. Mars' Newton Crater
This image, which combines orbital imagery with 3-D modeling, shows flows that appear in spring and summer on a slope inside Mars' Newton Crater. Sequences of observations recording the seasonal changes at this site and a few others with similar flows might be evidence of salty liquid water active on Mars today. Evidence for that possible interpretation is presented in a report by McEwen et al. in the Aug. 5, 2011, edition of Science.

This image has been reprojected to show a view of a slope as it would be seen from a helicopter inside the crater, with a synthetic Mars-like sky. The source observation was made May 30, 2011, by the High Resolution Imaging Science Experiment (HiRISE) camera on NASA's Mars Reconnaissance Orbiter. Color has been enhanced. The season was summer at the location, 41.6 degrees south latitude, 202.3 degrees east longitude.

The flow features are narrow (one-half to five yards or meters wide), relatively dark markings on steep (25 to 40 degree) slopes at several southern hemisphere locations. Repeat imaging by HiRISE shows the features appear and incrementally grow during warm seasons and fade in cold seasons.

jueves, 21 de enero de 2010

NASA................... LAS DUNAS EN LOS CRÁTERES DE MARTE

LAS DUNAS DEL PLANETA MARTE:
Dunas de materiales arenosos han quedado atrapadas en el fondo de muchos cráteres marcianos. Esta imagen es un ejemplo, de un cráter en Noachis Terra, al oeste de la gigante cuenca de impacto Hellas. La cámara de alta resolución HiRISE a bordo de la nave espacial Mars Reconnaisance Orbiter, MRO, capturó esta impresionante imagen el pasado 28 de Diciembre de 2009.

Las dunas son este caso lineales, se cree que debido a las direcciones cambiantes del viento. En algunas partes, cada duna es muy similar a las dunas adyacentes, inluyendo una banda rojiza (o coloreada por el polvo) en las pendientes que se encuentran orientadas hacia el noreste. Grandes piedras angulares cubren el suelo entre las dunas.

Hola amigos: A VUELO DE UN QUINDE EL BLOG., hemos recibido de la NASA, una vista captada con una cámara de alta resolución HiRISE, en donde se observan claramente las dunas
de Marte en forma lineal. Dunas arenosas que han sido atrapadas en el fondo de muchos cráteres.

Versión de la NASA
In English:

Dunes of Mars

Dunes of sand-sized materials have been trapped on the floors of many Martian craters. This is one example, from a crater in Noachis Terra, west of the giant Hellas impact basin. The High Resolution Imaging Science Experiment (HiRISE) camera on NASA's Mars Reconnaissance Orbiter captured this view on Dec. 28, 2009.

The dunes here are linear, thought to be due to shifting wind directions. In places, each dune is remarkably similar to adjacent dunes, including a reddish (or dust colored) band on northeast-facing slopes. Large angular boulders litter the floor between dunes.

Image Credit: NASA/JPL-Caltech/University of Arizona

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

miércoles, 9 de diciembre de 2009

MARTE.................... LAS DUNAS DEL CRÁTER PROCTER

Hola amigos: A VUELO DE UN QUINDE EL BLOG., hemos recibido de la NASA esta espectacular vista captada a las dunas que hay en el "Cráter Proctor" del planeta Marte
Aquí apreciamos una bella imagen de las Dunas del Cráter Proctor de Marte, vista captada por el MRO, fuente: NASA
El Cráter de Proctor, Esta vista del Experimento de Ciencia de Imagimática de Alta resolución (HiRISE) la cámara sobre el Orbitador de Reconocimiento de Marte de la NASA es del Cráter de Proctor. Los cantos relativamente brillantes, pequeños son ondulación. De su estudio sobre la Tierra, y el examen de primer plano por , sí, pero gracias a la Mars Reconnaissance Orbiter (MRO), los científicos conjeturan que las ondulación son compuestas de arena fina (menos de 200 micras en el diámetro) o depuran la arena cubierta de la arena coarser y gránulos.
Bedforms más grande, más oscuro es dunas tranquilas de la arena, más probablemente de tamaño fino. Las ondulación tienden a moverse más despacio que dunas. A causa de esto, con el tiempo, se ondula son cubiertos del polvo, posiblemente explicando el tono brillante visible aquí. Las dunas son oscuras probablemente porque ellos son compuestos de arena basaltic (sacado de la roca oscura, volcánica.
Versión de la NASA
In English:
Proctor Crater, Mars
This view from the High Resolution Imaging Science Experiment (HiRISE) camera on NASA's Mars Reconnaissance Orbiter is of the Proctor Crater. The relatively bright, small ridges are ripples. From their study on Earth, and close-up examination by the MER rovers (roving elsewhere on Mars), scientists surmise that the ripples are composed of fine sand (less than 200 microns in diameter) or fine sand coated with coarser sand and granules.
The larger, darker bedforms are dunes composed of sand, most likely of fine size. Ripples tend to move slower than dunes. Because of this, over time, ripples get covered with dust, possibly explaining the bright tone visible here. The dunes are dark probably because they are composed of basaltic sand (derived from dark, volcanic rock) that is blown by the wind enough that dust does not sufficiently accumulate to change their color.
This area in Proctor Crater is being monitored by HiRISE to document any changes over time.
This image is a portion of the HiRISE observation taken on Feb. 9, 2009.
Image Credit: NASA/JPL-Caltech/University of Arizona
Guillermo Gonzalo Sánchez Achutegui

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