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ALGUNA VEZ FUE PRIMAVERA || Виртуальная Академия Живописи - Inicio

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Виртуальная Академия Живописи - Inicio

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Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

Виртуальная Академия Живописи
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Виртуальная Академия Живописи



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VALIJA OLVIDADA || Виртуальная Академия Живописи - Inicio

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Виртуальная Академия Живописи - Inicio

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Виртуальная Академия Живописи

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Виртуальная Академия Живописи



Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

Виртуальная Академия Живописи
La imagen puede contener: cielo, exterior y naturaleza

Виртуальная Академия Живописи



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EL PRECIO DE LA TENTACIÓN || Виртуальная Академия Живописи - Inicio

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Виртуальная Академия Живописи - Inicio

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Виртуальная Академия Живописи



Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

Виртуальная Академия Живописи
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Виртуальная Академия Живописи



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LA MUERTE DEL VERDUGO || Виртуальная Академия Живописи - Inicio

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Виртуальная Академия Живописи



Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

Виртуальная Академия Живописи
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Виртуальная Академия Живописи



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EL MIRADOR DE LA ROSA || Виртуальная Академия Живописи - Inicio

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Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

Виртуальная Академия Живописи
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LA TAJADA || Виртуальная Академия Живописи - Inicio

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Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

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NINGUNA ESCRITURA ES SAGRADA || Виртуальная Академия Живописи - Inicio

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Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

Виртуальная Академия Живописи
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Виртуальная Академия Живописи



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EL ETERNO ADÁN || Виртуальная Академия Живописи - Inicio

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Виртуальная Академия Живописи

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Виртуальная Академия Живописи



Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

Виртуальная Академия Живописи
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Виртуальная Академия Живописи



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LA VIDA COMO IDEA || Виртуальная Академия Живописи - Inicio

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Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

Виртуальная Академия Живописи
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Виртуальная Академия Живописи



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EQUILIBRIO || Виртуальная Академия Живописи - Inicio

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Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

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TESTIMONIO FINAL || Виртуальная Академия Живописи - Inicio

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Бьорн Рихтер - Biorn Richter. Известный художник, иллюстратор, графический дизайнер и скульптор.

Живопись - сюрреализм.

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60º CONCURSO INTERNACIONAL DE POESIA Y NARRATIVA “ACERCANDO PALABRAS 2018” [PRENSA DE TERCEROS, no vinculante con el blog "el dispensador"]

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60º  CONCURSO  INTERNACIONAL 
DE  POESIA  Y  NARRATIVA
“ACERCANDO  PALABRAS  2018”
 
El Instituto Cultural Latinoamericano desde su nacimiento en el año 2000 se propuso brindar un espacio de oportunidades, es por eso que invita a autores mayores de 16 años, a participar del 60º Concurso Internacional de Poesía y Narrativa “ACERCANDO PALABRAS 2018”.
Las obras deberán ser inéditas, no premiadas, tema libre, en idioma español.
 
PUEDEN PARTICIPAR CON:   
POESIA: de 3 a 7 poemas, con un máximo de 30 líneas cada uno.
NARRATIVA: mínimo 90 líneas, máximo 210 líneas, ya sea en uno o varios trabajos.
 
PRESENTACIÓN DE LAS OBRAS: Las obras se presentarán en hojas tamaño A4, por triplicado, mecanografiadas o PC, escritas por una sola de sus caras, firmadas con seudónimo.
 
DATOS DEL AUTOR: En un sobre pequeño, que irá junto con las obras, tendrá que incluir los siguientes datos: Nombre y Apellido, DNI, Dirección, E-mail y Teléfono.
 
ENVIOS:
60º Concurso Internacional de Poesía y Narrativa “ACERCANDO  PALABRAS 2018
Lebensohn 239, (C.P. B 6000 BHE), Junín, Pcia. de BUENOS AIRES, ARGENTINA.
 
Las obras que resulten finalistas con “Mención de Honor”, quedarán seleccionadas para participar Intercambios culturales con Cuba, Brasil, Chile, Uruguay, Colombia, España e Italia (con precios muy accesibles), que se realizan cada año, presentándose en distintos lugares.
Y tendrán la oportunidad de formar parte de la Antología cooperativa “ACERCANDO  PALABRAS”, y de esta forma integrarán la final por los PRIMEROS  PREMIOS  que son:
 
1º PREMIO:  Edición de LIBRO individual de 64 páginas, 100 ejemplares, Diploma y Trofeo, en poesía y  narrativa. Incluye presentación en nuestros eventos, intercambios culturales y publicidad en nuestro stand.
2º PREMIO: Trofeo y Diploma.              
3º, 4º y 5º PREMIO: Medalla y Diploma.
 
Se entregarán las Menciones Especiales que el jurado estime conveniente, recibirán Medalla y Diploma, el resto de los integrantes de la Antología recibirán Diploma de “MENCIÓN  DE  HONOR”.
 
CEREMONIA DE PREMIACIÓN Y ENTREGA DE ANTOLOGÍAS:  Se realizará en el mes de ABRIL de 2018, (salvo que surgieran imprevistos de fuerza mayor), en el Salón de la Sociedad Siria de Junín (Belgrano 140) de nuestra ciudad, la ceremonia contará con diferentes exposiciones, etc. Luego, podrán compartir una cena, más detalles le serán informados cuando reciban la invitación especial para asistir a la Ceremonia.  Los autores que no puedan asistir a la ceremonia, podrán solicitar el envío por correo en forma Contrareembolso.
RECEPCIÓN DE OBRASLas obras se pueden enviar hasta el 15 de NOVIEMBRE de 2017 (inclusive). Se toma en cuenta la fecha del matasellos del correo.
 
JURADO: Estará integrado por personalidades del quehacer literario y su fallo será inapelable. El concurso no será declarado desierto. Los participantes toman conocimiento y aceptación de las bases del mismo. Cualquier cuestión no prevista será resuelta por el jurado.
 
 
Instituto Cultural Latinoamericano
Lebensohn 239 – C.P. B 6000 BHE- Junín - Buenos Aires - Argentina
Tel.  +54-9-236-4423734- de  8 a 14 hs.
Facebook: Instituto Cultural Latinoamericano

NASA Missions See Effects at Mars From Large Solar Storm | NASA

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NASA Missions See Effects at Mars From Large Solar Storm | NASA



Large Solar Storm 

Sparks Global Aurora 

and Doubles Radiation 

Levels on the Martian Surface

Animation shows the sudden appearance of a bright aurora on Mars
This animation shows the sudden appearance of a bright aurora on Mars during a solar storm. The purple-white color scheme shows the intensity of ultraviolet light over the course of the event, from observations on Sept. 12 and 13, 2017, by the Imaging Ultraviolet Spectrograph on NASA's MAVEN orbiter.
Credits: NASA/GSFC/Univ. of Colorado
An unexpectedly strong blast from the Sun hit Mars this month, observed by NASA missions in orbit and on the surface.
"NASA's distributed set of science missions is in the right place to detect activity on the Sun and examine the effects of such solar events at Mars as never possible before," said MAVEN Program Scientist Elsayed Talaat, program scientist at NASA Headquarters, Washington, for NASA's Mars Atmosphere and Volatile Evolution, or MAVEN, mission.
The solar event on Sept. 11, 2017 sparked a global aurora at Mars more than 25 times brighter than any previously seen by the MAVEN orbiter, which has been studying the Martian atmosphere's interaction with the solar wind since 2014.
Appearance of a bright aurora on Mars
These images from the Imaging Ultraviolet Spectrograph on NASA's MAVEN orbiter show the appearance of a bright aurora on Mars during a solar storm in September 2017. The purple-white colors shows the intensity of ultraviolet light on Mars' night side before (left) and during (right) the event.
Credits: NASA/GSFC/Univ. of Colorado
It produced radiation levels on the surface more than double any previously measured by the Curiosity rover's Radiation Assessment Detector, or RAD, since that mission's landing in 2012. The high readings lasted more than two days.
Strangely, it occurred in conjunction with a spate of solar activity during what is usually a quiet period in the Sun's 11-year sunspot and storm-activity cycle. This event was big enough to be detected at Earth too, even though Earth was on the opposite side of the Sun from Mars.
Energetic particles from a large solar storm
Energetic particles from a large solar storm in September 2017 were seen both in Mars orbit by NASA's MAVEN orbiter, and on the surface of Mars by NASA's Curiosity Mars rover.
Credits: NASA/GSFC/JPL-Caltech/Univ. of Colorado/SwRI-Boulder/UC Berkeley

"The current solar cycle has been an odd one, with less activity than usual during the peak, and now we have this large event as we're approaching solar minimum," said Sonal Jain of the University of Colorado Boulder's Laboratory for Atmospheric and Space Physics, who is a member of MAVEN's Imaging Ultraviolet Spectrograph instrument team.
"This is exactly the type of event both missions were designed to study, and it's the biggest we've seen on the surface so far," said RAD Principal Investigator Don Hassler of the Southwest Research Institute's Boulder, Colorado, office. "It will improve our understanding of how such solar events affect the Martian environment, from the top of the atmosphere all the way down to the surface."
RAD monitored radiation levels inside the encapsulated spacecraft that carried Curiosity from Earth to Mars in 2011 and 2012 and has been steadily monitoring the radiation environment at Mars' surface for more than five years.
RAD findings strengthen understanding of radiation's impact on Mars habitability, a key objective of the Curiosity mission. NASA is also using RAD findings for planning the safety of human-crew missions to Mars. Highly energetic solar events can significantly increase the radiation that penetrates through the atmosphere to the Mars surface. The increased radiation also interacts with the atmosphere to produce additional, secondary particles, which need to be understood and shielded against to ensure the safety of future human explorers.
These profiles show the brightness of auroras in Mars’ atmosphere
These profiles show the brightness of auroras in Mars’ atmosphere at different altitudes. The solid black profile on the right is from a September 2017 solar storm. Barely visible along the vertical axis is a dashed profile from the previous brightest aurora seen by MAVEN, in March 2015.
Credits: NASA/GSFC/Univ. of Colorado
"If you were outdoors on a Mars walk and learned that an event like this was imminent, you would definitely want to take shelter, just as you would if you were on a space walk outside the International Space Station," Hassler said. "To protect our astronauts on Mars in the future, we need to continue to provide this type of space weather monitoring there."
The Sun is always emitting a continuous stream of charged particles, mainly electrons and protons. Occasionally, eruptions called coronal mass ejections occur, with higher density, energy and speed of the ejected particles. These events vary in strength. Strong ones cause dramatic aurora displays on Earth, and very strong ones can disrupt communications. Some coronal mass ejections, such as this month's event, are broad enough in extent to affect planets in quite different directions from the Sun.
Jain said, "When a solar storm hits the Martian atmosphere, it can trigger auroras that light up the whole planet in ultraviolet light. The recent one lit up Mars like a light bulb. An aurora on Mars can envelope the entire planet because Mars has no strong magnetic field like Earth's to concentrate the aurora near polar regions. The energetic particles from the Sun also can be absorbed by the upper atmosphere, increasing its temperature and causing it to swell up."
Analysis of the data is just beginning. "We expect to get a better understanding of how the process operates in the upper atmosphere of Mars today, and a better understanding of how storms like this may have stripped away much of the Martian atmosphere in the past," said MAVEN Principal Investigator Bruce Jakosky of the University of Colorado Boulder. The loss of most of Mars' original atmosphere to space is linked to the planet's change from wet to dry, long ago.
Besides the observations by instruments on MAVEN and Curiosity, effects of the Sept. 11, 2017 event were also detected by instruments on NASA's Mars Odyssey orbiter and Mars Reconnaissance Orbiter and by the European Space Agency's Mars Express orbiter.
NASA's Goddard Space Flight Center, Greenbelt, Maryland, manages the MAVEN mission for the principal investigator at the University of Colorado. NASA's Jet Propulsion Laboratory, Pasadena, California, manages the Curiosity mission for NASA's Science Mission Directorate, Washington. RAD is supported by NASA's Human Exploration and Operations Mission Directorate, Washington, under JPL subcontract to Southwest Research Institute, San Antonio, and by Germany's national space agency (DLR) under contract with Christian-Albrechts-Universitat, Kiel, Germany.
Guy Webster
Jet Propulsion Laboratory, Pasadena, Calif.
818-354-6278
guy.webster@jpl.nasa.gov
Nancy Neal Jones
Goddard Space Flight Center, Greenbelt, Md.
301-286-0039
nancy.n.jones@nasa.gov
Jim Scott
University of Colorado Boulder
303-492-3114
jim.scott@colorado.edu
Deb SchmidSouthwest Reseach
Institute, San Antonio
210-522-2254
deb.schmid@swri.org
Laurie Cantillo / Dwayne Brown
NASA Headquarters, Washington
202-358-1077 / 202-358-1726
laura.l.cantillo@nasa.gov / dwayne.c.brown@nasa.gov
2017-254
Last Updated: Oct. 2, 2017
Editor: Tony Greicius

Hubble Paves Scientific Paths for NASA's James Webb Space Telescope | NASA

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Hubble Paves Scientific Paths for NASA's James Webb Space Telescope | NASA



Hubble Is Paving 

Scientific Paths for 

NASA’s James Webb 

Space Telescope

NASA’s Hubble Space Telescope is helping identify potential celestial targets for the James Webb Space Telescope through a series of preparatory science observations to be completed before Webb is ready to make observations of its own.
Hubble image of the Westlerlund 2 cluster
This image of the Westerlund 2 cluster includes both visible- and infrared-light observations from Hubble, and was released in 2015 as part of the Hubble Space Telescope's 25th anniversary. The highlighted area, featuring the cluster of stars, was created from visible-light and near-infrared exposures. The black-and-white zoomed portion shows a new image of the star cluster in only one infrared wavelength. This image was taken as part of astronomer Elena Sabbi’s preparatory science project, one of many such observations astronomers will use to identify potential targets for NASA’s James Webb Space Telescope.
Credits: NASA, ESA, the Hubble Heritage Team (STScI/AURA), A. Nota (ESA/STScI), E. Sabbi (ESA/STScI), and the Westerlund 2 Science Team
This preparatory science program began in 2016 in response to the desire of astronomers to use Hubble observations to set the stage for Webb. The program marked the first time astronomers were encouraged to submit science proposals for Hubble observations that could pave the way for Webb’s own observations. So far, 40 proposals have been approved.
Using multiple observatories to analyze the same objects can identify aspects of those objects that using one observatory alone cannot. Hubble was designed to primarily observe the universe through visible light (though it is also able to see into the ultraviolet and near-infrared), while Webb is specifically designed to observe the universe in infrared light, through both direct imaging and spectroscopy. Spectroscopy measures the spectrum of light, which scientists analyze to determine physical properties of what is being observed, including temperature, mass, and chemical composition.
Several preparatory science proposals in the program promise to use Hubble to deliver observational data Webb is not designed to collect. Hubble is able to see parts of the visible-light spectrum that Webb is not able to observe, and so it can fill potential observational gaps. For example, Hubble can examine exoplanets in light across the full electromagnetic spectrum available to it, with emphasis on the ultraviolet and blue wavelengths. Coupled with Webb’s infrared capabilities, both telescopes will deliver a more complete picture of the exoplanet systems.
Other proposals have a goal of using Hubble to carry some of the workload for Webb, allowing astronomers to use their observation time with Webb more efficiently. Astronomers could use Hubble to survey multiple targets and determine the best strategy for Webb to perform further analysis. Depending on the data Hubble returned, astronomers would know to observe targets with Webb in a broad range of infrared wavelengths or to focus on smaller wavelength ranges, thus giving them a better starting point for their own observations.
Hubble and Webb:  Probing protoplanetary disks
One specific preparatory science proposal was submitted by a team of scientists led by Elena Sabbi, an astronomer at the Space Telescope Science Institute in Baltimore, Maryland. Sabbi and her team are using Hubble to survey the young, massive star cluster Westerlund 2, located about 20,000 light-years from Earth in the constellation of Carina. They have spent one year observing the cluster and plan to observe it for two additional years with Hubble.
Black and white Hubble image of the Westerlund cluster
This black-and-white image of the Westerlund 2 star cluster focuses on the central part of the cluster. The image was taken by Hubble in the 800-nanometer wavelength range, in the near-infrared part of the electromagnetic spectrum just outside the range of visible light. This image was taken as part of astronomer Elena Sabbi’s preparatory science project, one goal of which is to use Hubble to identify objects of interest for NASA’s James Webb Space Telescope.
Credits: NASA, ESA, and E. Sabbi (ESA/STScI)
One of the primary science objectives for Webb is to observe the birth of stars and protoplanetary systems, and Sabbi’s observations promise to catalog hundreds of potential targets on which Webb could follow up. Sabbi and her team are using Hubble to look for binary stars in their earliest stages of development, where they are likely to be surrounded by protoplanetary disks — disks of dense gas and dust that encircle newly formed stars and eventually coalesce into planets.
Binary star systems contain two stars in orbit around a common central point, and some of these systems have been found to host planets. Astronomers are still trying to understand how planets form and evolve in such an environment. Sabbi said Westerlund 2’s youth makes it a prime candidate for understanding this, because as a cluster ages, binary stars often separate and are ejected from the cluster. The team’s first year of observations showed Westerlund 2 contained many more binary stars than expected, based on other observations of star clusters.
“Massive clusters are very crowded places, like [New York City’s] Times Square during New Year’s Eve,” explained Sabbi. “And, just as how in Times Square the pushing and pulling of other people can separate you from your friends, the gravitational force of nearby stars can separate a star from its companion.”
The Webb telescope’s near-infrared spectrograph (NIRSpec) instrument could analyze the composition of protoplanetary disks Sabbi’s team finds around the binary stars. Armed with this data, the team could then discover how planet formation differs between single and binary star systems.
“The light that comes from these planetary systems during formation cannot be seen by Hubble,” Sabbi explained. “Hubble sees the light coming from the star, but in Webb data the light will be dominated by the planetary disk.”
The veteran space telescope
Located so close to Earth, Hubble has benefitted from multiple servicing missions to upgrade its components and science instruments, and thus its ability to survey the universe. Launched in 1990, Hubble has been orbiting Earth and observing the cosmos for 27 years — but that does not mean it’s ready for retirement.
“Hubble is at the peak of its scientific capability,” said Jim Jeletic, deputy project manager for the Hubble program at NASA’s Goddard Space Flight Center in Greenbelt, Maryland. He added that the veteran space telescope “still has redundancy in all of its critical systems” and could continue its mission “well into the next decade,” meaning Hubble and Webb could work in tandem for years to come.
The James Webb Space Telescope, the scientific complement to NASA's Hubble Space Telescope, will be the most powerful space telescope ever built. Webb is an international project led by NASA with its partners, ESA (European Space Agency) and CSA (Canadian Space Agency).                                                     
For more information about the Webb telescope, visit: www.webb.nasa.gov or www.nasa.gov/webb
For more information about the Hubble telescope, visit: www.nasa.gov/hubble
Last Updated: Oct. 2, 2017
Editor: Lynn Jenner

Goodbye to the Dark Side | NASA

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Goodbye to the Dark Side | NASA





Goodbye to the Dark Side

Saturn
Stunning views like this image of Saturn's night side are only possible thanks to our robotic emissaries like Cassini. Until future missions are sent to Saturn, Cassini's image-rich legacy must suffice.
Because Earth is closer to the Sun than Saturn, observers on Earth only see Saturn’s day side. With spacecraft, we can capture views (and data) that are simply not possible from Earth, even with the largest telescopes.
This view looks toward the sunlit side of the rings from about 7 degrees above the ring plane. The image was taken in visible light with the wide-angle camera on NASA's Cassini spacecraft on June 7, 2017.
The view was obtained at a distance of approximately 751,000 miles (1.21 million kilometers) from Saturn. Image scale is 45 miles (72 kilometers) per pixel.
The Cassini spacecraft ended its mission on Sept. 15, 2017.
The Cassini mission is a cooperative project of NASA, ESA (the European Space Agency) and the Italian Space Agency. The Jet Propulsion Laboratory, a division of the California Institute of Technology in Pasadena, manages the mission for NASA's Science Mission Directorate, Washington. The Cassini orbiter and its two onboard cameras were designed, developed and assembled at JPL. The imaging operations center is based at the Space Science Institute in Boulder, Colorado.
For more information about the Cassini-Huygens mission visit https://saturn.jpl.nasa.gov and https://www.nasa.gov/cassini. The Cassini imaging team homepage is at http://ciclops.org.
CreditNASA/JPL-Caltech/Space Science Institute
Last Updated: Oct. 2, 2017
Editor: Tony Greicius

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