Mostrando entradas con la etiqueta The comet 67P/Churyumov-Gerasimenko. Mostrar todas las entradas
Mostrando entradas con la etiqueta The comet 67P/Churyumov-Gerasimenko. Mostrar todas las entradas

domingo, 26 de marzo de 2017

ESA : Antes y después: Rosetta detecta cambios sin precedentes

http://www.esa.int/Our_Activities/Space_Science/Rosetta/Before_and_after_unique_changes_spotted_on_Rosetta_s_comet
 

Comet changes

Antes y después: Rosetta detecta cambios sin precedentes

21 marzo 2017
Durante su misión en 67P/Churyumov-Gerasimenko, Rosetta ha observado todo tipo de cambios, como fracturas en expansión, derrumbes de acantilados o el enterramiento de formaciones y la aparición de nuevas figuras debido al desplazamiento de material.
Un estudio publicado hoy en la revista Science resume los tipos de cambios en la superficie del cometa observados a lo largo de los dos años que Rosetta pasó en él. Las diferencias más notables se observaron antes y después del periodo más activo del cometa, el perihelio, al llegar al punto de su órbita más cercano al Sol. 
“La monitorización continua del cometa durante su periplo por el interior del Sistema Solar nos permitió ver como nunca antes los cambios que experimentó al acercarse al Sol y la rapidez con que dichos cambios se produjeron”, explica Ramy El-Maarry, director del estudio. 
 
Comet changes: new fracture and boulder movement in Anuket

Los cambios, ya se tratase de fenómenos transitorios únicos o de larga duración, tienen que ver con distintos procesos geológicos: meteorización y erosión, sublimación del hielo de agua o estrés mecánico debido a la rotación del cometa. 
La meteorización, o desgaste in situ, tiene lugar en todo el cometa debido al debilitamiento de los materiales consolidados, ya sea por los ciclos de calentamiento y enfriamiento diarios o por los cambios de temperatura estacionales, que provocan su fragmentación. En combinación con el calentamiento de los hielos subterráneos que causan la salida de gas, esto puede llevar al derrumbe repentino de las paredes de acantilados, algo demostrado mediante observaciones en distintos puntos del cometa. 
Sin embargo, se cree que un proceso muy distinto es el responsable de la fractura de 500 m de longitud detectada en agosto de 2014 a lo largo del cuello del cometa en la región de Anuket, y que en diciembre de 2014 había crecido unos 30 m. En este caso, se debería a la mayor velocidad de rotación del cometa al ir acercándose a su perihelio. 
Además, imágenes capturadas en 2016 muestran una nueva fractura de 150-300 m de longitud, paralela a la fractura original. 
Cerca de ambas, una roca de 4 m de diámetro se había movido unos 15 m, según se calculó al comparar las fotografías tomadas en marzo de 2015 y junio de 2016. No está claro si la extensión de la fractura y el desplazamiento de la roca están relacionados o si se deben a distintos procesos.
 
Comet changes: moving boulder in Khonsu

Por otro lado, en la región de Jonsu, situada en el lóbulo mayor del cometa, se detectó que una roca mucho mayor, de unos 30 m de diámetro y unas 12.800 toneladas, se había desplazado nada más y nada menos que 140 m. 
Se cree que lo hizo durante el perihelio, ya que en ese periodo se identificaron varias emisiones cerca de su lugar original. El desplazamiento podría tener dos causas: bien el material sobre el que se asentaba se erosionó, provocando que la roca rodase por la pendiente, bien una potente emisión podría haberla llevado directamente hasta su nueva ubicación. 

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Para más información:
Markus Bauer








ESA Science and Robotic Exploration Communication Officer









Tel: +31 71 565 6799









Mob: +31 61 594 3 954









Email: markus.bauer@esa.int
M. Ramy El-Maarry
University of Colorado
Email: Mohamed.elmaarry@lasp.colorado.edu
Matt Taylor

ESA Rosetta project scientist

Email: matt.taylor@esa.int
 
 
Comet changes

Before and after: unique changes spotted on Rosetta’s comet

21 March 2017
Growing fractures, collapsing cliffs, rolling boulders and moving material burying some features on the comet’s surface while exhuming others are among the remarkable changes documented during Rosetta’s mission.
A study published in Science today summarises the types of surface changes observed during Rosetta’s two years at Comet 67P/Churyumov-Gerasimenko. Notable differences are seen before and after the comet’s most active period – perihelion – as it reached its closest point to the Sun along its orbit.
“Monitoring the comet continuously as it traversed the inner Solar System gave us an unprecedented insight not only into how comets change when they travel close to the Sun, but also how fast these changes take place,” says Ramy El-Maarry, study leader
 
Comet changes: new fracture and boulder movement in Anuket

The changes, which were either unique transient phenomena or taking place over longer periods, are linked to different geological processes: in situ weathering and erosion, sublimation of water-ice, and mechanical stresses arising from the comet’s spin.
In situ weathering occurs all over the comet, where consolidated materials are weakened – such as by heating and cooling cycles on daily or seasonal timescales – causing their fragmentation. Combined with heating of subsurface ices that lead to outflows of gas, this can ultimately result in the sudden collapse of cliff walls, the evidence of which is apparent in several locations on the comet.
A completely different process is thought to be responsible for the 500 m-long fracture spotted in August 2014 that runs through the comet’s neck in the Anuket region, and which was found to have extended by about 30 m by December 2014. This is linked to the comet’s increasing spin rate in the lead up to perihelion.
Furthermore, in images taken in June 2016, a new 150–300 m-long fracture was identified parallel to the original fracture.
Close to the fractures, a 4 m-wide boulder moved by about 15 m, as determined by comparing images taken in March 2015 and June 2016. It is not clear if the fracture extension and movement of the boulder are related to each other or caused by different processes.
 
Comet changes: moving boulder in Khonsu
 
A substantially larger boulder, some 30 m wide and weighing 12 800 tonnes, was found to have moved an impressive 140 m in the Khonsu region, on the larger of the two comet lobes.
It is thought that the boulder moved during the perihelion period, as several outburst events were detected close to its original position. The movement could have been triggered in one of two ways: either the material on which it was sitting eroded away, allowing it to roll downslope, or a forceful outburst could have directly lifted it to the new location.


Comet changes: erosion and exhumation in Imhotep

Erosion caused by the sublimation of material, and deposition of dust falling from outbursts, are also thought to be responsible for sculpting the landscape in different ways, either uncovering previously hidden surfaces or depositing material elsewhere.
For example, scarps in several smooth plains have been observed to retreat by tens of metres and at a rate of up to a few metres per day around perihelion.
“Scarp retreats were observed before on Comet Tempel 1, inferred by comparing images taken during flybys of the comet by NASA’s Deep Impact in 2005, and Stardust-NExT in 2011,” says Ramy. “What we were able to do with Rosetta was to monitor similar changes continuously, and at a higher resolution.
“Our observations additionally tell us that scarp retreat seems to be a common process on comets, specifically in smooth-looking deposits.”
Furthermore, in the smooth plains of Imhotep, previously hidden circular features, along with small boulders, have been exposed by the removal of material.
In one location, a depth of about three metres had been removed, most likely through the sublimation of underlying ices.
 
Comet changes: ripples and scarps in Hapi

Changes were also noted in the comet’s smooth neck region near the distinctive ripples that were likened to Earth’s sand dunes when they were first identified. Close monitoring of the ripple formations showed this location to also display expanding circular features in the soft material that reached diameters of 100 m in less than three months. They subsequently faded away to give rise to new sets of ripples.
Scientists speculate that the repeated development of these unique features at the same spot must be linked to the curved structure of the neck region directing the flow of sublimating gas in a particular way.
 
Comet changes: surface textures in Ma’at

Another type of change is the development of honeycomb-like features noticed in the dusty terrains of the Ma’at region on the comet’s small lobe in the northern hemisphere, marked by an increase in surface roughness in the six months leading up to perihelion.
Similar to other seasonal changes, these features faded substantially after perihelion, presumably as a result of resurfacing by the deposition of new particles ejected from the southern hemisphere during this active period.
The scientists also note that although many small-scale localised changes have occurred, there were no major shape-changing events that significantly altered the comet’s overall appearance. Ground-based observations over the last few decades suggest similar levels of activity during each perihelion, so they think that the major landforms seen during Rosetta’s mission were sculpted during a different orbital configuration.
“One possibility could be that earlier perihelion passages were much more active, perhaps when the comet had a larger inventory of more volatile materials in the past,” speculates Ramy.
“This documentation of changes over time was a key goal of Rosetta’s mission, and shows the surface of comets as geologically active, on both seasonal and short transient timescales,” says Matt Taylor, ESA’s Rosetta Project Scientist.
 
Notes for Editors
Surface changes on comet 67P/Churyumov-Gerasimenko suggest a more active past,” by M.R. El-Maarry is published in Science.
A complementary paper, “The pristine interior of comet 67P revealed by the combined Aswan outburst and cliff collapse,” by M. Pajola et al, is also published today in Nature Astronomy. (Read our news story here.)
 
For further information, please contact:
Markus Bauer








ESA Science and Robotic Exploration Communication Officer









Tel: +31 71 565 6799









Mob: +31 61 594 3 954









Email: markus.bauer@esa.int
M. Ramy El-Maarry
University of Colorado
Email: Mohamed.elmaarry@lasp.colorado.edu
Matt Taylor

ESA Rosetta project scientist

Email: matt.taylor@esa.int

Related articles


ESA
Guillermo Gonzalo Sánchez Achutegui
ayabaca@gmail.com
ayabaca@hotmail.com
ayabaca@yahoo.com
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ESA : Collapsing cliff reveals comet’s interior .- El desplome del acantilado revela el interior del cometa...

http://www.esa.int/Our_Activities/Space_Science/Rosetta/Collapsing_cliff_reveals_comet_s_interior
http://www.esa.int/esl/ESA_in_your_country/Spain/El_derrumbe_de_un_acantilado_desvela_el_interior_del_cometa                              

El derrumbe de un acantilado desvela el interior del cometa

Collapsing Cliff
 
21 marzo 2017
Los científicos de Rosetta acaban de establecer el primer vínculo convincente entre una emisión de polvo y gas y el derrumbe de un prominente acantilado, que dejó expuesto el inmaculado interior de 67P/Churyumov–Gerasimenko.  
Durante los dos años que Rosetta pasó observando el cometa, se detectaron con cierta frecuencia emisiones breves y repentinas. Aunque se ha debatido mucho sobre sus desencadenantes, estas emisiones parecen deberse al derrumbamiento de superficies débiles y erosionadas, que dejaron expuestos materiales volátiles que se calentarían súbitamente. 
En un estudio publicado hoy en Nature Astronomy, los científicos establecen el primer vínculo definitivo entre una emisión y el derrumbe de la pared de un acantilado, ayudándonos a comprender las fuerzas detrás de estos fenómenos.
 
Comet cliff collapse: before and after

Las primeras imágenes de cerca del cometa, capturadas en septiembre de 2014, mostraban una fractura de 70 m de largo por 1 m de ancho en un prominente acantilado al que después llamarían Asuán, en la región de Seth, en el lóbulo mayor. 
A lo largo del año siguiente, a medida que la órbita del cometa lo iba acercando al Sol, fue aumentado la velocidad a la que los hielos subterráneos se evaporaban y expulsaban polvo al espacio. Diversas emisiones de polvo y gas, breves y esporádicas, alteraron la actividad habitual del cometa. 
La cámara de navegación de Rosetta pudo capturar una de estas explosiones el 10 de julio de 2015, originada en la superficie del cometa por la región de Seth.
 
Evolution of a comet cliff collapse

Cinco días más tarde, al observar el acantilado de Asuán, de 134 m de altura, se detectó un borde brillante y escarpado donde previamente se había identificado la fractura, además de numerosas rocas nuevas, de un metro de diámetro, a sus pies. 
“La última vez que vimos la fractura intacta fue el 4 de julio y, al no haberse registrado otras emisiones en los diez días siguientes, tenemos la prueba más evidente de que la emisión observada está directamente relacionada con el derrumbe del acantilado”, explica Maurizio Pajola, director del estudio. 
Este fenómeno también supuso una oportunidad única para estudiar cómo el hielo de agua pura enterrado a decenas de metros de la superficie del cometa fue cambiando a medida que el material expuesto se evaporó a lo largo de los siguientes meses. 
 
Comet cliff collapse in 3D

De hecho, se calcula que la pared que quedó expuesta tras el derrumbe es al menos seis veces más brillante que la media de la superficie del núcleo del cometa. El día 26 de diciembre de 2015, el brillo se había reducido a la mitad, lo que indica que la mayoría del hielo de agua ya se había evaporado. 
Y para el 6 de agosto de 2016, la mayor parte de esa pared del acantilado presentaba el mismo nivel de brillo que la media de la superficie y solo quedaba un bloque, de gran tamaño, más brillante.

Continuar leyendo artículo completo en inglés
Contacto:
Markus Bauer








ESA Science and Robotic Exploration Communication Officer









Tel: +31 71 565 6799









Mob: +31 61 594 3 954









Email: markus.bauer@esa.int
Maurizio Pajola
NASA Ames Research Center, USA
Email: maurizio.pajola@nasa.gov
Matt Taylor

ESA Rosetta project scientist

Email: matt.taylor@esa.int

Artículos relacionados

Rosetta captures comet outburst25 agosto 2016 In unprecedented observations made earlier this year, Rosetta unexpectedly captured a dramatic comet outburst that may have been triggered by a landslide.
Rosetta's big day in the Sun13 agosto 2015 ESA’s Rosetta today witnessed Comet 67P/Churyumov–Gerasimenko making its closest approach to the Sun. The exact moment of perihelion occurred at 02:03 GMT this morning when the comet came within 186 million km of the Sun. 
Comet’s firework display ahead of perihelion11 agosto 2015 In the approach to perihelion over the past few weeks, Rosetta has been witnessing growing activity from Comet 67P/Churyumov–Gerasimenko, with one dramatic outburst event proving so powerful that it even pushed away the incoming solar wind.


Collapsing Cliff
 
21 March 2017
Rosetta scientists have made the first compelling link between an outburst of dust and gas and the collapse of a prominent cliff, which also exposed the pristine, icy interior of the comet.  
Sudden and short-lived outbursts were observed frequently during Rosetta’s two-year mission at Comet 67P/Churyumov–Gerasimenko. Although their exact trigger has been much debated, the outbursts seem to point back to the collapse of weak, eroded surfaces, with the sudden exposure and heating of volatile material likely playing a role.
In a study published today in Nature Astronomy, scientists make the first definitive link between an outburst and a crumbling cliff face, which is helping us to understand the driving forces behind such events.
 

Comet cliff collapse: before and after

The first close images of the comet taken in September 2014 revealed a 70 m-long, 1 m-wide fracture on the prominent cliff-edge subsequently named Aswan, in the Seth region of the comet, on its large lobe.
Over the course of the following year as the comet drew ever closer to the Sun along its orbit, the rate at which its buried ices turned to vapour and dragged dust out into space increased along the way. Sporadic and brief, high-speed releases of dust and gas punctuated this background activity with outbursts.
One such outburst was captured by Rosetta’s navigation camera on 10 July 2015, which could be traced back to a portion of the comet’s surface that encompassed the Seth region.
 

Evolution of a comet cliff collapse

The next time the Aswan cliff was observed, five days later, a bright and sharp edge was spotted where the previously identified fracture had been, along with many new metre-sized boulders at the foot of the 134 m-high cliff.
“The last time we saw the fracture intact was on 4 July, and in the absence of any other outburst events recorded in the following ten-day period, this is the most compelling evidence that we have that the observed outburst was directly linked to the collapse of the cliff,” says Maurizio Pajola, the study leader.
The event also provided a unique opportunity to study how the pristine water-ice otherwise buried tens of metres inside the comet evolved as the exposed material turned to vapour over the following months.
 

Comet cliff collapse in 3D
 
Indeed, after the event, the exposed cliff face was calculated to be at least six times brighter than the overall average surface of the comet nucleus. By 26 December 2015 the brightness had faded by half, suggesting much of the water-ice had already vapourised by that time.
And by 6 August 2016, most of the new cliff face had faded back to the average, with only one large, brighter block remaining.




Fallen cliff debris
 
In addition, the team had a clear ‘before and after’ look at how the crumbling material settled at the foot of the cliff. By counting the number of new boulders seen after its collapse, the team estimated that 99% of the fallen debris was distributed at the bottom of the cliff, while 1% was lost to space.
This corresponds to around 10,000 tonnes of removed cliff material, with at least 100 tonnes that did not make it to the ground, consistent with estimates made for the volume of dust in the observed plume.
Furthermore, the size range of the new debris, between 3 m and 10 m, is consistent with the distributions observed at the foot of several other cliffs identified on the comet.
“We see a similar trend at the foot of other cliffs that we have not been so fortunate to have before and after images, so this is an important validation of cliff collapse as a producer of these debris fields,” says Maurizio.
But what actually led to the cliff suddenly collapsing at this particular moment?
 

Cliff collapse and comet activity
 
An earlier study suggested that both rapid daily changes in heating or longer-term seasonal changes can create thermal stresses that lead to fracturing and subsequent exposure of volatile materials, triggering a rapid outburst that can cause the weakened cliff to collapse.
Even though the Aswan cliff region had been experiencing large temperature changes in the months before the collapse, interestingly, the collapse occurred at local night, ruling out a sudden extreme temperature change as the immediate trigger.
Instead, both daily and seasonal temperature variations may have propagated fractures deeper into the subsurface than previously considered, predisposing it to the subsequent collapse.
“If the fractures permeated volatile-rich layers, heat could have been transferred to these deeper layers, causing a loss of deeper ice,” explains Maurizio. “The gas released by the vapourising material could further widen the fractures, leading to a cumulative effect that eventually led to the cliff collapse.
“Thanks to this particular event at Aswan, we think that the cumulative effect led by strong thermal gradients could be one of the most important weakening factors of the cliff structure.”
“Rosetta’s images already suggested that cliff collapses are important in shaping cometary surfaces, but this particular event has provided the missing ‘before–after’ link between such a collapse, the debris seen at the foot of the cliff, and the associated dust plume, supporting a general mechanism where comet outbursts can indeed be generated by collapsing material,” says Matt Taylor, ESA’s Rosetta project scientist.
 
Notes for Editors a vuelo
The pristine interior of comet 67P revealed by the combined Aswan outburst and cliff collapse,” by M. Pajola et al, is published in Nature Astronomy.
Additional details about the Aswan region are available in “Aswan site on comet 67P/Churyumov-Gerasimenko: Morphology, boulder evolution, and spectrophotometry” by M. Pajola et al, published in Astronomy & Astrophysics, August 2016.
Additional details about the size-frequency distribution of boulders on the comet are available in “Size-frequency distribution of boulders ≥7 m on comet 67P/Churyumov-Gerasimenko,” by M. Pajola et al, published in Astronomy & Astrophysics, November 2015.

For further information, please contact:
Markus Bauer








ESA Science and Robotic Exploration Communication Officer









Tel: +31 71 565 6799









Mob: +31 61 594 3 954









Email: markus.bauer@esa.int
Maurizio Pajola
NASA Ames Research Center, USA
Email: maurizio.pajola@nasa.gov
Matt Taylor

ESA Rosetta project scientist

Email: matt.taylor@esa.int

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