Showing posts with label HRSC. Show all posts
Showing posts with label HRSC. Show all posts

Friday, September 19, 2014

ESA Mars Express: Winter in Hooke crater in Argyre basin

Perspective view of Hooke crater in Argyre basin taken by the High Resolution Stereo Camera (HRSC) on ESA’s Mars Express

Credit: ESA /DLR

Over billions of years, the southern uplands of Mars have been pockmarked by numerous impact features, which are often so closely packed that they overlap.

One such feature is Hooke crater, shown in this frost-tinged scene, imaged by ESA’s Mars Express during winter in the southern hemisphere.

Hooke crater. Credit: ESA

Hooke crater is located near the northern edge of the 1800 km-wide Argyre basin, one of the most impressive impact structures on Mars, excavated in a giant collision about 4 billion years ago.

Sitting in a flat part of the basin known as Argyre Planitia, Hooke crater has a diameter of 138 km and a maximum depth of about 2.4 km.

It is named after the English physicist and astronomer Robert Hooke (1635–1703).

Hooke crater comprises two different impact structures, with a smaller impactor blasting a depression off-centre in the floor of a larger, pre-existing crater.

High Resolution Stereo Camera (HRSC)
The newer crater in the centre is filled with a large mound topped by a dark dune field. The mound appears to be composed of layered material, possibly alternating sheets of sand and frost.

Dark dunes also spread southwards (to the left in the topographic, main colour and 3D images) from the smaller crater, partially covering the floor of the main crater.

The local topography modifies the airflow, serving as a sand trap for the wind-blown sediments.

Hooke crater topography. Credit: ESA

In these images, much of the low-lying region to the south, as well as the central mound inside Hooke crater, is covered with a thin, white coating of carbon dioxide frost.

At higher elevations and on north-facing crater walls, the frost is largely absent and appears only in areas shaded from direct sunlight by the walls of smaller craters.

Outside the crater, there are a number of linear features visible on the floor of Argyre Planitia, on the south (left) side of the topographic, main colour and 3D images.

These are examples of ‘yardangs’, rocky ridges that have been shaped by prolonged wind erosion.

Most of the yardangs are oriented towards Hooke crater, indicating the prevailing wind direction.

An artist view of the HRSC on ESA Mars Express scanning the Mars mesas. 

Credit: ESA /DLR

Also visible on the floor of the Argyre basin are small areas of chaotic terrain, which resemble depressions containing flat-topped mesas, buttes and hills.

In the topographic, main colour and 3D images, one of these regions can be seen at the top edge, about a third of the way from the left, and another in the lower middle part, down from the left-most edge of the crater.

Chaotic terrains like these are thought to have been created when large-scale melting of ground ice caused the ground to collapse.

Where the terrain has not collapsed completely, the larger mesas may still contain substantial water ice.

Saturday, July 12, 2014

ESA Mars Express HRSC Image: Hellespontus Montes topography image

Credit: ESA

This is a colour-coded topography map of a portion of the western rim of the Hellas basin.

The crater shown in the upper left is on the periphery of this larger impact basin.

The edge of the Hellas basin is traced by a string of rocky peaks known as the Hellespontus Montes, revealed as the red/white ridge in this topography map thanks to their height.

White and red show the highest terrains, while blue and purple show the deepest.

The image is based on a digital terrain model of the region, from which the topography of the landscape has been derived.

The image was created using data acquired with the High Resolution Stereo Camera on ESA’s Mars Express on 13 January 2014 during orbit 12 750. North is to the right, east is up.

Friday, September 7, 2012

ESA Mars Express - Deep faults and disrupted crater at Acheron Fossae

This is an image taken by the High Resolution Stereo Camera (HRSC) on board ESA’s Mars Express of the Acheron Fossae region, an area of intensive tectonic (continental ‘plate’) activity in the past.


Acheron Fossae marks the northern edge of the Tharsis plateau. It is part of a network of extensional fractures that radiates outward from their central focus in the Tharsis ‘bulge’, a huge area of regional uplift where intensive volcanic activity occurred.

Mars Tharsis Plateau
These curved ‘faults’ were caused in the process of this uplift: cracks in the crust formed when the hot material rising from deep in the mantle of Mars pushed the overlying ‘elastic’ lithosphere (surface layers of rock) upward.

When the distorting tensions became too strong, the brittle crust on top of the lithosphere broke along zones of weakness.

The image, from orbit 37, are dominated by these curved features, showing a highly fractured, faulted and deformed area in the central part of the Acheron Fossae.

The feature is situated at approximately 35º-40º North and 220º-230º East, about 1000 kms north of the large Olympus Mons volcano.


Credits: ESA/DLR/FU (G. Neukum)