Showing posts with label Landslides. Show all posts
Showing posts with label Landslides. Show all posts

Friday, May 3, 2013

ESA Mars Express Image: Landslides and lava flows at Olympus Mons on Mars

ESA’s Mars Express imaged the Sulci Gordii region of Mars with its High Resolution Stereo Camera on 23 January 2013 (orbit 11531), with a ground resolution of about 31 m per pixel. 

Sulci Gordii lies at approximately 17°N / 234°E, about 200 km east of Olympus Mons. 

Credit: ESA/DLR/FU Berlin (G. Neukum)

Giant landslides, lava flows and tectonic forces are behind this dynamic scene captured recently by ESA's Mars Express of a region scarred by the Solar System's largest volcano, Olympus Mons.

The image was taken on 23 January by the spacecraft's high-resolution stereo camera, and focuses on a region known as Sulci Gordii, which lies about 200 km east of Olympus Mons.

Sulci Gordii is an 'aureole' deposit – from the Latin for 'circle of light' – and is one of many that form a broken ring around the giant volcano, as hinted at in the context map.

Olympus Mons
The aureoles tell the story of the catastrophic collapse of the lower flanks of Olympus Mons in its distant past. Today, it stands with steep cliff edges that rise 2 km above the surrounding plains.

The collapse was brought about by weakening in the rocks supporting the volcanic edifice, perhaps influenced by subsurface water. During the collapse, rocky debris slid down and out over hundreds of kilometres of the surrounding volcanic plains, giving rise to the rough-textured aureole seen today.

Similar avalanches of debris are also seen surrounding some volcanoes on Earth, including Mauna Loa in Hawaii, which, like Olympus Mons, is a smooth-sided 'shield' volcano built up from successive lava flows.

Sulci Gordii was imaged by the High Resolution Stereo Camera on ESA’s Mars Express on 23 January 2013 (orbit 11531). 

Sulci Gordii lies at approximately 17°N / 234°E, about 200 km east of Olympus Mons. 

Sulci Gordii is one of many similar features that form a broken ring around the volcano, formed during giant collapse and landslide events on the flanks of Olympus Mons. 

Credit: NASA MGS MOLA Science Team

The smooth plains surrounding Sulci Gordii suggest that the massive landslide was later partially buried by lava flows.

The characteristic corrugated appearance of the 'sulci' – a geological term used to describe roughly parallel hills and valleys on Mars – likely resulted during the landslide as material slid away from the volcano and became compressed or pulled apart as it travelled across the surface.

Over time, erosion of weaker material between the peaks accentuated this effect.

The corrugated effect is best seen in the close-up perspective views. Zooming in on these images reveals that the hills and ridges are also covered by fine wind-blown dust, and that many small-scale landslides have occurred down the sides of the valleys between them.

Similarly, on close inspection of the smooth plains, subtle ripples in the martian dust blanket can be seen. Here, thin undulating dunes have been whipped into shape by the prevailing wind.

Close-up of the ‘sulci’ features that define Sulci Gordii. Sulci are roughly parallel sets of ridges and valleys likely formed through tectonic and erosional processes. 

A prominent fault line extends along the left side of the image, while smooth lava plains overlay parts of the sulci. 

Credit: ESA/DLR/FU Berlin (G. Neukum)

Numerous sinuous channels and jagged fracture networks also crisscross the scene, in particular at the southern (left) end of the main image and in close-up in the perspective view above.

The channels range in length from around 50 km to 300 km and were probably widened by short-lived lava flows, or perhaps even by water.

An impressive sight on the left side of the perspective view is a sinuous channel that is suddenly truncated by a tectonic fault. Another channel running across the centre foreground clearly has a complex fracturing history.

In rougher terrain towards the south (top centre-right of the main image), tectonic forces have torn apart the martian crust, most clearly visible in the colour-coded topography map.

By studying complex regions like this – and by comparing them to similar examples here on Earth – planetary scientists learn more about the geological processes that dominated ancient Mars, when it was an active planet.

Just as on Earth, the scene at Sulci Gordii tells us that volcanoes can suffer dramatic collapses that transport vast quantities of material across hundreds of kilometres, where it is subsequently sculpted by wind, water and tectonic forces.

Friday, January 4, 2013

Nasa Mars HiRise Image: Slopes in Coprates Chasma

The Nasa HiRise Image shows examples of "Mass Wasting" on the slopes of Mar's slopes in Coprates Chasma.

"Mass wasting" is a geologic term that encompasses the rapid downhill movement of rocks and fine particles due to the force of gravity.

One of the most common and generic types of mass wasting features on Earth are landslides, but there are many others such as rock falls, debris flows, soil creep, and debris avalanches.

Landslides
Landslides or any other mass wasting feature, require some type of triggering mechanism to induce the movement of particles under gravity. Some of these mechanisms include volume expansion of fractures (i.e. cracks) in rocks by freeze/thaw processes, increase in soil pore pressure (i.e. water content), undermining or removal of less-resistant material below a stronger material layer, and strong vibrational forces produced from above (e.g., meteorite impact) or below ground (e.g., volcanic eruption, earthquake).

On Mars, two of the most common mass wasting features are landslides and dust avalanches (also referred to as slope streaks).

Some of the most spectacular landslides in the solar system are found in the Valles Marineris canyon system on Mars and exhibit many of the classic characteristics of landslides on Earth.

These characteristics include a semi-circular main scarp in the source region, a hummocky (i.e. irregular) or blocky surface in the upper portion of the deposit, surface ridges parallel to landslide flow direction in the middle portion of the deposit, and a lobate outer margin that has some significant thickness (e.g., tens to hundreds of meters).

Dust avalanches are common on dune faces, crater interior walls, mesa slopes, and canyon scarps. The streaks are thought to occur when dust and/or other small particles on a sloped surface begins to move due to sublimation of a thin layer of water frost or by the over-steepening of slopes in localised dusty air fall deposits.

Tuesday, July 31, 2012

Saturn's Icy Moon, Iapetus struck by 50-Mile Wide Landslides

A giant landslide on Iapetus reaches halfway across a 75-mile (120 kilometer) impact crater.

CREDIT: NASA/JPL/Space Science Institute

Long landslides spotted on Saturn's moon, Iapetus, could help provide clues to similar movements of material on Earth.

Scientists studying the icy satellite have determined that flash heating could cause falling ice to travel 10 to 15 times farther than previously expected on Iapetus.

Extended landslides can be found on Mars and Earth, but are more likely to be composed of rock than ice.

Despite the differences in materials, scientists believe there could be a link between the long-tumbling debris on all three bodies.

"We think there's more likely a common mechanism for all of this, and we want to be able to explain all of the observations," lead scientist Kelsi Singer of Washington University, Dept of Earth and Planetary Sciences, reported.