Donnerstag, 15. April 2010

Taphonomy of hominid sites, or what geology can tell us about our origins

Since a French geology student visited the remote region nearly 50 years ago, and brought back tales of fossil rich sediments, the area around the river Awash is considered a "must seen" for paleoanthropologists and geologist interested in the natural history of Africa.

Fig.1. Mentioned hominid bearing sites, Aramis near the river Awash in Ethiopia and Malapa in South Africa.

The presentation to the public of Ardipithecus ramidus, found at the site of Aramis in the catchment area of the river Awash, in October 2009 was a media event comparable to the presentation last week of Australopithecus sediba from South Africa.
But both described species are only a part of the recuperated evidence (in case of A. ramidus nearly 150.000 bone fragments), behind A. ramidus there lie 15 years of research, behind A. sediba 2 years - the paleontological and geological results of both sites shamefully received little attention in the mass media.

But the careful collection and examination of animal and plant fragments, and the geological framework, was rarely well documented as by these two discoveries.


The proposal of Darwin that Africa is the cradle of humankind led to the idea that the last common ancestor, which we share with the great apes, lived like the recent chimpanzees or gorillas in a forest habitat.
Then, in 1925, the discovery of the first Australopithecus species, considered a early hominid, by Raymond Dart seemed to give further clues of human evolution.
The associated faunal remains showed that Australopithecus lived in a grassland environment, it was therefore speculated that the open grasslands of Africa - developing in the Pliocene ice ages - were exploited by early hominids and were therefore somehow integrally involved with the origins of upright walking, a possible key factor of our further evolution.


But the sediments and the paleontological content of the Lower Aramis Member (Sagantole Formation) at Aramis provided evidence that Ar. ramidus lived in a predominantly woodland setting - upright walking of early hominids was therefore primarily not an adaption to overlook or to colonize a grassy savanna.


Taphonomic assemblages often represent a collection of a variety of animals of different geographically locations and time periods. Carcasses of animals from different environments can be washed together, or natural traps, like caves, act as sample bag for many centuries, providing a false species assemblage. Accurate interpretation of fossil assemblages can be challenging.
In the case of Aramis however, the sampled stratigraphic unit is sandwiched between two volcanic horizons, which yielded approximately the same age (4.4Ma), supporting the idea that the fossils represent a short time intervall.
The fossils of Aramis comprise a large variety of plants and animals, including insects, molluscs and bones of owls, parrots, porcupine, hyenas, bears, elephants, ancient horses, giraffes, antelopes and rhino.
The recovered bones of birds and mammals came from species living in, or associated with, closed forest or shrublands.
One of the common larger mammals found associated with Ardipithecus is the spiral-horned antelope, or kudu (Tragelaphus).

Fig.2. A not so scientific reconstruction of a possible hominid habitat.

Today, these antelopes are browsers eating mostly Leaves, and they prefer bushy to wooded habitats. In contrast, remains of grazing antelopes are rare in the Aramis assemblage.
The environment of these animals can also be reconstructed by analyzing their teeth's. Carbon isotopes from tooth enamel yield dietary information because different isotope signatures reflect different photosynthetic pathways of plants consumed during enamel development. Therefore, animals that feed on tropical open-environment grasses (or on grass-eating animals) have different isotopic compositions from those feeding on browse, seeds, or fruit from shrubs or trees. The isotopic pattern of Ardipithecus is also similar to that of Tragelaphus, indicating little dietary intake of grass, and supporting the reconstruction that the animal lived predominately in the forest.

Additionally, oxygen isotopes, found also in the molecular structure of the enamel, can be used to reconstruct the relative humidity and evaporation (temperature) in the environment where the animal, and with it the teeth grow.

Fig.3. after WHITE et al.2009. Isotopic signature of fossil enamel from the Aramis Member.

The death of an animal is the last act in life, and the first step to go lost forever, or in rare cases become buried deep within earth, get fossilized and in even more rare cases being excavated by naked monkeys. But how to reconstruct these events, where no living eyewitnesses are allowed?

Let's see what the rocks can tell us.
The two skeletons of Australopithecus sediba were discovered in cave infillings of the karst landscape of South Africa, in a massive, up to 1.5-m-thick stratigraphic unit containing abundant, well-preserved macro- and micromammal fossils, including articulated remains of Equus sp.
The poorly sorted, coarse-grained and cemented sandstone consists of grains with diameters ranging from 0.5 to 2.5 mm of quartz, chert, dolomite, peloids and, less commonly, iron oxide-coated grains, ooids, shale, and feldspar.
Angular limestone blocks (smaller than 50 cm) and flowstone fragments (smaller than5 cm) occur throughout this facies. The heterogenic lithological composition tells us that the sediment - or parts of it- is allochtonous, the material of this facies was transported, maybe from outside, and deposited in the cave.

Fig.4. Geological map of the Malapa site, after DIRKS et al. 2010. The fossils of hominids where interbedded in facies D. The underlying flowstone was also dated by U-Pb on an age of ca. 2 Ma.

The heterogeny in the grains, ranging from sand to pebbles to larger boulders and fossils, and lacking sedimentary structures (like stratification) suggest the deposition of the unit as a single event, like a debris flow, maybe caused by a flood or a storm. The superb preservation and state of articulation of fossil material also indicate rapid deposition, limited transport distance, and laminar flow conditions consistent with debris flows.

These new data and the combination of different scientific approaches questions old certainties. The case of Ardipithecus suggests that the anatomy and behaviour of early hominids did not evolve in response to open savanna or mosaic settings.

In the case of A. sediba the geology tell us how hominids become fossilised and where we must search for them. The fossils found with A. sediba helped also to date the new species, and confirmed the radiometric ages, a faunal analysis is still missing, but who knows if further investigations will not force us again to change our understanding how we evolved.


REFERENCES:

BERGER et al. (2010): Australopithecus sediba: A New Species of Homo-Like Australopith from South Africa. Science, 328: 195-204

DIRKS et al. (2010): Geological Setting and Age of Australopithecus sediba from Southern Africa. Science, 328: 205-208

LOUCHART et al. (2009): Taphonomic, Avian, and Small-Vertebrate Indicators of Ardipithecus ramidus Habitat. Science 326: 66-66e4: DOI 10.1126/science.1175823

WHITE et al. (2009): Macrovertebrate Paleontology and the Pliocene Habitat of Ardipithecus ramidus. Science 326: 67-93; DOI 10.1126/science.1175822

WOLDEGABRIEL et al. (2009): The Geological, Isotopic, Botanical, Invertebrate, and Lower Vertebrate Surroundings of Ardipithecus ramidus. Science 326: 65-65e5; DOI 10.1126/science.1175817

Dienstag, 13. April 2010

Peru glacier breaks up, causes tsunami

A part of a glacier broke off and plunged into a lake in Peru, causing a 23m tsunami wave that swept away at least three people and destroyed a water processing plant serving 60,000 local residents, government officials said Monday. From msnbc

Montag, 12. April 2010

Landslide in South Tyrol causes train derailment

Bozen, 12 April 2010: 9 confirmed victims, 23 people injured, these are the latest sad information’s about a rail crash between the towns of Latsch and Kastelbell in the South Tyrolean “Etschtal”, occurred at 9.00 p.m. this morning. The railway between the two localities follows the orographic right bank of the main river of the valley “Etsch/Adige” in a gorge eroded by the river in Holocene sediments (manly a large alluvial fan coming from south with unconsolidated debris-flow deposits).

A landslide of 400 cubic meters - with a width of 10 to 15 meters, and a thickness of 2m - bursted off 50m above the railway line and hit the first wagon of the train, that was just passing by in direction of Kastelbell, causing the train derailment.

To clarify possible causes of the landslide, geological investigations are underway. Eye witnesses reported large quantities of water running down the slope after the accident. A site investigation by the authorities preliminary concluded, that it’s possible that the rupture of an irrigation system above the location of the accident (the area is used for agriculture and farming) saturated the soil and underlying sediments with water, causing a mudslide just in the moment the train passed the point. The irrigation system, after the winter, was used since the last week, it’ s seems that at least in the last days to hours water infiltrated in the underlying slope. It’s also possible that the vibrations of the approaching train triggered finally the slide.

Fig.1. Location of the mudslide between the towns of Latsch and Kastelbell, ca. 1,4km after Latsch, from where the train was started some minutes before the accident (yellow circle) - the railway line follows the escarpment of the river “Etsch/Adige” between the two towns. The landslide happened on the orographic right bank of the river, in soil and sediments of a large alluvial fan. Coordinates of image centre: 46°37`43´´N and 10°52´54´´E (Product of the Autonomous Province of Bozen/Bolzano - South Tyrol)

I wish to express my condolence to the families of the victims, and thank the emergency services for their rapid intervention - only minutes after the accident they arrived on the place, and worked until now (11 hours) to rescue injured peoples.

Sonntag, 4. April 2010

MAMOHTEHKA MAMA

"Mom for baby-mammoth" is an old soviet cartoon inspired by the discovery of baby "Dima" in 1977. This little masterpiece tells the story about baby mammoth that miraculously avoided extinction and started the quest for his mom search (found on Siberian Mammoth).

Samstag, 27. März 2010

Accretionary Wedge #23: That is not dead which can eternal lie

The March 2010 Accretionary Wedge is being hosted by Ed at Geology Happens, and here's the proposed theme:

"This AW is to share your latest discovery with all of us. Please let us in on your thoughts about your current work. What you are finding, what you are looking for. Any problems? Anything working out well?"

Well, considering even only the Holocene of the Alps there is a major hiatus of knowledge, and I can provide only a humble, but maybe interesting piece of considerations on the problem:

"That is not dead which can eternal lie,
And with strange aeons, even death may die"
H.P. Lovecraft (1890-1937)

A major unknown factor in rock glacier research is the formation age of these features. But for the understanding of climatic significance, and possible reaction of permafrost in a warmer climate, these information's are very important. Rock glacier develop mostly well about the tree-line, and in areas with strong debris accumulation, a difficult habitat for plants to growth. So in the rubble of rock glaciers organic matter, which would allow a 14C dating, is mostly missing.
Exceptions are known from the Swiss Alps, in the rock glacier "Murtèl" HAEBERLI et al. (1999) were able to date moss remains, and in an actual paper BOMMER et al. (2010) describe the discovery of wood fragments of larch in the front of an (in)active rock glacier.
Sometimes active rock glaciers override peat deposits, that can be dated, (EVIN & BEAULIEU 1985). Exposure age determinations of boulders on the surface, for example by cosmic rays or OSL are problematic because of the unstable surface that reworks constantly the material.
Evidence for a relative age can be supplied by the weathering of rocks, and lichen vegetation on blocks, but also here the moving surface cause troubles, the conditions of lichen growth and surface alteration change with time, so that the final date will be a mixture of different ages or at beast only an extreme value.

All these methods may provide only a maximum or minimum age, and are connected with a number of methodological problems; also an important question is what reflects these dates? The original rock wall exposure to erosion, the formation and deposition of the rock fragments in the talus, the mobilization of the talus by permafrost creep? And what if rock glaciers experience phases of inactive and active periods?

So it's no wonder that estimated ages of rock glaciers range from recent times, or formation during the last glacier high stands in the 16. and 19. century to interpretations of late glacial relics with ice 1.000 of years old (PALACIOS & VAZQUEZSELEM 1996; HUMLUM 1996; KÄÄB et al. 1997).


The rock glacier that I studied in the last years reaches with his front the Lazaun pasture (Ötztaler Alpen) and it is a possible good candidate for an extensive research on internal structure and dynamics of permafrost in the Alps.


Fig.1. The Lazaun pasture with the bog and in te background the active rock glacier. From the front of the rock glacier a glacial river flow from the left to the right, exposing a sequence of peat deposits and sand/pebble layers.

An extensive survey was carried out, geomorphological mapping, GeoRADAR, GPS and hydrological measurements. Also I tried to get some information's about the age of, so local legends tell, this petrified dragon.

A connection of the rock glacier with the glacier high stand of the alpine Little Ice Age is supported in part by lichenometry and moraine stratigraphy, which suggests an age of several hundred years. If, however, the measured GPS velocities are used to derive an age estimation (considering the length and the velocities of creep) the age ranges from 2.200 to 1.300 years. These observations relative the published ages of rock glaciers inferred simply by creep velocities (HAEBERLI et al. 1997), rock glaciers don't creep always at the same rate; reacting to climate change they display a complex behaviour.

A tentative approach to determinate the long term behaviour of the rock glacier is the interpretation of a stratigraphical column in peat deposits in front of the rock glaciers. The outcrops created by a glacial river expose a peat-sediment sequence in an alpine fen.

Fig.2. Outcrop, GeoRADAR measurements and soundings showed that the peat is pretty deep, up to 3m.

There were several peat layers (at least four) alternating with clastic sediments (sand and pebbles), also, as a small sensation, wood fragments where found and recovered (the actual tree line is lowered by climatic and anthropogenic influence by some hundred meters).

Similar sequences are known in the Austrian part of the Ötztaler Alpen, where they were interpreted as a glacier advance - glacier retread cycle. (BORTENSCHLAGER 1984). I myself observed similar sediments in the Rieserferner mountain group, so such records are not rare, and have much potential for future research on the Holocene history of the Southeast-Alps.

The sediments so maybe represents the varying climatic conditions in front of the rock glacier, during climatic favourable conditions moss and peat plants flourished and build up the peat layer, during cold periods the glacier and rock glacier advanced, providing more erosion and a source of clastic sediments that form the sand and pebble layers.

And because finally the wintertime is over, I hopefully soon will go back to the rock glacier and dare to interfere in his sleep...

Fig.3. Peat layers in transition to grey mud and pebbles.

REFERENCES:
BORTENSCHLAGER, S. (1984): Beiträge zur Vegetationsgeschichte Tirols I. Inneres Ötztal und unteres Inntal. Berichte des Naturwissenschaftlich-Medizinischen Vereins in Innsbruck. 71, 19 - 56.
EVIN, M. & BEAULIEU, J.L. (1985): Nouvelles données sur l´age de la mise en place et les phases d´activite du glacier rocheux de Marinet 1 (Haute-Ubaye, Alpes de sud francaises). Mediteranee. 4: 21-30
HAEBERLI, W.; KÄÄB, A.; WAGNER, S.; VONDERMÜHLL, D.; GEISSLER, P.; HAAS, J.N.; GLATZELT-MATTHEIER, H. & WAGENBACH, D. (1999): Pollen analysis and 14C-age of moss remains recovered from a permafrost core of the active rock glacier Murtèl/Corvatsch (Swiss Alps). Journal of Glaciology 45: 1-8
HUMLUM, O. (1996): Origin of Rock Glaciers: Observations from Mellemfjord, Disko Island, Central West Greenland. Permafrost and Periglacial Processes 7: 361-380
KÄÄB, A.; HAEBERLI, W. & GUDMUNDSSON, G.H. (1997): Analysing the Creep of Mountain Permafrost using High Precision Aerial Photogrammetry: 25 Years of Monitoring Gruben Rock Glacier, Swiss Alps. Permafrost and Periglacial Processes 8(4): 409-426
PALACIOS, D. & VAZQUEZSELEM, L. (1996): Geomorphic effects of the retreat of Jamapa glacier, Pico de Orizaba volcano (Mexico). Geografiska Annaler 78A(1): 19-34
SCAPOZZA, C.; LAMBIEL, C.; REYNARD, E.; FALLOT, J.-M.; ANTOGNINI, M. & SCHOENEICH, P. (2010): Radiocarbon Dating of Fossil Wood Remains Buried by the Piancabella Rock Glacier, Blenio Valley (Ticino, Southern Swiss Alps): Implications for Rock Glacier, Treeline and Climate History. Permafrost and Periglac. Process. 21: 90-96

Donnerstag, 11. März 2010

Tofane Rock glacier

An active superimpose a relict rock glacier in the Tofane mountain group (South-East Dolomites 46°32``0`N 12°3``0E):

Fig.1