Showing posts with label Palaeotethys Ocean. Show all posts
Showing posts with label Palaeotethys Ocean. Show all posts

Saturday, 5 December 2020

Evidence of a late Palaeozoic land connection between Appalachia and Iberia.

Over the past 30 years, a broad consensus has emerged that repeated cycles of supercontinent amalgamation and dispersal have occurred since the end of the Archean, and these cycles have profoundly affected the Earth’s evolution. Less clear is whether the supercontinent changes its configuration during its existence due to internal stresses. Although the classical 'Wegenerian' configuration of Pangaea immediately prior to its Early Mesozoic breakup is well constrained, there remains uncertainty about its late Palaeozoic configuration. Two end member models have emerged; Pangaea-A, which is essentially the 'Wegenerian' fit, and Pangaea-B, based on palaeomagnetic data, in which Gondwana was located about 3000 km farther east relative to Laurasia, compared to the Pangaea-A configuration. A late Palaeozoic Pangaea-B configuration would require substantial lateral (dextral) shear along major faults, inferred by Edward Irving to have occurred between the middle Carboniferous and Late Triassic, in order to obtain the Wegenerian configuration before Pangaea breakup. More recent palaeomagnetic data have been used to support the transition from a Pangaea-B to a Pangaea-A configuration during the Permian, and in the most recent model, the transition occurred between 275 and 260 million years ago. However, geologic evidence that would distinguish between these hypotheses is lacking. Moreover, the validity of the palaeomagnetic data purported to support the Pangaea-B configuration has recently been challenged.

The collision between Laurasia and Gondwana during the Late Devonian-early Permian was a key event in the amalgamation of Pangaea and resulted in the destruction of the Rheic Ocean and the formation of the Appalachian and Variscan (Hercynian) orogens in the interior of Pangaea. A key element in reconstructing palaeogeographic environments is to examine the first appearance of shared flora between continents. For example, the occurrence of the Permian Glossopteris flore has been crucial in understanding the configuration of Gondwana. The confinement of this flora to Gondwana and its absence from Laurasia has been attributed to the presence of physical barriers (e.g. distance, mountain ranges, climate/latitude) that may have restricted its migration. However, determination of the palaeogeography of Laurasia relative to Gondwana during the late Palaeozoic is hindered by the lack of palaeobiogeographic evidence linking both continents.

In a paper published in the journal Scientific Reports on 12 February 2020, Pedro Correia of the Institute of Earth Sciences at the University of the Porto, and Brendan Murphy of the Department of Earth Sciences at St. Francis Xavier University, draw on recent discoveries in Carboniferous successions in the Iberian Massif (Douro Basin, Portugal) that, for the first time, provide linkages between the ancient landmasses Laurentia and Iberia (located along the northern margin of Gondwana) along the palaeoequatorial belt during the Late Pennsylvanian (307–299 million years ago). In so doing, they provide palaeobotanical and biostratigraphic evidence that the Pangaea-A configuration was in place at that time, negating the possibility of Pangaea-B configuration in the late Palaeozoic.

 
Idealised Pangaea-A ('Wegenerian') configuration based on continental connection between eastern Laurentia (Laurasia) and Iberia (northwestern Gondwana) in the late Palaeozoic. Colour legend for the image: blue: Oceans; light brown: Gondwana; dark brown: Laurasia; grey: shallow seas and coastal/flooded areas. Correia & Murphy (2020).

Models for Variscan orogenesis and Pangaea amalgamation rely on approximately 420–320 million year ago continental reconstructions. At about 420 million years ago, reconstructions primarily influenced by palaeomagnetic data show Gondwanan terranes, including Iberia rifted from the northern Gondwanan margin thereby forming the Palaeotethys Ocean. Other reconstructions, however, based on a wealth of faunal, lithological, stratigraphic, detrital zircon and palaeoclimatic data, imply that these terranes remained along the Gondwanan margin for the entirety of the Palaeozoic. In the latter scenario, Rheic Ocean closure resulted from continental collision of Laurasia with the northern Gondwanan margin, which began about 380 million years ago. Iberia preserves a continuous Early Ordovician to Late Devonian passive margin sequence including typically Gondwanan Late Ordovician glaciomarine deposits, and lacks roughly 420 million-year-old rift-drift deposits predicted by the formation of the Palaeotethys Ocean. On the basis of this evidence, Corriea and Murphy adopt the second scenario and our reconstructions showing a unified Iberia and Gondwana throughout the Palaeozoic.

 
Late Palaeozoic Pangaea-B configuration in which Gondwana is located about 3000 km farther east relative to Laurasia. Correia & Murphy (2020).

Abundant Carboniferous-Permian floras and palaeoenvironmental/climatic distribution data have been identified in Laurasia. Detailed studies of flora that demonstrate significant affinities between the Pennsylvanian (late Moscovian and Gzhelian) floras of North America and Iberian Massif are interpreted to reflect a proximal palaeobiogeography between Laurentia and Iberia within the palaeoequatorial belt. Biostratigraphic studies identify the existence of a macrofloral biostratigraphic gap for the Kasimovian stage in the Appalachian region in West Virginia Basin (USA) correlated with the Upper Pennsylvanian of Portugal. This gap is documented in parts of the palaeoequatorial belt during the Kasimovian and is attributed to a lowstand reflecting a major glaciation event in southern Gondwana.

 
Biostratigraphic constraints between Laurentia and Iberia including a macrofloral biostratigraphic gap correlated between the Upper Pennsylvanian successions of Appalachian region in West Virginia and Iberia in Portugal. Correia & Murphy (2020).

Carboniferous-Permian floras, restricted to same type of palaeoenvironments shared by Laurentia and Iberia, are key elements to determine the palaeogeography of Pangaea as it amalgamated. Determination of land bridges linking Laurentia and Iberia for floral exchange attests to the importance of constraining the palaeoenvironmental and palaeoclimatic conditions between these continental lands in the interior of Pangaea. Such constraints are provided by the floras that were restricted to “dryland” environments located in the tropical regions of central Pangaea and lived in both Laurentia and Iberia. The Cycadopsid Lesleya, a rare Carboniferous-early Permian Seed-plant of the Euramerican realm, was a dry-climate adapted flora (known as 'dryland flora') restricted to tropical dryland environments of central Pangaea.

 
Palaeoenvironmental and palaeoclimatic constraints and floral migration between Laurentia and Iberia within Pangaea-A. Enlarged view of central Pangaea (white rectangular box area in top image) showing the emergence of 'dryland' environments at varying spatial and temporal scales and diachronous migration of dryclimate adapted flora like Lesleya between the Laurentian and Iberian landmasses. Lesleya-fossil record data for the floral migration route are from. Correia & Murphy (2020).

Pangaean tropical regions experienced major cyclic environmental changes during the Pennsylvanian-early Permian interval, with significant modifications to ecosystems and biotic communities (biotic stress) resulting from alternation of wetland and dryland floras. Such changes were a result of glacial and interglacial cycles, and their effects were especially felt in the tropical regions of central Pangaea during this interval. The dryland environments occupied part of the tropical landscapes of central Pangaea during the Pennsylvanian. The emergence of these environments is intricately linked to a warmer or drier climate during interglacial periods. These interglacial periods led to significant changes in climate and therefore the overall composition of resident floral assemblages in the tropical regions of central Pangaea in the late Palaeozoic.

Fossils of Lesleya have been widely documented in Early-Middle Pennsylvanian-age dryland basins of North America. Recent discoveries in the Upper Pennsylvanian of Portugal have documented the first occurrence of Lesleya in Iberian Massif. The Portuguese Lesleya specimens were found in lower Gzhelian strata of the Douro Basin and occur in intramontane deposits that preserve evidence of dry climate. Dry climate is characterised by the moisture-deficient (dryness) and well-drained conditions. The appearance of Lesleya in Iberia coincided with the onset of an interglacial interval in the Kasimovian-Gzhelian (304 million years) after the waning of a major glaciation in southern Gondwana. As a result, parts of palaeoequatorial belt especially of central Pangaea, where eastern Laurentia and Iberia were located, became drier and less humid during the Gzhelian (Late Pennsylvanian, 304–299 million years ago).

Other typical dryland floras such as the Walchian Conifers, Walchia and Ernestiodendron, Cordaitalean Cordaites, Callipterid Peltasperms, Autunia conferta and Rhachiphyllum, and the Dicranophyllalean, Dicranophyllum, also flourished at various places in Laurentia (e.g. West Virginia) and Iberia. Such dryland biomes were more abundant during periods of warm or dry climate in the Late Pennsylvanian and early Permian. These palaeobotanical data provide palaeogeographic constraints on the proximity of Laurentia and Iberia and are key to distinguishing between the competing Pangaea configurations.

The Pangaea-A versus Pangaea-B controversy underscores large uncertainties about the palaeogeographic position of Gondwana relative to Laurasia in the Late Devonian-early Permian interval. Recent palaeobotanical and biostratigraphic studies indicate a proximal Iberian-Appalachian palaeogeography in the Late Pennsylvanian. Such evidence provides significant constraints in the palaeogeography, palaeoclimate and palaeotopography in both the Appalachian and Iberian (Variscan) orogens.

 
Palaeogeographic and palaeotopographic constraints within Pangaea-A showing the continental linkage between eastern Laurentia and Iberia and uplift of the Appalachian and Variscan orogens in the late Gzhelian-early Permian. Abbreviations: WV, West Virginia; IM, Iberian Massif; Aq, Aquitaine; AM: Armorican Massif; MC: French Central Massif; RH: Rheno-Hercynian terrane; ST, Saxo-Thuringian terrane; BM, Bohemian Massif; Sd, Sardinia (Italian island); Co, Corsica (French Mediterranean island); NI, Variscan basement of northern Italy. Correia & Murphy (2020).

Because they are indicators for climatic and environmental conditions, the occurrence of dryland floras typical from North America such as Lesleya in the Upper Pennsylvanian strata of Portugal is evidence of migration of dry-climate adapted floras between the Laurasian and Gondwanan continents. This floral migration suggests that eastern Laurentia and Iberia were connected or geographically very close, sharing the same tropical dryland environment within central Pangaea in the Late Pennsylvanian. Moreover, the appearance of Lesleya in the early Gzhelian (Late Pennsylvanian, 304–301 million years ago) of Iberia, immediately after a transition from glacial to interglacial conditions in the Kasimovian-Gzhelian interval (304 million years ago), indicates that this flora migrated from Laurentia to Iberia, possibly when new dryland habitats appeared. In this proximal configuration, Iberia probably acted as a migratory option or refuge to the many dry-climate adapted floras of Laurentia, perhaps because conditions of greater dryness had prevailed in Iberia in the early Gzhelian. During that time interval, new dryland species such as Lesleya iberiensis emerged in the Iberia in well-drained, moisture-deficient environments.

The migration routes of dryland flora between Laurentia and Iberia provide insights into the location and timing of uplift of the Appalachian and Variscan orogens during continental collision between Laurasia and Gondwana during the amalgamation of Pangaea. These migration routes were influenced by climate and tectonically-induced topographic changes. As mountain ranges acted as physical barriers to the floral exchanges between Laurentia and Iberia within central Pangaea, this migration occurred before uplift of the Appalachian and Variscan orogens, i.e. during the early Gzhelian (Late Pennsylvanian, 304–301 million years ago). This palaeobiogeographic connection records early stages of uplift during the assembly and amalgamation of Pangaea and implies a connection along the palaeoequatorial belt between the Appalachian orogen and the Variscan orogen in Iberia. A macrofloral biostratigraphic gap correlated between the Upper Pennsylvanian successions of Appalachian region in West Virginia and Portugal supports an Iberian-Appalachian connection at that time. The timing of this connection implies that uplift of the Appalachian and Variscan orogens occurred during the late Gzhelian (Late Pennsylvanian) to Asselian (early Permian) (301–295 million years ago).

OurCorreia and Murphy's data provide the ‘missing link’ between Gondwana and Laurasia during the final amalgamation of the supercontinent Pangaea in the Late Pennsylvanian and confirms a Pangaea-A ('Wegenerian') configuration at that time. Consequently, these results indicate that the palaeomagnetic data used to support a Pangaea-B configuration in the late Palaezoic5 represent an artifact of data quality, geometrical fits used to restore the Atlantic-bordering continents to one another, and processes such as inclination shallowing in clastic rocks.

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Friday, 21 July 2017

Understanding the relationship between ocean anoxia and porphyry formation.

Porphyry formations are igneous rocks that develop along subducting plate margins. They are rich in copper, molybdenum and gold ores, making them of great interest to geologists searching for such metals. Interestingly, almost all known porphyry deposits date from the Phanerozoic (i.e. Cambrian or younger), with such formations virtually absent from Precambrian rocks. It has been theorized that this is linked to the presence of oxygen in the deep oceans; in the presence of oxygen sulphur present in magma forms sulphate compounds; these are generally incompatible with copper, molybdenum and gold, and these metals are rapidly precipitated out of the melt, forming beds rich in these metals. However, in the absence of oxygen the sulphur is found in the form of sulphides, which react well with the metals, so that they become diffusely spread throughout the magma, never reaching concentrations at which their recovery would be economically viable. If this is the case, then porphyry deposits should also be absent from Phanerozoic deposits associated with deep-ocean anoxia.

In a paper published in the journal Geology on 1 May 2017, Jeremy Richards of the Department of Earth and Atmospheric Sciences at the University of Alberta and Celâl Şengör of the Maden Fakültesi, Jeoloji Bölümü, and Avrasya Yerbilimleri Enstitüsü at the İstanbul Teknik Üniversitesi, attempt to test this theory by examining porphyry deposits along the Tethyan Margin, an ancient subductive margin running from the Alps through Anatolia, the Caucasus and the Himalayas and on into Southeast Asia, associated with the closure of the Tethys Ocean from the Carboniferous to the Cainozoic, during which periods of both ocean oxygenation and anoxia are recorded in the sedimentary rock record.

Many porphyry deposits are known from the Tethyan Margin, though these have largely been studied by economic geologists interested in finding viable sources of copper, molybdenum and gold. Richards and Şengör collated records from a wide variety of sources, to establish the age of known porphyry deposits along the margin. They found that almost all commercially viable porphyry deposits on the Tethyan Margin were associated with the Neo-Tethyan Suture, laid down in the Cretaceous and Cainozoic, with virtually none associated with the Palaeo-Tethyan Suture, laid down in the Permian to Jurassic. 

Distribution of igneous rocks associated with Paleo-Tethyan (Permian to Jurassic) and Neo-Tethyan (Cretaceous–Cenozoic) subduction and collisional closure. Richards & Şengör (2017).

This is highly indicative, as the Palaeo-Tethyan Suture is associated with a period of prolonged deep-water anoxia in the ancient Tethys Ocean, as it was increasingly enclosed by the formation of the ancient Supercontinent of Pangea from the Carboniferous onwards, preventing ocean circulation, resulting in progressive anoxia in the deep Tethys Ocean. This reached its worst during the Late Permian, when the ocean was completely enclosed and the anoxia is known to have reached the continental shelves, leading to local extinction events in even very shallow waters. The ocean slowly recovered as Pangea broke up in the Triassic and Jurassic, leading to a return to normal ocean conditions in the Cretaceous.

Paleogeographic reconstruction of the Paleo-Tethyan ocean basin during the Late Permian. Isolation from global oceanic circulation led to anoxia and the deposition of thick sequences of reduced seafloor sediments. Richards & Şengör (2017). 

See also...

http://sciencythoughts.blogspot.co.uk/2016/12/tracing-origin-of-hexavalent-chromium.htmlhttp://sciencythoughts.blogspot.co.uk/2016/08/significant-new-gold-deposits.html

http://sciencythoughts.blogspot.co.uk/2016/07/understanding-how-caldera-collapse.htmlhttp://sciencythoughts.blogspot.co.uk/2015/12/tantalum-mining-in-twenty-first-century.html
http://sciencythoughts.blogspot.co.uk/2015/12/evidence-of-ice-age-at-start-of-middle.htmlhttp://sciencythoughts.blogspot.co.uk/2014/12/understanding-tokapal-kimberlite.html
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Thursday, 12 September 2013

Magnitude 4.7 Earthquake beneath Lake Guozha, northwest Tibet.

The United States Geological Survey recorded a Magnitude 4.7 Earthquake at a depth of 34.7 km beneath Lake Guozha, a glacial lake in the remote Kunlun Mountains of northeast Tibet, slightly before 9.30 pm local time (slightly before 1.30 pm GMT) on Wednesday 11 September 2013. Earthquakes of this size at this depth seldom lead to damage or injuries, and given the remote location of this quake, it is unlikely that it was noticed by anyone at all.

The approximate location of the 11 September 2013 Lake Gouzha Earthquake. Google Maps.

The Kunlun Mountains are located to the north of the Himalayas, and form the northern fringe of the Tibetan Plateau. These are ancient mountains formed by uplift and volcanic eruptions during the collision of the ancient continents of Cimmeria and Siberia during the closure of the Palaeotethys Ocean during the Late Triassic, part of the formation of the Pangean Supercontinent. However modern Earthquake activity in the area is caused by the uplift of the Tibetan Plateau, due to the impact of India into Eurasia to the south. he Indian Plate is moving northwards at a rate of 5 cm per year, causing it to impact into Eurasia, which is also moving northward, but only at a rate of 2 cm per year. The collision of the Indian and Eurasian plates has lead to the formation of the Himalayan Mountains, the Tibetan Plateau, and the mountains of southwest China, Central Asia and the Hindu Kush.


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