997 resultados para glacial till


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The modern stratigraphy of clastic continental margins is the result of the interaction between several geological processes acting on different time scales, among which sea level oscillations, sediment supply fluctuations and local tectonics are the main mechanisms. During the past three years my PhD was focused on understanding the impact of each of these process in the deposition of the central and northern Adriatic sedimentary successions, with the aim of reconstructing and quantifying the Late Quaternary eustatic fluctuations. In the last few decades, several Authors tried to quantify past eustatic fluctuations through the analysis of direct sea level indicators, among which drowned barrier-island deposits or coral reefs, or indirect methods, such as Oxygen isotope ratios (δ18O) or modeling simulations. Sea level curves, obtained from direct sea level indicators, record a composite signal, formed by the contribution of the global eustatic change and regional factors, as tectonic processes or glacial-isostatic rebound effects: the eustatic signal has to be obtained by removing the contribution of these other mechanisms. To obtain the most realistic sea level reconstructions it is important to quantify the tectonic regime of the central Adriatic margin. This result has been achieved integrating a numerical approach with the analysis of high-resolution seismic profiles. In detail, the subsidence trend obtained from the geohistory analysis and the backstripping of the borehole PRAD1.2 (the borehole PRAD1.2 is a 71 m continuous borehole drilled in -185 m of water depth, south of the Mid Adriatic Deep - MAD - during the European Project PROMESS 1, Profile Across Mediterranean Sedimentary Systems, Part 1), has been confirmed by the analysis of lowstand paleoshorelines and by benthic foraminifera associations investigated through the borehole. This work showed an evolution from inner-shelf environment, during Marine Isotopic Stage (MIS) 10, to upper-slope conditions, during MIS 2. Once the tectonic regime of the central Adriatic margin has been constrained, it is possible to investigate the impact of sea level and sediment supply fluctuations on the deposition of the Late Pleistocene-Holocene transgressive deposits. The Adriatic transgressive record (TST - Transgressive Systems Tract) is formed by three correlative sedimentary bodies, deposited in less then 14 kyr since the Last Glacial Maximum (LGM); in particular: along the central Adriatic shelf and in the adjacent slope basin the TST is formed by marine units, while along the northern Adriatic shelf the TST is represented by costal deposits in a backstepping configuration. The central Adriatic margin, characterized by a thick transgressive sedimentary succession, is the ideal site to investigate the impact of late Pleistocene climatic and eustatic fluctuations, among which Meltwater Pulses 1A and 1B and the Younger Dryas cold event. The central Adriatic TST is formed by a tripartite deposit bounded by two regional unconformities. In particular, the middle TST unit includes two prograding wedges, deposited in the interval between the two Meltwater Pulse events, as highlighted by several 14C age estimates, and likely recorded the Younger Dryas cold interval. Modeling simulations, obtained with the two coupled models HydroTrend 3.0 and 2D-Sedflux 1.0C (developed by the Community Surface Dynamics Modeling System - CSDMS), integrated by the analysis of high resolution seismic profiles and core samples, indicate that: 1 - the prograding middle TST unit, deposited during the Younger Dryas, was formed as a consequence of an increase in sediment flux, likely connected to a decline in vegetation cover in the catchment area due to the establishment of sub glacial arid conditions; 2 - the two-stage prograding geometry was the consequence of a sea level still-stand (or possibly a fall) during the Younger Dryas event. The northern Adriatic margin, characterized by a broad and gentle shelf (350 km wide with a low angle plunge of 0.02° to the SE), is the ideal site to quantify the timing of each steps of the post LGM sea level rise. The modern shelf is characterized by sandy deposits of barrier-island systems in a backstepping configuration, showing younger ages at progressively shallower depths, which recorded the step-wise nature of the last sea level rise. The age-depth model, obtained by dated samples of basal peat layers, is in good agreement with previous published sea level curves, and highlights the post-glacial eustatic trend. The interval corresponding to the Younger Dyas cold reversal, instead, is more complex: two coeval coastal deposits characterize the northern Adriatic shelf at very different water depths. Several explanations and different models can be attempted to explain this conundrum, but the problem remains still unsolved.

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Mit dieser Arbeit wird am Beispiel der Gimpel der Gattung Pyrrhula (Aves: Fringillidae) eine vergleichende phylogenetische Methodik angewandt. Der dafür gewählte Untersuchungsansatz beinhaltet v.a. molekulargenetische und morphologische Methoden, deren Ergebnisse vor dem biogeographischen Hintergrund der Gattung analysiert werden. Diese Arbeit bestätigt die traditionelle Abgrenzung der Gimpel gegenüber den anderen Formen der Finkenfamilie. Die Gattung stellt eine monophyletische Gruppe dar und ist sowohl anhand molekulargenetischer als auch morphologischer Merkmale hervorragend umgrenzbar. Eine Vereinigung mit der Schwestergattung Pinicola ist demgegenüber nicht gerechtfertigt. Die mit klassischen Untersuchungsverfahren bestimmten Gruppierungen der Gattung lassen sich auch mit modernen Methoden bestätigen. Pyrrhula besteht aus drei Hauptverwandtschaftsgruppen: „Südostasiatische Gimpel“ (P. nipalensis und P. leucogenis), „Himalayagimpel“ (P. aurantiaca, P. erythaca, P. erythrocephala) und „Eurasische Gimpel“ (P. pyrrhula s.l.). Innerhalb von P. pyrrhula s.l. lassen sich drei genetisch und morphologisch unterschiedlich differenzierte Untergruppierungen mit eigenständige Merkmalskombinationen ausmachen: P. (p.) murina, P. (p.) cineracea und P. (p.) griseiventris. Das Entstehungszentrum von Pyrrhula befand sich vermutlich im südöstlichen Asien. Anhand der molekulargenetischen und biogeographischen Daten lassen sich ungefähre Ausbreitungs- und Diversifizierungsprozesse datieren. Vom Entstehungszentrum ging eine präpleistozäne Ausbreitungswelle aus, die die Aufspaltung der Stammlinienvertreter der Südostasiatischen Gimpel und später die der Himalayagimpel-Stammlinie zur Folge hatten. Etwa zeitgleich begann die Ausbreitung der Vorfahren der Eurasischen Gimpel bis ins westliche Südeuropa. Im frühen Pleistozän spalteten sich die Vorläufer des rezenten P. aurantica ab, gefolgt von der Trennung der südostasiatischen Stammlinie in die Vorfahren von P. nipalensis und P. leucogenis. Daraufhin folgten rasche spätpleistozäne Ausbreitungen und Diversifizierungen, die das Überdauern von Gimpeln in südostchinesischen bzw. mediterranen Glazialrefugien nahelegen. Dabei trennten sich die Stammlinien von P. erythrocephala und P. erythaca ungefähr gleichzeitig mit jenen der Stammlinien von P. pyrrhula s.str., P. (p.) murina und P. (p.) griseiventris. Die P. (p.) cineracea-Stammlinie folgte wiederum etwas später. Die Vorläufer der heutigen P. pyrrhula s.str. nahmen im späten Pleistozän mehrfach ostwärts gerichtete Ausbreitungen vor, während derer sie sich über weite Teile Eurasiens bis nach Kamtschatka verbreiteten. Die morphologischen Differenzierungen der einzelnen Formen wurden wahrscheinlich stark durch die geographischen Verhältnisse beeinflusst. Neben Isolationseffekten auf Inseln (murina) spielten vermutlich auch pleistozäne Refugialgebiete der Mandschurei und Japans für die Entstehung der heutigen griseiventris und das nordmongolische Refugium für cineracea eine große Rolle. Der gefiedermorphologische Geschlechtsmonomorphismus von P. nipalensis und P. leucogenis könnte dabei einen stammesgeschichtlich ancestralen Zustand darstellen, jener von murina ist dagegen sicher eine sekundäre Reduktionserscheinung. Auf Grundlage des Biospezieskonzeptes erlauben die erarbeiteten phylogenetischen Daten, die Gattung Pyrrhula entweder in sechs oder in neun Arten (inkl. zweier Superspezies) zu unterteilen. Der zahlenmäßige Unterschied entsteht dabei durch die unterschiedliche Klassifikation der Formen murina, cineracea und griseiventris, die entweder P. pyrrhula als Subspezies angeschlossen werden oder als Angehörige einer Superspezies P. [pyrrhula] Artrang erhalten.

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The atmosphere is a global influence on the movement of heat and humidity between the continents, and thus significantly affects climate variability. Information about atmospheric circulation are of major importance for the understanding of different climatic conditions. Dust deposits from maar lakes and dry maars from the Eifel Volcanic Field (Germany) are therefore used as proxy data for the reconstruction of past aeolian dynamics.rnrnIn this thesis past two sediment cores from the Eifel region are examined: the core SM3 from Lake Schalkenmehren and the core DE3 from the Dehner dry maar. Both cores contain the tephra of the Laacher See eruption, which is dated to 12,900 before present. Taken together the cores cover the last 60,000 years: SM3 the Holocene and DE3 the marine isotope stages MIS-3 and MIS-2, respectively. The frequencies of glacial dust storm events and their paleo wind direction are detected by high resolution grain size and provenance analysis of the lake sediments. Therefore two different methods are applied: geochemical measurements of the sediment using µXRF-scanning and the particle analysis method RADIUS (rapid particle analysis of digital images by ultra-high-resolution scanning of thin sections).rnIt is shown that single dust layers in the lake sediment are characterized by an increased content of aeolian transported carbonate particles. The limestone-bearing Eifel-North-South zone is the most likely source for the carbonate rich aeolian dust in the lake sediments of the Dehner dry maar. The dry maar is located on the western side of the Eifel-North-South zone. Thus, carbonate rich aeolian sediment is most likely to be transported towards the Dehner dry maar within easterly winds. A methodology is developed which limits the detection to the aeolian transported carbonate particles in the sediment, the RADIUS-carbonate module.rnrnIn summary, during the marine isotope stage MIS-3 the storm frequency and the east wind frequency are both increased in comparison to MIS-2. These results leads to the suggestion that atmospheric circulation was affected by more turbulent conditions during MIS-3 in comparison to the more stable atmospheric circulation during the full glacial conditions of MIS-2.rnThe results of the investigations of the dust records are finally evaluated in relation a study of atmospheric general circulation models for a comprehensive interpretation. Here, AGCM experiments (ECHAM3 and ECHAM4) with different prescribed SST patterns are used to develop a synoptic interpretation of long-persisting east wind conditions and of east wind storm events, which are suggested to lead to an enhanced accumulation of sediment being transported by easterly winds to the proxy site of the Dehner dry maar.rnrnThe basic observations made on the proxy record are also illustrated in the 10 m-wind vectors in the different model experiments under glacial conditions with different prescribed sea surface temperature patterns. Furthermore, the analysis of long-persisting east wind conditions in the AGCM data shows a stronger seasonality under glacial conditions: all the different experiments are characterized by an increase of the relative importance of the LEWIC during spring and summer. The different glacial experiments consistently show a shift from a long-lasting high over the Baltic Sea towards the NW, directly above the Scandinavian Ice Sheet, together with contemporary enhanced westerly circulation over the North Atlantic.rnrnThis thesis is a comprehensive analysis of atmospheric circulation patterns during the last glacial period. It has been possible to reconstruct important elements of the glacial paleo climate in Central Europe. While the proxy data from sediment cores lead to a binary signal of the wind direction changes (east versus west wind), a synoptic interpretation using atmospheric circulation models is successful. This shows a possible distribution of high and low pressure areas and thus the direction and strength of wind fields which have the capacity to transport dust. In conclusion, the combination of numerical models, to enhance understanding of processes in the climate system, with proxy data from the environmental record is the key to a comprehensive approach to paleo climatic reconstruction.rn

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The case report describes the situation where a venous infusion catheter was inadvertently stitched to the lateral wall of the right atrium during valve replacement. A dual percutaneous approach was used to first sever the catheter at the suture and then remove both ends safely. The risk of tearing the suture which would have resulted in tamponade had to be avoided.

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Since its discovery in Greenland ice cores, the millennial scale climatic variability of the last glacial period has been increasingly documented at all latitudes with studies focusing mainly on Marine Isotopic Stage 3 (MIS 3; 28–60 thousand of years before present, hereafter ka) and characterized by short Dansgaard-Oeschger (DO) events. Recent and new results obtained on the EPICA and NorthGRIP ice cores now precisely describe the rapid variations of Antarctic and Greenland temperature during MIS 5 (73.5–123 ka), a time period corresponding to relatively high sea level. The results display a succession of abrupt events associated with long Greenland InterStadial phases (GIS) enabling us to highlight a sub-millennial scale climatic variability depicted by (i) short-lived and abrupt warming events preceding some GIS (precursor-type events) and (ii) abrupt warming events at the end of some GIS (rebound-type events). The occurrence of these sub-millennial scale events is suggested to be driven by the insolation at high northern latitudes together with the internal forcing of ice sheets. Thanks to a recent NorthGRIP-EPICA Dronning Maud Land (EDML) common timescale over MIS 5, the bipolar sequence of climatic events can be established at millennial to sub-millennial timescale. This shows that for extraordinary long stadial durations the accompanying Antarctic warming amplitude cannot be described by a simple linear relationship between the two as expected from the bipolar seesaw concept. We also show that when ice sheets are extensive, Antarctica does not necessarily warm during the whole GS as the thermal bipolar seesaw model would predict, questioning the Greenland ice core temperature records as a proxy for AMOC changes throughout the glacial period.

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