TY - THES A1 - Spooner, Cameron T1 - How does lithospheric configuration relate to deformation in the Alpine region? T1 - Was ist der Zusammenhang zwischen der lithosphärischen Zusammensetzung der Alpen, ihrer Vorländer und deren Deformation? N2 - Forming as a result of the collision between the Adriatic and European plates, the Alpine orogen exhibits significant lithospheric heterogeneity due to the long history of interplay between these plates, other continental and oceanic blocks in the region, and inherited features from preceeding orogenies. This implies that the thermal and rheological configuration of the lithosphere also varies significantly throughout the region. Lithology and temperature/pressure conditions exert a first order control on rock strength, principally via thermally activated creep deformation and on the distribution at depth of the brittle-ductile transition zone, which can be regarded as the lower bound to the seismogenic zone. Therefore, they influence the spatial distribution of seismicity within a lithospheric plate. In light of this, accurately constrained geophysical models of the heterogeneous Alpine lithospheric configuration, are crucial in describing regional deformation patterns. However, despite the amount of research focussing on the area, different hypotheses still exist regarding the present-day lithospheric state and how it might relate to the present-day seismicity distribution. This dissertaion seeks to constrain the Alpine lithospheric configuration through a fully 3D integrated modelling workflow, that utilises multiple geophysical techniques and integrates from all available data sources. The aim is therefore to shed light on how lithospheric heterogeneity may play a role in influencing the heterogeneous patterns of seismicity distribution observed within the region. This was accomplished through the generation of: (i) 3D seismically constrained, structural and density models of the lithosphere, that were adjusted to match the observed gravity field; (ii) 3D models of the lithospheric steady state thermal field, that were adjusted to match observed wellbore temperatures; and (iii) 3D rheological models of long term lithospheric strength, with the results of each step used as input for the following steps. Results indicate that the highest strength within the crust (~ 1 GPa) and upper mantle (> 2 GPa), are shown to occur at temperatures characteristic for specific phase transitions (more felsic crust: 200 – 400 °C; more mafic crust and upper lithospheric mantle: ~600 °C) with almost all seismicity occurring in these regions. However, inherited lithospheric heterogeneity was found to significantly influence this, with seismicity in the thinner and more mafic Adriatic crust (~22.5 km, 2800 kg m−3, 1.30E-06 W m-3) occuring to higher temperatures (~600 °C) than in the thicker and more felsic European crust (~27.5 km, 2750 kg m−3, 1.3–2.6E-06 W m-3, ~450 °C). Correlation between seismicity in the orogen forelands and lithospheric strength, also show different trends, reflecting their different tectonic settings. As such, events in the plate boundary setting of the southern foreland correlate with the integrated lithospheric strength, occurring mainly in the weaker lithosphere surrounding the strong Adriatic indenter. Events in the intraplate setting of the northern foreland, instead correlate with crustal strength, mainly occurring in the weaker and warmer crust beneath the Upper Rhine Graben. Therefore, not only do the findings presented in this work represent a state of the art understanding of the lithospheric configuration beneath the Alps and their forelands, but also a significant improvement on the features known to significantly influence the occurrence of seismicity within the region. This highlights the importance of considering lithospheric state in regards to explaining observed patterns of deformation. N2 - Als Resultat der Kollision zwischen der Adriatischen und Europäischen Platte ist das Alpenorogen durch eine ausgeprägte Heterogenität der Lithosphäreneigenschaften gekennzeichnet, die auf die Geschichte der beiden Platten, ihre Interaktion, Wechselwirkungen mit anderen kontinentalen und ozeanischen Blöcken der Region und strukturell vererbte Merkmale aus früheren Orogenesen zurückzuführen sind. Entsprechend ist zu erwarten, dass die thermische und rheologische Konfiguration der Lithosphäre ebenfalls grundlegend innerhalb der Region variiert. Lithologie und Temperatur-/Druckbedingungen steuern maßgeblich die Festigkeit der Lithosphäre indem thermisch aktiviertes Kriechen die Tiefenlage der spröd-duktilen Übergangszone – die sogenannte brittle-ductile transition (BDT) bestimmt. Diese Tiefenlage kann als untere Grenze der seismogenen Zone betrachtet werden kann, weshalb sie die räumliche Verteilung der Seismizität in der Lithosphärenplatte entscheidend beeinflusst. Trotz der langjährigen und umfangreichen Forschung zur Dynamik und Struktur der Alpen gibt es immer noch verschiedene Hypothesen zum heutigen physikalischen Zustand des Systems und dazu, wie dieser mit der Verteilung und dem Auftreten von Seismizität zusammenhängt. Diese Dissertation hat das Ziel, die Lithosphärenkonfiguration der Alpen zu beschreiben und Zusammenhänge zwischen der Verteilung lithosphärischer Eigenschaften und Deformation, insbesondere der Verteilung der Seismizität abzuleiten. Dies wird durch einen integrierten Modellierungsansatz erreicht, mit dem verfügbare geophysikalische Beobachtungen in 3D Modellen zusammengeführt werden, die die heterogene lithosphärische Konfiguration abbilden. Dazu wird (1) ein mit geologischen, seismischen und gravimetrischen Daten konsistentes 3D-Dichtemodell erzeugt und genutzt, um Lithologien abzuleiten, (2) deren Konsequenzen für das dreidimensionale stationäre thermische Feld zu berechnen und, basierend darauf, schließlich (3) die räumliche Variation der Lithosphärenrheologie zu bestimmen. Diese räumliche Variation der rheologischen Eigenschaften wurde schließlich in Beziehung zur Verteilung der auftretenden Seismizität gesetzt. Die Ergebnisse zeigen, dass die größte Festigkeit innerhalb der Kruste (~1 GPa) und im oberen Mantel (> 2 GPa) oberhalb der Bereiche auftritt, wo Temperaturbedingte Phasenübergänge zu erwarten sind. Für die felsische Kruste umfasst dies den Temperaturbereich bis etwa 400° C, für die mafische Kruste und den lithospärischen Mantel bis etwa 600°, wobei Seismizität jeweils oberhalb dieser Temperaturen auftritt. Zusätzlich wurden Hinweise gefunden, dass diese Festigkeitsverteilung auf vererbte Lithosphäreneigenschaften zurückzuführen ist: so tritt seismische Aktivität in der dünneren und mafischen Adria Kruste (~22,5 km, 2.800 kg m-3, 1.30E -06 W m-3) bei höheren Temperatur (~600° C) auf als in der dickeren und eher felsischen europäischen Kruste (~27.5 km, 2750 kg m−3, 1.3–2.6E-06 W m-3, ~450 °C). Die Beziehung zwischen seismischer Aktivität und Lithosphärenfestigkeit im Bereich der Vorländer zeigt ebenfalls unterschiedliche Trends, die verschiedenene tektonische Randbedingungen wiederspiegeln. Während im Plattenrandsetting des südlichen Vorlands Seismizität in der rheologisch weicheren Lithosphäre in der Umrandung des adriatischen Indentors auftritt, korreliert die auftretende Seismizität im Intraplattensetting des nördlichen Vorlands räumlich mit wärmeren und rheologisch schwächeren Domänen im Bereich des Oberrheingrabens. Somit liefern die Ergebnisse in dieser Arbeit nicht nur ein verbessertes Verständnis der Lithosphärenkonfiguration der Alpen und ihrer Vorländer , sondern auch einen bedeutenden Fortschritt dazu, welche Faktoren Seismizität innerhalb der Region beeinflussen können. Sie zeigen, dass es wichtig ist, die Lithosphärenkonfiguration zu kennen und sie zur auftretenden Deformation in Beziehung zu setzen. KW - Gravity KW - Thermal KW - Rheology KW - Model KW - Alps KW - Alpen KW - Schwerkraft KW - Modell KW - Rheologie KW - Thermisch Y1 - 2021 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-516442 ER - TY - GEN A1 - Rodriguez Piceda, Constanza A1 - Scheck Wenderoth, Magdalena A1 - Gomez Dacal, Maria Laura A1 - Bott, Judith A1 - Prezzi, Claudia Beatriz A1 - Strecker, Manfred T1 - Lithospheric density structure of the southern Central Andes constrained by 3D data-integrative gravity modelling T2 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe N2 - The southern Central Andes (SCA) (between 27 degrees S and 40 degrees S) is bordered to the west by the convergent margin between the continental South American Plate and the oceanic Nazca Plate. The subduction angle along this margin is variable, as is the deformation of the upper plate. Between 33 degrees S and 35 degrees S, the subduction angle of the Nazca plate increases from sub-horizontal (< 5 degrees) in the north to relatively steep (similar to 30 degrees) in the south. The SCA contain inherited lithological and structural heterogeneities within the crust that have been reactivated and overprinted since the onset of subduction and associated Cenozoic deformation within the Andean orogen. The distribution of the deformation within the SCA has often been attributed to the variations in the subduction angle and the reactivation of these inherited heterogeneities. However, the possible influence that the thickness and composition of the continental crust have had on both short-term and long-term deformation of the SCA is yet to be thoroughly investigated. For our investigations, we have derived density distributions and thicknesses for various layers that make up the lithosphere and evaluated their relationships with tectonic events that occurred over the history of the Andean orogeny and, in particular, investigated the short- and long-term nature of the present-day deformation processes. We established a 3D model of lithosphere beneath the orogen and its foreland (29 degrees S-39 degrees S) that is consistent with currently available geological and geophysical data, including the gravity data. The modelled crustal configuration and density distribution reveal spatial relationships with different tectonic domains: the crystalline crust in the orogen (the magmatic arc and the main orogenic wedge) is thicker (similar to 55 km) and less dense (similar to 2900 kg/m(3)) than in the forearc (similar to 35 km, similar to 2975 kg/m(3)) and foreland (similar to 30 km, similar to 3000 kg/m(3)). Crustal thickening in the orogen probably occurred as a result of stacking of low-density domains, while density and thickness variations beneath the forearc and foreland most likely reflect differences in the tectonic evolution of each area following crustal accretion. No clear spatial relationship exists between the density distribution within the lithosphere and previously proposed boundaries of crustal terranes accreted during the early Paleozoic. Areas with ongoing deformation show a spatial correlation with those areas that have the highest topographic gradients and where there are abrupt changes in the average crustal-density contrast. This suggests that the short-term deformation within the interior of the Andean orogen and its foreland is fundamentally influenced by the crustal composition and the relative thickness of different crustal layers. A thicker, denser, and potentially stronger lithosphere beneath the northern part of the SCA foreland is interpreted to have favoured a strong coupling between the Nazca and South American plates, facilitating the development of a sub-horizontal slab. T3 - Zweitveröffentlichungen der Universität Potsdam : Mathematisch-Naturwissenschaftliche Reihe - 1369 KW - Central andes KW - Lithospheric structure KW - Crustal density KW - Gravity KW - modelling KW - Subduction Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-562628 SN - 1866-8372 IS - 7 ER - TY - JOUR A1 - Rodriguez Piceda, Constanza A1 - Scheck Wenderoth, Magdalena A1 - Gomez Dacal, Maria Laura A1 - Bott, Judith A1 - Prezzi, Claudia Beatriz A1 - Strecker, Manfred T1 - Lithospheric density structure of the southern Central Andes constrained by 3D data-integrative gravity modelling JF - International journal of earth sciences N2 - The southern Central Andes (SCA) (between 27 degrees S and 40 degrees S) is bordered to the west by the convergent margin between the continental South American Plate and the oceanic Nazca Plate. The subduction angle along this margin is variable, as is the deformation of the upper plate. Between 33 degrees S and 35 degrees S, the subduction angle of the Nazca plate increases from sub-horizontal (< 5 degrees) in the north to relatively steep (similar to 30 degrees) in the south. The SCA contain inherited lithological and structural heterogeneities within the crust that have been reactivated and overprinted since the onset of subduction and associated Cenozoic deformation within the Andean orogen. The distribution of the deformation within the SCA has often been attributed to the variations in the subduction angle and the reactivation of these inherited heterogeneities. However, the possible influence that the thickness and composition of the continental crust have had on both short-term and long-term deformation of the SCA is yet to be thoroughly investigated. For our investigations, we have derived density distributions and thicknesses for various layers that make up the lithosphere and evaluated their relationships with tectonic events that occurred over the history of the Andean orogeny and, in particular, investigated the short- and long-term nature of the present-day deformation processes. We established a 3D model of lithosphere beneath the orogen and its foreland (29 degrees S-39 degrees S) that is consistent with currently available geological and geophysical data, including the gravity data. The modelled crustal configuration and density distribution reveal spatial relationships with different tectonic domains: the crystalline crust in the orogen (the magmatic arc and the main orogenic wedge) is thicker (similar to 55 km) and less dense (similar to 2900 kg/m(3)) than in the forearc (similar to 35 km, similar to 2975 kg/m(3)) and foreland (similar to 30 km, similar to 3000 kg/m(3)). Crustal thickening in the orogen probably occurred as a result of stacking of low-density domains, while density and thickness variations beneath the forearc and foreland most likely reflect differences in the tectonic evolution of each area following crustal accretion. No clear spatial relationship exists between the density distribution within the lithosphere and previously proposed boundaries of crustal terranes accreted during the early Paleozoic. Areas with ongoing deformation show a spatial correlation with those areas that have the highest topographic gradients and where there are abrupt changes in the average crustal-density contrast. This suggests that the short-term deformation within the interior of the Andean orogen and its foreland is fundamentally influenced by the crustal composition and the relative thickness of different crustal layers. A thicker, denser, and potentially stronger lithosphere beneath the northern part of the SCA foreland is interpreted to have favoured a strong coupling between the Nazca and South American plates, facilitating the development of a sub-horizontal slab. KW - Central andes KW - Lithospheric structure KW - Crustal density KW - Gravity KW - modelling KW - Subduction Y1 - 2020 U6 - https://doi.org/10.1007/s00531-020-01962-1 SN - 1437-3254 SN - 1437-3262 VL - 110 IS - 7 SP - 2333 EP - 2359 PB - Springer CY - New York ER -