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  • Depositional environments  (2)
  • Biostratigraphie  (1)
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  • 1
    Publication Date: 2023-08-02
    Description: Cenomanian strata of the Elbtal Group (Saxony, eastern Germany) reflect a major global sea-level rise and contain, in certain intervals, a green authigenic clay mineral in abundance. Based on the integrated study of five new core sections, the environmental background and spatio-temporal patterns of these glauconitic strata are reconstructed and some general preconditions allegedly needed for glaucony formation are critically questioned. XRD analyses of green grains extracted from selected samples confirm their glauconitic mineralogy. Based on field observations as well as on the careful evaluation of litho- and microfacies, 12 glauconitc facies types (GFTs), broadly reflecting a proximal–distal gradient, have been identified, containing granular and matrix glaucony of exclusively intrasequential origin. When observed in stratigraphic succession, GFT-1 to GFT-12 commonly occur superimposed in transgressive cycles starting with the glauconitic basal conglomerates, followed up-section by glauconitic sandstones, sandy glauconitites, fine-grained, bioturbated, argillaceous and/or marly glauconitic sandstones; glauconitic argillaceous marls, glauconitic marlstones, and glauconitic calcareous nodules continue the retrogradational fining-upward trend. The vertical facies succession with upwards decreasing glaucony content demonstrates that the center of production and deposition of glaucony in the Cenomanian of Saxony was the nearshore zone. This time-transgressive glaucony depocenter tracks the regional onlap patterns of the Elbtal Group, shifting southeastwards during the Cenomanian 2nd-order sea-level rise. The substantial development of glaucony in the thick (60 m) uppermost Cenomanian Pennrich Formation, reflecting a tidal, shallow-marine, nearshore siliciclastic depositional system and temporally corresponding to only ~ 400 kyr, shows that glaucony formation occurred under wet, warm-temperate conditions, high accumulation rates and on rather short-term time scales. Our new integrated data thus indicate that environmental factors such as great water depth, cool temperatures, long time scales, and sediment starvation had no impact on early Late Cretaceous glaucony formation in Saxony, suggesting that the determining factors of ancient glaucony may be fundamentally different from recent conditions and revealing certain limitations of the uniformitarian approach.
    Description: Deutsche Forschungsgemeinschaft http://dx.doi.org/10.13039/501100001659
    Description: Senckenberg Naturhistorische Sammlungen Dresden (3507)
    Keywords: ddc:551.7 ; Lower Upper Cretaceous ; Transgression ; Glaucony ; Stratigraphy ; Depositional environments
    Language: English
    Type: doc-type:article
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  • 2
    Publication Date: 2023-07-20
    Description: The Garedu Red Bed Formation (GRBF) of the northern Tabas Block (Central-East Iranian Microcontinent, CEIM) is a lithologically variable, up to 500-m-thick, predominantly continental unit. It rests gradually or unconformably on marine limestones of the Esfandiar Subgroup (Callovian–Oxfordian) and is assigned to the Kimmeridgian–Tithonian. In the lower part, it consists of pebble- to boulder-sized conglomerates/breccias composed of limestone clasts intercalated with calcareous sandstones, litho-/bioclastic rudstones and lacustrine carbonates. Up-section, sharp-based pebbly sandstones and red silt-/fine-grained sandstones of braided river origin predominate. Palaeocurrent data suggest a principal sediment transport from west to east and a lateral interfingering of the GRBF with marine greenish marls of the Korond Formation at the eastern margin of the Tabas Block. Westwards, the GRBF grades into the playa deposits of the Magu Gypsum Formation. Red colours and common calcretes suggest arid to semi-arid climatic conditions. The onset of Garedu Red Bed deposition indicates a major geodynamic change with the onset of compressive tectonics of the Late Cimmerian Tectonic Event (LCTE), being strongest at the eastern margin of the northern Tabas Block. When traced southwards, the same tectonic event is expressed by extension, indicating a shift in tectonic style along the boundary fault between the Tabas and Lut blocks. The complex Upper Jurassic facies distribution as well as the spatio-temporal changes in tectonic regime along the block-bounding faults are explained by the onset of counterclockwise vertical-axis rotation of the CEIM in the Kimmeridgian. The block boundaries accommodated the rotation by right-lateral strike slip, transpressional in today’s northern and transtensional in today’s southern segments of the block-bounding faults. Rotation occurred within bracketing transcurrent faults and continued into the Early Cretaceous, finally resulting in the opening of narrow oceanic basins encircling the CEIM. Palaeogeographically, the GRBF is part of a suite of red bed formations not only present on the CEIM, but also along the Sanandaj-Sirjan Zone (NW Iran), in northeastern Iran and beyond, indicating inter-regional tectonic instability, uplift and erosion under (semi-)arid climatic conditions across the Jurassic–Cretaceous boundary. Thus, even if our geodynamic model successfully explains Late Jurassic tectonic rotations, fault motions and facies distribution for the CEIM, the basic cause of the LCTE still remains enigmatic.
    Description: National Geographic
    Description: Projekt DEAL
    Keywords: ddc:551.7 ; Facies analysis ; Depositional environments ; Palaeogeography ; Synsedimentary tectonics ; Geodynamic model
    Language: English
    Type: doc-type:article
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  • 3
    facet.materialart.
    Unknown
    Selbstverlag Fachbereich Geowissenschaften, FU Berlin
    In:  Herausgeberexemplar
    Publication Date: 2024-04-22
    Description: Im nördlichen Bereich der Provinz Kantabrien (Nordspanien) wurden Sedimente der "Mittelkreide" (Oberalb und Cenoman) unter stratigraphischen, faziellen und sedimentologi sehen Gesichtspunkten bearbeitet. Strukturell gehört die Region zum Nordkantabrischen Becken (NCB), dessen Einsenkung mit tektonischen Bewegungen im mittleren Valangin beginnt. Das NCB ist eines der zahlreichen Sedimentbecken, die sich infolge des mesozoischen Riftings und Spreadings in der Biscaya auf dem iberischen Nordschelf bilden. Strukturgeologisch zeigt das NCB eine E/W-Ausrichtung zwischen zwei Hochgebieten im S und N (Cabuemiga-Rücken und Liencres-Hoch), die als "Santillana-Achse" bezeichnet wird. Im W grenzt das NCB an das Paläozoikum des Asturischen Massivs. Östlich Santander wird es strukturell und faziell durch die N/S-streichende Rio-Miera-Flexur vom hochsubs identen Basko-Kantabrischen Becken abgetrennt. Die Sedimentation im NCB wird stark von tektonischen Ereignissen im sich bildenden Biscaya-Ozeans beeinflußt, durch welche die Strukturierung der Schichtenfolge in sedimentäre Megasequenzen erfolgt. Im Alb und Cenoman können folgende Megasequenz-Grenzen erkannt werden, durch welche die Megasequenzen des Alb und Cenoman definiert werden: • Santander-Tectoevent (Cenoman/Turon-Grenzbereich) • Vraconian Tectoevent (hohes Oberalb) • "Mittelalb-Ereignis" ("break-up unconformity", [?hohes] Unteralb). Das Mittelalb-Ereignis fuhrt im Arbeitsgebiet zum Zerbrechen der faziell wenig differenzierten Urgon-Karbonatplattformen des Clansay (Oberapt/Unteralb) in ostvergente Kippschollen. In den entstehenden N/S-orientierten Halbgräben werden im Mittelaib fluvio-deltaische Klastika abgelagert, während auf den Hochschollen eine Verkarstung erfolgt. Im tiefen Oberalb initiiert ein transgressiver Puls die weit verbreitete Ablagerung mariner Sedimente im NCB. Dieses transgressive Ereignis ist in ganz Iberien nachzuweisen. Im Laufe des Oberalb kommt es zu einem Onlap mariner Sedimente auch auf den ehemals emergenten Hochschollen und zu einem Ausgleich des durch das Mittelalb-Ereignis erzeugten Paläoreliefs. Durch weit verbreitete Emersion des NCB's infolge tektonischer Bewegungen im oberen Oberalb (Vraconian Tectoevent) wird die sedimentäre Megasequenz des Alb beendet. Die sedimentäre Megasequenz des Cenoman beginnt im Alb/Cenoman-Grenzbereich mit der Progradation deltaischer Klastika. Die im NCB der Santillana-Achse folgend von W nach E kanalisiert werden. Dieses "Santillana-Delta" mündet im Bereich Galizano/Langre östlich Santander in das Basko-Kantabrische Becken und verzahnt sich dort mit den Prodelta-Sedimenten des Valmaseda-Deltas ("Schwarzer Flysch" der Bilbao-Region). Die differentielle Subsidenz im NCB in Folge des Vraconian Tectoevents wird von den Delta-Sedimenten ausgeglichen. Im tiefen Untercenoman (untere Mantelliceras mantelli-Zone) gestaltet eine bedeutende transgressive Faziesentwicklung das gesamte NCB in einen vollmarinen, karbonatisch dominierten Ablagerungsraum um. Dieser transgressive Puls dürfte mit der "Untercenoman-Transgression" sensu lato korrelieren. Im Cenoman können folgende Ammoniten-Biozonen erkannt werden: • Obercenoman: Eucalycoceras pentagonum-Zone, und Metoicoceras geslinianum-Zone [pars] • Mittel cenoman: [Cunningtoniceras inerme-Zone], Acanthoceras rhotomagense-Zone und A. jukesbrownei-Zone • Untercenoman: Mantelliceras mantelli-Zone und M. dixoni-Zone. Das höchste Obercenoman (oberer Teil der geslinianum-Zone und die Neocardioceras juddii-Zone) fehlt im NCB. In der oberen mantelli-Zonc des NCB etabliert sich in weiten Bereichen die flachmarine Karbonat-Fazies der Altamira-Plattform, die sich östlich der Rio-Miera-Flexur mit mächtigen Beckensedimenten (Mergel, Knollenkalke, Kalk/Mergel-Rhythmite) verzahnt. Im Mittel- bis unteren Obercenoman wird die Altamira-Plattform in drei Schritten von E nach W "ertränkt". Die prominenten Drowning-Unconformities (mineralisierte Hartgründe mit Ammoniten) werden dabei stufenweise nach W jünger. Im Obercenoman (pentagonum-Zono) ist die gesamte Altamira-Plattform ertränkt und weite Teile des NCB werden in die Beckensedimentation einbezogen. Die Ablagerungsgeschichte des Cenoman wird durch das Santander-Tectoevent in der oberen geslinianum-Zonc beendet, infolgedessen weite Teile des NCB trockenfallen. Selbst in hochsubsidenten Beckenprofilen ist der Cenoman/Turon-Grenzbereich durch eine Schicht lücke gekennzeichnet. Die fazielle Entwicklung der cenomanen Megasequenz ist durch die schubweise voranschreitende ("pulsierende") Cenoman-Transgression geprägt. Insgesamt können im Cenoman sechs Sequenzgrenzen (SB's) erkannt werden, durch die die Ablagerungssequenzen DS Ce I bis VI definiert werden. Ihre stratigraphischen Positionen sind: • SB Ce VI = obere geslinianum-Zonc • SB Ce V = Wende Mittel/Obercenoman • SB Ce IV = basale jukesbrownei-Zone • SB Ce III = hohe dixoni-Zone • SB Ce II = obere mantelli-Zone • SB Ce I = untere mantelli-Zone. Im regionalen Vergleich zeigt sich für das Cenoman eine gute Übereinstimmung mit sequentiellen Gliederungen aus dem Basko-Kantabrischen Raum. Überregionale Vergleiche dokumentieren, daß viele der Meeresspiegel-Bewegungen im Cenoman (z.B. SB Ce III, mfz in der rhotomagense-Zone, SB Ce IV, HST in der pentagonum-Zone) über weite Entfernungen korreliert werden können und wahrscheinlich eustatische Signale darstellen. Die Korrelation mit der "globalen Meeresspiegel-Kurve" (Exxon Chart) ist schlecht. Betrachtet man die im Cenoman im NCB abgelagerten Sedimente als "2nd-order cycle", so zeigt sich ein übergeordneter transgressiver Trend mit einem maximalen Onlap im Obercenoman innerhalb der mfz von DS Ce VI (pentagonum-Zone). Das NCB zeigt im Oberalb und Cenoman im biogeographischen Vergleich starke tethyale Einflüsse. Das Turrilites scheuchzerianus/Neohibolites ultimus-Evert. im tiefen Mittelcenoman des NCB korreliert in bio-, sequenz- und Isotopen-stratigraphischer Hinsicht mit dem Actinocamax primus-Event NW-Europas, womit eine eventstratigraphische Anbindung an das "temperierte" Cenoman erreicht werden kann.
    Description: Mid-Cretaceous (Upper Albian and Cenomanian) sediments in the northern part of the province of Cantabria (northern Spain) were investigated with the emphasis on stratigraphical and sedimentological aspects. Structurally, the area belongs to the North Cantabrian Basin (NCB), the depositional history of which started with distensional tectonic movements in the Mid-Valanginian. The NCB is one of the numerous sedimentary basins which developed on the north Iberian continental margin in consequence of the rifting and spreading in the Bay of Biscay during Mesozoic times. It is a gulf-like basin with an E/W-elongation ("Santillana axis"). In the south and in the north the NCB is bordered by the Cabuemiga Ridge and the Liencres High, respectively. To the west, the NCB is bordered by the Palaeozoic Asturian Massif; in the east, the N/S-trending Rio Miera Flexure forms a structural boundary to the strongly subsiding Basco-Cantabrian Basin. The depositional history of the NCB was strongly influenced by tectonic events which can be related to the evolving Biscay Ocean. These tectoevents give rise to a gross subdivison of the succession into sedimentary megasequences. Three tectonically induced megasequence boundaries can be recognized in the Albian and Cenomanian, defining the Albian and Cenomanian megasequences: • Santander-Tectoevent (Cenomanian/Turonian boundary interval) • Vraconian Tectoevent (late Late Albian) • "Middle Albian event" (break-up unconformity, [?late] Early Albian). The "Middle Albian event" caused a disintegration of the widespread Urgonian Clansay platforms (Late Aptian/Early Albian) into a palaeo-relief of eastward-dipping tilted blocks. In the N/S trending halfgrabens, fluvio-deltaic clastics were deposited during the Middle Albian, whereas the exposed tilted block crests were karstified. A strong transgressive pulse flooded the NCB in the early part of the Late Albian, giving rise to the widespread deposition of marine Upper Albian sediments. This transgressive event can also be recognised in southern Iberia and Portugal. During the later part of the Late Albian, the emergent crestal areas of the tilted blocks were onlapped by marine sediments, resulting in the filling-up of the Middle Albian palaeo-relief. Tectonic movements in the latest Albian (Vraconian tectoevent), causing emergence in wide parts of the NCB, terminated the Albian Megasequence. The Cenomanian megasequence started in the Albian/Cenomanian boundary interval with progradation of deltaic clastics, which were channelized (following the Santi liana-axis) into an eastward direction. This "Santillana Delta" flowed into the Basco-Cantabrian Basin east of Santander, where an interfingering with the prodeltaic sediments of the Valmaseda Delta ("Black Flysch" of the Bilbao area) took place. The differential subsidence in the NCB due to the Vraconian tectoevent was compensated by the deltaic sedimentation. In the lower part of the Mantelliceras mantelli Zone, a transgressive pulse flooded the NCB and led to the deposition of marine, predominantly calcareous sediments. This transgressive event is thought to correlate with the "Early Cenomanian transgression" sensu lato. In the Cenomanian succession of the NCB, the following ammonite zones can be recognized: • Late Cenomanian: Eucalycoceras pentagonum Zone and Metoicoceras geslinianum Zone [pars] • Middle Cenomanian: [Cunningtoniceras inerme Zone], Acanthoceras rhotomagense Zone and A. jukesbrownei Zone • Early Cenomanian: Mantelliceras mantelli Zone and M. dixoni-Zone. The upper part of the Upper Cenomanian (upper part of the geslinianum Zone and the Neocardioceras juddii Zone) is missing in the NCB. In the upper part of the mantelli Zone, deposition of the shallow marine carbonate sediments of the Altamira Platform became established over large areas of the NCB. In the strongly subsiding area east of the Rio Miera Flexure, thick successions of basinal sediments (marls, nodular limestones, marl/limestone rhythmites) were deposited contemporaneously. During the Middle to early Late Cenomanian, the Altamira Platform was drowned in three successive steps from east to west. The developing drowning unconformities (condensed, mineralized hardgrounds with ammonites) young towards the west, resulting in a backstepping of the Altamira Platform. In the Late Cenomanian (pentagonum Zone), all former sites of shallow marine carbonate deposition were drowned. The depositional history of the Cenomanian was terminated in the higher part of the geslinianum Zone when tectonic movements of the Santander tectoevent caused widespread emersion of the NCB. The resulting Cenomanian/Turonian boundary hiatus can be recognized both in the condensation horizons on top of the submerged platform as well as in the basinal successions. The facies development of the Cenomanian Megasequence is dominated by the pulsatory nature of the "Cenomanian transgression". Within the Cenomanian succession of northern Cantabria, six sequence boundaries can be recognized, which define six depositional (3rd-order) sequences (DS Ce I - VI). The stratigraphic positions of the sequence boundaries (SB) are as follows: • SB Ce VI = upper geslinianum Zone • SB Ce V = Middle/Late Cenomanian boundary interval • SB Ce IV = basal jukesbrownei Zone • SB Ce III = upper dixoni Zone • SB Ce II = upper mantelli Zone • SB Ce I = lower mantelli Zone. Comparison of this sequential subdivision with regional cycle charts from the Basco-Cantabrian area reveals good agreement, whereas correlation with the "global sea-level curve" (Exxon Chart) is poor. The extent to which many of the sea-level events in the Cenomanian (e.g. SB Ce III, mfz within the rhotomagense Zone, SB Ce IV, HST in the pentagonum Zone) can be correlated between basins elsewhere in Europe and Tunisia suggests that they were probably of eustatic nature. Considering the Cenomanian Megasequence as a "2nd-order cycle", an overall transgressive trend occurs throughout the Cenomanian; maximum coastal onlap was reached during the maximum flooding of DS Ce VI (pentagonum Zone). Palaeobiogeographically, the NCB shows strong tethyan affinities in the Late Albian and Cenomanian. The Turrilites scheuchzerianus/Neohibolites ultimus event in the early Middle Cenomanian permits a correlation with the Actinocamax primus event of the temperate Cenomanian of northern Europe by means of bio-, sequence and isotope stratigraphy.
    Description: Los sedimentos del Cretácico medio (Albiense superior/Cenomaniense) en la parte septentrional de la Provincia de Cantabria han sido estudiados, centrándose en aspectos estratigráficos y sedimentolögicos. El área de estudio pertenece estructural mente a la Cuenca Norcantábrica (NCB), cuya historia depositional comenzó con movimientos tectónicos distensivos en el Valanginiense medio. La NCB es una de las numerosas cuencas sedimentarias que se desarrollaron en el margen continental norteibérico como consecuencia del "rifting" y apertura del golfo de Vizcaya durante el Mesozoico. Es una cuenca con forma de golfo con una elongatión E/W ("Eje de Santillana"). Los límites septentrional y meridional de la NCB son el "Liencres High" y el Escudo de Cabuemiga respectivamente. Hacia el Oeste, la NCB queda confinada por el Macizo Paleozoico Asturiano; en el Este, el límite estructural conocido como Flexión del Río Miera de dirección N/S, la separa de la Cuenca Vasco-cantábrica mucho más subsidente. La historia deposicional de la NCB estuvo fuertemente influenciada por eventos tectónicos que pueden ser relacionados con la evolution del oceano de Vizcaya. Estos tectoeventos dieron lugar a una gruesa subdivision de la sucesión en megasecuencias sedimentarias. Tres límites de megasecuencias, que están inducidos por la tectónica, pueden ser reconocidos en el Albiense y Cenomaniense, definiendo respectivamente las megasecuencias albienses y cenomanienses: • Tectoevento de Santander (intervalo límite del Cenomaniense/Turoniense) • Tectoevento Vraconiense (Albiense superior tardío) • "Evento del Albiense medio" (discordancia de ruptura, Albiense inferior [?tardio]). El "Evento del Albiense medio" causo una desintegración de las plataformas urgonianas clansayenses (Aptiense superior/Albiense inferior), que estaban muy extendidas en paleorelieves de bloques basculados hacia el Este. Se produjo durante el Albiense medio una sedimentatión clástica fluvio-deltaica en los semi-grabenes, de dirección N/S, mientras que las cimas expuestas de los bloques basculados sufrieron procesos de karstificatión. Un fuerte pulso transgresivo inundó la NCB al comienzo del Albiense superior, dando lugar al depósito de sedimentos marinos en el Albiense superior due alcanzaron una muy amplia extensión. Durante la parte superior del Albiense superior las crestas de los bloques basculados fueron recubiertas por sedimentos marinos, indicando el equilibrio del paleorelieve en el Albiense medio. Los procesos tectónicos al final del Albiense superior (Tectoevento Vraconiense), que causaron la emersión de amplias zonas de la NCB, terminan la megasecuencia albiense. La megasecuencia cenomaniense comenzó en el limite Albiense/Cenomaniense con la progradatión de material clástico deltaico que fue canalizado (siguiendo el Eje de Santillana) hacia el Este. Dicho delta ("Delta de Santillana") discurria al Este de Santander hacia la Cuenca Vasco-cantabrica, interfiriendo con los sedimentos de prodelta del Delta de Valmaseda ("Flysch Negro"). En la parte inferior de la zona de Mantelliceras mantelli, un pulso transgresivo inundó la NCB y permitió el depósito de sedimentos marinos, predominantemente calcáreos. Este evento transgresivo puede ser correlacionado con la "transgresión del Cenomaniense initial" sensu lato. En la sucesion Cenomaniense de la NCB pueden ser reconocidas las siguientes zonas: • Cenomaniense superior: Zona de Eucalycoceras pentagonum y la Zona de Metoicoceras geslinianum [pars] • Cenomaniense medio: [Zona de Cunningtoniceras inerme], Zona de Acanthoceras rhotomagense y Zona de A. jukesbrownei • Cenomaniense inferior: Zona de Mantelliceras mantelli y Zona de M. dixoni. La parte superior del Cenomaniense superior (parte superior de la zona de M. geslinianum y la Zona de Neocardioceras judii) está ausente en la NCB. Los sedimentos marino-someros de naturaleza carbonatada de la "Plataforma de Altamira" comenzaron a depositarse en amplias zonas de la NCB en la parte superior de la zona de mantelli. Al Este de la Flexión de Río Miera, en un área fuertemente subsidente, fueron depositadas contemporáneamente potentes sucesiones de sedimentos de cuenca (margas, calizas nodulares y ritmitas de marga/caliza). Durante el Cenomaniense medio hasta la base del Cenomaniense superior, la Plataforma de Altamira fue inundada desde el Este al Oeste en tres intervalos sucesivos. El desarrollo de discordancias de inundatión ("drowning unconformities" = series condensadas, "hardgrounds" mineralizados con ammonites) resultan más recientes hacia el Oeste, concluyendo en un basculamiento hacia atrás de la Plataforma de Altamira. En el Cenomaniense superior (Zona de pentagonum) todos los anteriores lugares caracterizados por el depósito de carbonates marino-someros fueron anegados. La historia deposicional del Cenomaniense acabó en la parte alta de la zona de geslinianum, cuando movimientos tectonicos del Tectoevento de Santander causaron la emersión generalizada de la NCB. El hiato resultante puede ser reconocido en los horizontes condensados a techo de las plataformas sumergidas e igualmente en las sucesiones de cuenca. El desarrollo de facies del Cenomaniense está dominado por el carácter de pulsos que tuvo la "transgresión cenomaniense". Seis límites de secuencia pueden reconocerse dentro de la sucesión cenomaniense del norte de Cantabria, los cuales definen seis secuencias deposicional es de tercer orden (DS Ce I-VI). La positión estratigráfica de los límites de secuencia (SB) son los siguientes: • SB Ce VI = parte superior de la Zona de geslinianum • SB Ce V = intervalo límite del Cenomaniense medio/superior • SB Ce IV = base de la Zona de jukesbrawnei • SB Ce III = parte superior de la Zona de dixoni • SB Ce II = parte superior de la Zona de mantelli • SB Ce I = parte inferior de la Zona de mantelli. Una comparación de esta subdivisión secuencial con las tablas de ciclos regionales del reino vasco-cantábrico revela una buena correlatión, mientras que la correlatión con la "tabla global" ("Exxon chart") es pobre. La correlatión entre varias cuencas sugiere una causa eustática para los numerosos eventos de cambios del nivel del mar en el Cenomaniense (por ejemplo SB Ce III, mfz dentro de la Zona de rhotomagense, SB Ce IV, HST en la Zona de pentagonum). Considerando la megasecuencia del Cenomaniense como un "ciclo de segundo orden", una tendencia transgresiva general ocurrió a lo largo del Cenomaniense, el máxirno "onlap" costero fue alcanzado durante la máxima inundatión de la DS Ce VI (Zona de pentagonum). Desde el punto de vista paleobiogeográfico, la NCB muestra fuertes afinidades tethyales en el Albiense superior y el Cenomaniense. El "Evento de Turrilites scheuchzerianus/Neohibolites ultimus" al comienzo del Cenomaniense medio permite una correlation con el "Evento de Actinocamax primus" del Cenomaniense de la Provincia templada norteuropea.
    Description: thesis
    Description: DFG, SUB Göttingen
    Keywords: ddc:560 ; Sedimentationsbecken ; Kreide ; Event-Stratigraphie ; Biostratigraphie ; Sequenzstratigraphie ; Albium ; Cenomanium ; Fazies ; Stratigraphie ; Geologische Korrelation ; Paläobiologie ; Paläontologie
    Language: German
    Type: doc-type:book
    Format: 278
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