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- W2337474080 abstract "Carbonate–siliciclastic high-frequency sequences are formed by reciprocal sedimentation. In siliciclastic-dominated successions, the carbonate-rich interval is typically associated with transgressive conditions and relatively low terrigenous influx, particularly in distal parts of the marine basin. However, key questions for each individual case are: What sort of depositional system developed during transgressions, and what controls sediment-supply fluctuations? This paper integrates outcrop and subsurface data to present a high-resolution sequence-stratigraphic study of small-scale (2–18 m), carbonate–siliciclastic cycles deposited during the Valanginian in a proximal–distal transect of the Neuquen Basin (western Argentina) and discusses those key issues.Carbonate hemicycles in this study are composed of cross-bedded oolitic–skeletal grainstones and packstones to massive skeletal floatstones, which accumulated in carbonate ramps with high biogenic production in their distal sector (bivalves, serpulids, echinoids), and significant contribution of non-biogenic (ooids) material in inner-ramp settings. Siliciclastic material is present only at the base of the hemicycles, but rapidly diminishes upwards. These carbonate hemicycles have retrogradational staking patterns in proximal sectors and less obvious trends in distal areas. The siliciclastic hemicycles comprise shallowing-upward successions that include mudstones, bioturbated muddy sandstones, sandstones with HCS and SCS, and bioturbated sandstones. These facies were collectively deposited in a storm- and wave-influenced offshore-shoreface depositional system during normal regressions. These shoreface systems were likely fed by littoral drift from riverine inputs located tens of kilometers to the south.The duration of the investigated small-scale, transgressive–regressive cycles can be estimated in 50 to 150 kyr, and they are bounded by marine transgressive surfaces placed at the bases of carbonate hemicycles. The bounding discontinuities together with the sequence architecture do not suggest periods of sea-level falls between cycles, nor high-amplitude relative sea-level changes during a cycle formation. Additionally, the low proportion of mixed sediments suggests rapid changes in the rate between terrigenous supply and carbonate productivity. The resulting sequence architecture cannot be reasonably explained by autocyclic controls or eustatic changes alone. It is argued here that high-frequency changes in sediment supply, driven by orbitally induced climate fluctuations, could be a better explanation for these sequences, particularly in the context of a long-term relative sea-level rise. In this scenario, periods of low siliciclastic influx during extreme arid conditions would develop a negative balance with accommodation and prompt carbonate systems and transgression. On the other hand, during more humid conditions relatively high sediment flux would temporarily overcome long-term accommodation, producing the regressive siliciclastic hemicycles. As this scenario does not require high-frequency sea-level falls, it would satisfactorily explain the observed sequence architecture.The distal Mulichinco carbonate hemicycles would be hard to distinguish from transgressive, fossiliferous-rich deposits that characterize transgressive–regressive cycles in clastic systems. In the Mulichinco case, however, these carbonate hemicycles are recording the onset of carbonate ramps, not the trapping of siliciclastic sediments in transgressive coasts (e.g., filling estuaries). This alternative scenario, ultimately controlled by reciprocal sedimentation, could be common in epicontinental basins developed under arid to semiarid conditions, and its identification could provide additional templates for basin-scale correlations and hydrocarbon exploration within carbonate–siliciclastic small-scale cycles." @default.
- W2337474080 created "2016-06-24" @default.
- W2337474080 creator A5040159626 @default.
- W2337474080 creator A5048954768 @default.
- W2337474080 creator A5059678431 @default.
- W2337474080 creator A5086757164 @default.
- W2337474080 date "2016-04-01" @default.
- W2337474080 modified "2023-10-11" @default.
- W2337474080 title "Climatically Versus Eustatically Controlled, Sediment-Supply-Driven Cycles: Carbonate–Siliciclastic, High-Frequency Sequences In the Valanginian of the Neuquén Basin (Argentina)" @default.
- W2337474080 cites W101633874 @default.
- W2337474080 cites W14771368 @default.
- W2337474080 cites W1491391288 @default.
- W2337474080 cites W1505833178 @default.
- W2337474080 cites W1506856156 @default.
- W2337474080 cites W1519704578 @default.
- W2337474080 cites W1533729466 @default.
- W2337474080 cites W1540714975 @default.
- W2337474080 cites W1543962388 @default.
- W2337474080 cites W1550706278 @default.
- W2337474080 cites W1558962369 @default.
- W2337474080 cites W1560774127 @default.
- W2337474080 cites W1585967334 @default.
- W2337474080 cites W1598407511 @default.
- W2337474080 cites W1894547928 @default.
- W2337474080 cites W1920329065 @default.
- W2337474080 cites W1941835490 @default.
- W2337474080 cites W1943336573 @default.
- W2337474080 cites W1945322499 @default.
- W2337474080 cites W1965846255 @default.
- W2337474080 cites W1967281412 @default.
- W2337474080 cites W1972628868 @default.
- W2337474080 cites W1972711431 @default.
- W2337474080 cites W1989164119 @default.
- W2337474080 cites W1989909586 @default.
- W2337474080 cites W1995253200 @default.
- W2337474080 cites W2000405759 @default.
- W2337474080 cites W2002011430 @default.
- W2337474080 cites W2004572480 @default.
- W2337474080 cites W2005099086 @default.
- W2337474080 cites W2005634127 @default.
- W2337474080 cites W2007503416 @default.
- W2337474080 cites W2010049902 @default.
- W2337474080 cites W2017476515 @default.
- W2337474080 cites W2018779598 @default.
- W2337474080 cites W2020716836 @default.
- W2337474080 cites W2035087866 @default.
- W2337474080 cites W2043396789 @default.
- W2337474080 cites W2047105141 @default.
- W2337474080 cites W2047461385 @default.
- W2337474080 cites W2058366574 @default.
- W2337474080 cites W2059464969 @default.
- W2337474080 cites W2067091950 @default.
- W2337474080 cites W2069840284 @default.
- W2337474080 cites W2074960061 @default.
- W2337474080 cites W2079943576 @default.
- W2337474080 cites W2080547192 @default.
- W2337474080 cites W2082377849 @default.
- W2337474080 cites W2087643544 @default.
- W2337474080 cites W2094701466 @default.
- W2337474080 cites W2096968425 @default.
- W2337474080 cites W2097820932 @default.
- W2337474080 cites W2103558226 @default.
- W2337474080 cites W2104754992 @default.
- W2337474080 cites W2106456046 @default.
- W2337474080 cites W2116076462 @default.
- W2337474080 cites W2116610327 @default.
- W2337474080 cites W2122748668 @default.
- W2337474080 cites W2126849800 @default.
- W2337474080 cites W2129531365 @default.
- W2337474080 cites W2132462699 @default.
- W2337474080 cites W2136201253 @default.
- W2337474080 cites W2136619267 @default.
- W2337474080 cites W2138692013 @default.
- W2337474080 cites W2141713510 @default.
- W2337474080 cites W2144414810 @default.
- W2337474080 cites W2150374942 @default.
- W2337474080 cites W2150548846 @default.
- W2337474080 cites W2156022682 @default.
- W2337474080 cites W2156939454 @default.
- W2337474080 cites W2159416131 @default.
- W2337474080 cites W2159788863 @default.
- W2337474080 cites W2164495646 @default.
- W2337474080 cites W2169285214 @default.
- W2337474080 cites W2174257205 @default.
- W2337474080 cites W2203230380 @default.
- W2337474080 cites W2225984171 @default.
- W2337474080 cites W2261417457 @default.
- W2337474080 cites W2265795573 @default.
- W2337474080 cites W2297192698 @default.
- W2337474080 cites W2330463646 @default.
- W2337474080 cites W2460541703 @default.
- W2337474080 cites W2506554653 @default.
- W2337474080 cites W2555002465 @default.
- W2337474080 cites W2751937789 @default.
- W2337474080 cites W568135640 @default.
- W2337474080 cites W590001249 @default.
- W2337474080 doi "https://doi.org/10.2110/jsr.2016.21" @default.
- W2337474080 hasPublicationYear "2016" @default.