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Peritidal carbonate cycles induced by carbonate productivity variations:A conceptual model for an isolated Early Triassic greenhouse platform in South China

Peritidal carbonate cycles induced by carbonate productivity variations:A conceptual model for an isolated Early Triassic greenhouse platform in South China
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摘要 Eustasy has commonly been invoked to explain peritidal carbonate cyclicity,but is difficult to explain cycles formed in a greenhouse climate when eustasy is minimal.We propose that peritidal cycles on an Early Triassic isolated carbonate platform in Guizhou,South China,were formed by hierarchical carbonate productivity variations.Most of the 149 shallowing-upward cycles are typically terminated by flooding over intertidal facies and contain rare supratidal facies and no prolonged subaerial exposure.Low-diversity benthos in the platform interior during the post-end-Permian biotic recovery were sensitive to environmental perturbations,which caused variations in benthic sediment productivity in the subtidal carbonate factory.The perturbations may be driven by changes in salinity and degree of eutrophication,or repeated platform mini-drowning by anoxic and/or CO2-charged deep water upwelled onto the banktop.They were modulated by Milankovitch orbitally-driven climatic and oceanographic factors as suggested by the hierarchical stacking pattern and spectral signals of these cycles.A one-dimensional conceptual model shows that hierarchical productivity variations alone may generate hierarchical peritidal carbonate cycles under conditions of constant subsidence and no sea-level fluctuation. Eustasy has commonly been invoked to explain peritidal carbonate cyclicity,but is difficult to explain cycles formed in a greenhouse climate when eustasy is minimal.We propose that peritidal cycles on an Early Triassic isolated carbonate platform in Guizhou,South China,were formed by hierarchical carbonate productivity variations.Most of the 149 shallowing-upward cycles are typically terminated by flooding over intertidal facies and contain rare supratidal facies and no prolonged subaerial exposure.Low-diversity benthos in the platform interior during the post-end-Permian biotic recovery were sensitive to environmental perturbations,which caused variations in benthic sediment productivity in the subtidal carbonate factory.The perturbations may be driven by changes in salinity and degree of eutrophication,or repeated platform mini-drowning by anoxic and/or CO2-charged deep water upwelled onto the banktop.They were modulated by Milankovitch orbitally-driven climatic and oceanographic factors as suggested by the hierarchical stacking pattern and spectral signals of these cycles.A one-dimensional conceptual model shows that hierarchical productivity variations alone may generate hierarchical peritidal carbonate cycles under conditions of constant subsidence and no sea-level fluctuation.
出处 《Journal of Palaeogeography》 SCIE 2014年第2期115-126,共12页 古地理学报(英文版)
关键词 CARBONATE peritidal cycle PRODUCTIVITY climate TRIASSIC South China carbonate,peritidal,cycle,productivity,climate,Triassic,South China
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参考文献11

  • 1Heiko P?like,Nicholas J. Shackleton,Ursula R?hl.Astronomical forcing in Late Eocene marine sediments[J]. Earth and Planetary Science Letters . 2001 (3)
  • 2Daniel J Lehrmann,Yang Wan,Jiayong Wei,YouYi Yu,Jiafei Xiao.Lower Triassic peritidal cyclic limestone: an example of anachronistic carbonate facies from the Great Bank of Guizhou, Nanpanjiang Basin, Guizhou province, South China[J]. Palaeogeography, Palaeoclimatology, Palaeoecology . 2001 (3)
  • 3Wan Yang,Daniel J Lehrmann.Milankovitch climatic signals in Lower Triassic (Olenekian) peritidal carbonate successions, Nanpanjiang Basin, South China[J]. Palaeogeography, Palaeoclimatology, Palaeoecology . 2003 (3)
  • 4MichaelSchulz,ChristianSch?fer‐Neth.Translating Milankovitch climate forcing into eustatic fluctuations via thermal deep water expansion: a conceptual link[J]Terra Nova (鈥?),2006(5鈥?).
  • 5H.W Kozur.Some aspects of the Permian–Triassic boundary (PTB) and of the possible causes for the biotic crisis around this boundary[J]. Palaeogeography, Palaeoclimatology, Palaeoecology . 1998 (4)
  • 6C.R. Scotese,A.J. Boucot,W.S. McKerrow.Gondwanan palaeogeography and pal?oclimatology[J]. Journal of African Earth Sciences . 1999 (1)
  • 7E Heydari,J Hassandzadeh,W.J Wade.Geochemistry of central Tethyan Upper Permian and Lower Triassic strata, Abadeh region, Iran[J]. Sedimentary Geology . 2000 (1)
  • 8Dennis V. Kent,Paul E. Olsen.Magnetic polarity stratigraphy and paleolatitude of the Triassic–Jurassic Blomidon Formation in the Fundy basin (Canada): implications for early Mesozoic tropical climate gradients[J]. Earth and Planetary Science Letters . 2000 (2)
  • 9A. Hallam.Why was there a delayed radiation after the end-Palaeozoic extinctions?[J]. Historical Biology . 1991 (2-4)
  • 10Z.Q. Chen,Jinnan Tong,Kunio Kaiho,Hodaka Kawahata.Onset of biotic and environmental recovery from the end-Permian mass extinction within 1–2 million years: A case study of the Lower Triassic of the Meishan section, South China[J]. Palaeogeography, Palaeoclimatology, Palaeoecology . 2007 (1)

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