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Response of Reactive Phosphorus Burial to the Sedimentary Transition from Cretaceous Black Shales to Oceanic Red Beds in Southern Tibet 被引量:4

Response of Reactive Phosphorus Burial to the Sedimentary Transition from Cretaceous Black Shales to Oceanic Red Beds in Southern Tibet
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摘要 The mechanism of sedimentary transition from the Cretaceous black shales to the oceanic red beds is a new and important direction of Cretaceous research. Chemical sequential extraction is applied to study the burial records of reactive phosphorus in the black shale of the Gyabula Formation and oceanic red beds of the Chuangde Formation, Southern Tibet. Results indicate that the principal reactive phosphorus species is the authigenic and carbonate-associated phosphorus (CAP) in the Gyabula Formation and iron oxides-associated phosphorus (FeP) in the Chuangde Formation which accounts for more than half of their own total phosphorus content. While the authigenic and carbonate-associated phosphorus (CAP) is almost equal in the two Formations; the iron oxidesassociated phosphorus is about 1.6 times higher in the Chuangde Formation than that in the Gyabula Formation resulting in a higher content of the total phosphorus in the Chuangde Formation. According to the observations on the marine phosphorus cyde in Modern Ocean, it is found that preferential burial and regeneration of reactive phosphorus corresponds to highly oxic and reducing conditions, respectively, leading to the different distribution of phosphorus in these two distinct type of marine sediments. It is the redox-sensitive behavior of phosphorus cycle to the different redox conditions in the ocean and the controlling effects of phosphorus to the marine production that stimulate the local sedimentary transition from the Cretaceous black shale to the oceanic red beds. The mechanism of sedimentary transition from the Cretaceous black shales to the oceanic red beds is a new and important direction of Cretaceous research. Chemical sequential extraction is applied to study the burial records of reactive phosphorus in the black shale of the Gyabula Formation and oceanic red beds of the Chuangde Formation, Southern Tibet. Results indicate that the principal reactive phosphorus species is the authigenic and carbonate-associated phosphorus (CAP) in the Gyabula Formation and iron oxides-associated phosphorus (FeP) in the Chuangde Formation which accounts for more than half of their own total phosphorus content. While the authigenic and carbonate-associated phosphorus (CAP) is almost equal in the two Formations; the iron oxidesassociated phosphorus is about 1.6 times higher in the Chuangde Formation than that in the Gyabula Formation resulting in a higher content of the total phosphorus in the Chuangde Formation. According to the observations on the marine phosphorus cyde in Modern Ocean, it is found that preferential burial and regeneration of reactive phosphorus corresponds to highly oxic and reducing conditions, respectively, leading to the different distribution of phosphorus in these two distinct type of marine sediments. It is the redox-sensitive behavior of phosphorus cycle to the different redox conditions in the ocean and the controlling effects of phosphorus to the marine production that stimulate the local sedimentary transition from the Cretaceous black shale to the oceanic red beds.
出处 《Acta Geologica Sinica(English Edition)》 SCIE CAS CSCD 2007年第6期1012-1018,共7页 地质学报(英文版)
基金 supported by the Natural Science Foundation of China for Youth(40403003) National Key Basic Research Program(2006CB701406) Key Project of Natural Science Foundation of China(40332020),and is a contribution to IGCP 463/555.
关键词 Reactive phosphorus black shale oceanic red beds CRETACEOUS Southern Tibet China Reactive phosphorus, black shale, oceanic red beds, Cretaceous, Southern Tibet, China
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  • 1H. L. Golterman.The role of the ironhydroxide-phosphate-sulphide system in the phosphate exchange between sediments and overlying water[J].Hydrobiologia.1995(1)
  • 2René G?chter,Joseph S. Meyer.The role of microorganisms in mobilization and fixation of phosphorus in sediments[J].Hydrobiologia (-).1993(1-3)
  • 3N. F. Caraco,J. J. Cole,G. E. Likens.Sulfate control of phosphorus availability in lakes[J].Hydrobiologia (-).1993(1-3)
  • 4Foellmi,K.B.160 m.y.record of marine sedimentary phosphorus burial; coupling of climate and continental weathering under greenhouse and icehouse conditions[].Geology.1995
  • 5Foellmi,K.B.The phosphorus cycle,phosphogenesis,and marine phosphate-rich deposits[].Earth Science Reviews.1996
  • 6Froelich,P.N,Bender,M.L,and Luedtke,N.L.The marine phosphorus cycle[].American Journal of Science.1982
  • 7Garrels R.M,and Mackenzie F.T.Evolution of sedimentary rocks[]..1977
  • 8Gromet,L.P.The"North American shale composite":Its compilation,major and trace element characteristics[].Geochimica et Cosmochima Acta.1984
  • 9Gunnars,A.S,Blomqvist,P,Johansson,P,and Anderson,C.Formation of Fe(Ⅲ)oxyhydroxide colloids in freshwater and brackish seawater,with incorporation of phosphate and calcium[].Geochima et Cosmochima Acta.2002
  • 10Wang,C.S,Hu,X.M,and Jansa,L.Upper Cretaceous oceanic red beds in southern Tibet:a major change from anoxic to oxic condition[].Cretaceous Research.2005

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