Nannofossils and superplumes: The Early Aptian “nannoconid crisis”

Paleoceanography - Tập 9 Số 3 - Trang 483-501 - 1994
Elisabetta Erba

Tóm tắt

A group of calcareous nannoplankton named nannoconids experienced a crisis in the early Aptian and recovered only later in the late Aptian after a period of virtual absence. Although no extinctions occurred, the widespread nature of the “nannoconid crisis” suggests a global causal factor. This crisis is recorded within the Chiastozygus litterarius nannofossil and Globigerinelloides blowi planktonic foraminiferal zones, postdates magnetic chronozone M0 by approximately 300 kyr, and precedes the oceanic anoxic subevent 1a and associated δ13C anomaly by some 40–100 kyr. Selective dissolution and anoxia cannot explain the crisis, because nannoconids are dissolution‐resistant forms and their crisis clearly precedes the deposition of anoxic sediments. At least 1 m.y. prior to the “nannoconid crisis,” the onset of a nannoplankton speciation event may be the response of nannofloras to a major rise in relative sea level. The “nannoconid crisis” seems to be synchronous with the early Aptian volcanic eruptions in the Pacific Ocean. Hence calcareous nannoplankton were severely affected by the “superplume” volcanic episode. The coccolithophorid bloom/nannoconid crisis was possibly induced by the excessive CO2 levels in the atmosphere and/or caused by changes in nutrient content of oceanic surface waters. Fertility was enhanced by rapid turnover of nutrients due to the abnormal volcanic activity and accelerated transfer of nutrients from the continents into the oceans under warm and humid conditions of the mid‐Cretaceous greenhouse climate. The “nannoconid crisis” may represent a competition between phytoplankton groups for nutrients or, more likely, competition between different calcareous nannoplankton. The biologic affinity and mode of life of Nannoconus are unknown, because there is no modern analog of this genus. However, comparison of Lower Cretaceous nannofossil assemblages with modern nannoplankton cummunities suggests that nannoconids, like extant Florisphaera profunda, possibly inhabited the lower photic zone. Concentrations of nutrients in the upper euphotic zone may have triggered blooms of coccolithophorids and nannoconid depletion. This model implies that the “nannoconid crisis” is the result of an abrupt, major change in the structure of surface waters caused directly or indirectly by the “superplume.” The adjustments of the biosphere to the new paleoceanographic and climatic conditions required some 40–100 kyr before changing into abnormally high primary productivity and deposition of organic carbon‐rich sediments with dinoflagellates outcompeting nannoplankton.

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Tài liệu tham khảo

Applegate J. L., 1988, Cretaceous calcareous nannofossil biostratigraphy of sediments recovered from the Galicia Margin, ODP leg 103, Proc. Ocean Drill. Program Sci. Results, 103, 293

10.1029/GM032p0504

10.1007/978-94-015-6861-6_6

Arthur M. A., 1991, Superplume, supergreenhouse?, Eos Trans. AGU, 72, 301

10.1016/0377-8398(87)90003-X

10.1016/0377-8398(89)90035-2

10.1029/GM077p0005

10.2307/3515055

Bréhéret J. G., 1983, Sur des niveaux de black shales dans l'Albien inferieur et moyen du domaine vocontien (sud‐est de la France): etude de nannofacies et signification des paleoenvironnements, Bull. Mus. Hist. Nat. Paris, 5, 113

10.2307/1484409

Busson G., 1991, Les nannoconidés, indicateurs environnementaux des océan et mers épicontinentales du Jurassique terminal et du Crétacé inférieur, Oceanol. Acta, 14, 333

10.1029/91GL01237

Caron M., 1985, Plankton StratigraphyCambridge Earth Sci. Ser., 17

10.1006/cres.1994.1027

Cepek P., 1981, Mesozoic calcareous nannoplankton stratigraphy of the central North Pacific (Mid‐Pacific Mountains and Hess Rise), Deep Sea Drilling Project leg 62, Initial Rep. Deep Sea Drill. Proj., 62, 397

10.1016/0012-821X(92)90020-V

10.1016/0012-821X(79)90021-9

10.1016/0012-821X(87)90032-X

10.1016/0012-821X(93)90165-6

Coccioni R. R.Franchi O.Nesci C. F.Wezel F.Battistini P.Pallecchi J.Wiedmann Stratigraphy and mineralogy of the Selli level (early Aptian) at the base of the Marne a Fucoidi in the UmbrianMarchean Apennines (Italy) Cretaceous of the Western Tethys 563–5843rd International Symposium Tubingen 1987SchweizerbartStuttgart Germany 1989.

10.1016/0195-6671(92)90015-I

Colom G., 1950, Sobre las extencion de las calizas con Nannoconus an el Apenino Central (Italia), Inst. Min. Espana Libra Jubilar (1849–1949), 1, 101

Crux J. A., 1982, A Stratigraphical Index of Calcareous NannofossilsBrit. Micropaleontol. Soc. Ser., 81

Deres F., 1980, Biostratigraphie des Nannoconidés, Bull. Cent. Rech. Explor. Prod. Elf Aquitaine, 4, 1

Dufour T., 1970, Nannofossiles et constitution pélrographique de la Majolica, des Schistes à Fucoides et de la Scaglia Rossa d'Ombrie (Italie), Rev. Micropaleontol., 13, 107

Erba E. I Nannofossili calcarei nell'Aptiano‐Albiano (Cretacico inferiore): biostratigrafia paleoceanografia e diagenesi degli Scisti a Fucoidi del Pozzo Piobbico (Marche) Ph.D. thesis 313 pp. Univ. Milano Milano Italy 1986.

Erba E., 1988, Aptian‐Albian calcareous nannofossil biostratigraphy of the Scisti a Fucoidi cored at Piobbico (central Italy), Riv. fiai. Paleontol. Stratigr., 94, 249

Erba E., 1989, Upper Jurassic to Lower Cretaceous Nannoconus distribution in some sections from northern and central Italy, Mem. Sci. Geol., 41, 255

Erba E., 1992, Calcareous nannofossil distribution in pelagic rhythmic sediments (Aptian‐Albian Piobbico core, central Italy), Riv. liai. Paleontol. Stratigr., 97, 455

Erba E., 1992, Middle Cretaceous calcareous nannofossils from the western tropical Pacific (ODP leg 129): Evidence for paleoequatorial crossings, Proc. Ocean Drill. Program Sci. Results, 129, 189

Erba E. Calcareous nannofossils premonish Mesozoic anoxic events paper presented at EUG VIl European Union of Geosciences Meeting Strasbourg France April 4–8 1993a.

Erba E. Biotic variations as paleontological chronometers paper presented at Orbital Forcing Timescales Symposium Geological Society of London London England March 25–27 1993b.

Erba E., 1991, Nannofossils and superplumes, Eos Trans. AGU, 72, 301

Erba E. J.Mutterlose The floral and faunal turnover in the early Aptian (Early Cretaceous)paper presented at Final International Conference on Global Bio‐EventsGöttingen GermanyFeb. 16–19 1992.

Erba E., 1987, Biostratigrafia a Nannofossili calcarei, Calpionellidi e Foraminiferi planctonici dclla Maiolica (Titoniano superiore‐Aptiano) nelle Prealpi Bresciane (Italia Settentrionale), Riv. ltal. Paleontol. Stratigr, 93, 3

Farinacci A., 1964, Microrganismi dei calcari "Maiolica" e "Scaglia" osservati al microscopio elettronico (Nannoconidi e Coccolitophoridi), Boll. Soc. Paleontol. ltal., 3, 172

Haq B. U., 1988, Mesozoic and Cenozoic chronostratigraphy and cycles of sea‐level changes, SEPM Spec. Publ., 42, 71

Harland W. B., 1990, A Geologic Time Scale

Honjo S., 1974, Community structure of coccolithophores in the photic layer of the mid‐Pacific, Micropaleontology, 14, 67

10.1144/gsjgs.137.2.0171

Kroenke L. W., 1991, Site 807, Proc. Ocean Drill. Program Initial Rep., 130, 369

10.1130/0091-7613(1991)019<0547:LPOEEF>2.3.CO;2

10.1130/0091-7613(1991)019<0963:GCOS>2.3.CO;2

Larson R. L. A. G.Fischer E.Erba I.Premoli Silva APTICORE‐ALBICORE: A Workshop Report on Global Events and Rhythms of the Mid‐Cretaceous 56 JOI Washington D. C. 1993.

10.1111/j.1365-3121.1992.tb00826.x

10.1144/pygs.45.4.235

10.1016/0012-821X(84)90096-7

Mahoney J. J., 1993, Geochemistry and geochronology of leg 130 basement lavas: Nature and origin of the Ontong Java Plateau, Proc. Ocean Drill. Program Sci. Results, 130, 3

10.1029/GM077p0233

Menard H. W., 1964, Marine Geology of the Pacific

10.1126/science.249.4970.766

10.1029/PA005i006p00997

Moullade M., 1988, Ocean Drilling Program leg 103 biostratigraphic synthesis, Proc. Ocean Drill. Program Sci. Results, 103, 685

Mutterlose J., 1987, Calcareous nannofossils and belemnites as warm water indicators from the NW‐German middle Aptian, Geol. Jahrb., 96, 293

Mutterlose J., 1989, Nannofossils and Their Applications, 122

Mutterlose J., 1991, Das Verterilungs‐ und Migrations‐Muster des kalkigen Nannoplanktons in der Unterkreide (Valangin‐Apt) NWDeutschland, Palaeontographica Abt. B, 221, 27

10.1016/0195-6671(92)90034-N

10.1016/0031-0182(92)90123-M

Noël D., 1978, Nannofacies of Cape Basin and Walvis Ridge sediments, Lower Cretaceous to Pliocene (leg 40), I nit. Rep. Deep Sea Drill. Proj., 40, 487

10.1016/0195-6671(91)90002-T

10.1016/0011-7471(73)90059-4

Perch‐Nielsen K. Calcareous nannofossils from the Cretaceous between the North Sea and the Mediterranean Aspekte der Kreide Europas A6J.Wiedmann 223–272 International Union of Geological Sciences Stuttgart Germany 1979.

10.1016/S0016-6995(89)80059-2

Raymont J. E. G., 1980, Plankton and Productivity in the Oceans, 1, Phytoplankton

10.1038/361249a0

Roth P. H., 1981, Mid‐Cretaceous calcareous nannoplankton from the cetral Pacific: implications for paleoceanography, Init. Rep. Deep Sea Drill. Proj., 62, 471

10.1144/GSL.SP.1986.021.01.22

10.1029/PA002i006p00601

10.1016/0031-0182(89)90022-9

Roth P. H., 1981, Middle Cretaceous calcareous nannoplankton biogeography and oceanography of the Atlantic Ocean, SEPM Spec. Publ, 32, 517

10.1016/0377-8398(86)90031-9

Schlanger S. O., 1976, Cretaceous oceanic anoxic sediments: Causes and consequences, Geol. Mijnbouw, 55, 179

Schlanger S. Ο., 1981, Volcanism and vertical tectonics in the Pacific Basin related to global Cretaceous transgression, Earth Planet. Sci. Lett., 92, 234

10.1130/0091-7613(1989)017<0909:AAITPB>2.3.CO;2

10.2113/gsjfr.19.1.1

Sliter W. V., 1993, Cretaceous planktonic foraminifers and depositional environments from the Ontong Java Plateau with emphasis on sites 803 and 807, Proc. Ocean Drill. Program Sci. Results, 130, 63

Tarduno J. A., M‐sequence reversals recorded in DSDP sediment cores from the western Mid‐Pacific Mountains and Magellan Rise, Geol. Soc. Am. Bull., 101, 1306, 10.1130/0016-7606(1989)101<1306:MSRRID>2.3.CO;2

10.1126/science.254.5030.399

Taylor R., 1982, A Stratigraphical Index of Calcareous NannofossilsBrit. Micropaleontol. Soc. Ser., 40

Thiede J., 1981, The geologic history of the Mid‐Pacific Mountains in the central North Pacific Ocean: A synthesis of deep‐sea drilling studies, I nit. Rep. Deep Sea Drill. Proj., 62, 1073

Thierstein H. R., 1971, Tentative Lower Cretaceous calcareous nannoplankton zonation, Eclogae Geol. Helv., 64, 459

Thierstein H. R., Lower Cretaceous calcareous nannoplankton biostratigraphy, Abhandlungen Geol. Bund., A, 29, 1

10.1016/0377-8398(76)90015-3

10.1029/ME003p0249

Tomaghi M. E., 1989, Lithostratigraphy and planktonic foraminiferal biostratigraphy of the Aptian‐Albian "Scisti a Fucoidi" in the Piobbico core, Marche, Italy: background for cyclostratigraphy, Riv. liai. Paleontol. Stratigr., 95, 223

10.1130/0016-7606(1989)101<1225:VUOANR>2.3.CO;2

10.1016/0031-0182(89)90020-5

10.1007/BF01901664

Weissert H., Siliciclasties in the Early Cretaceous Tethys and North Atlantic Oceans: Documents of periodic greenhouse climate conditions, Mem. Soc. Geol. Ital., 44, 59

Weissert H., 1991, Controversies in Modern Geology, 173

10.1029/GM032p0531