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Abstract:

The Andean Cordillera has evolved since the Late Cretaceous in the context of subduction of oceanic lithosphere beneath continental lithosphere, making the kinematics between South America and its adjacent oceanic plates in the Pacific basin valuable to analyze the development of the Andean orogen. The latest Cretaceous-Cenozoic convergence history in western South America may be divided into three stages. The youngest Stage 1 (25-0. Ma) is characterized by ENE directed convergence of the Nazca plate toward most of South America, and by ~. E-W subduction of the Antarctic plate beneath southern Patagonia. The Nazca-South America convergence rate in Stage 1 shows a continuous decrease from the highest values in the Cenozoic (~. 15. cm/yr) to the present day values from GPS measurements (~. 7. cm/yr). Stage 2 (47-28. Ma) is characterized by NE directed subduction of Farallon with the convergence rate remaining almost constant during the entire interval. In those times obliquity was dextral in Chile, sinistral in southern Peru, while almost head-on convergence occurred in central and northern Peru. During latest Cretaceous to Early Eocene times (Stage 3) the Farallon plate was subducted beneath Perú and the Phoenix plate was subducted farther south, where a triple junction migrated southward along the Chilean margin. The subduction of the Farallon plate was rather slow with variable direction imposed by the position of the triple junction, whereas subduction of the Phoenix plate was rapid (> 10. cm/yr) and ESE directed. We present a working hypothesis suggesting no major changes in the age of subducted lithosphere in the Chile trench from Middle Eocene to Late Oligocene, followed by subduction of progressively older oceanic lithosphere in the early Neogene and progressively younger lithosphere during the late Neogene and the Quaternary. In addition, it is shown that South American motion as predicted by available hotspot models has insufficient resolution to be applied to the analysis of Cenozoic Andean deformation. © 2012 Elsevier B.V.

Registro:

Documento: Artículo
Título:Late Cretaceous to recent plate motions in western South America revisited
Autor:Somoza, R.; Ghidella, M.E.
Filiación:IGEBA-CONICET, Departamento de Ciencias Geológicas, FCEyN, Universidad de Buenos Aires, Buenos Aires, Argentina
Instituto Antártico Argentino, Buenos Aires, Argentina
Palabras clave:Andes; Cenozoic; Convergence; Late Cretaceous; Andes; Cenozoic; Continental lithosphere; Convergence; Convergence rates; Hot-spot model; Late cretaceous; Late Neogene; Late Oligocene; Nazca plate; Neo genes; Oceanic lithosphere; Oceanic plate; Patagonia; Plate motions; South America; Triple junction; Lithology; Tectonics; Andean orogeny; Cenozoic; continental lithosphere; Cretaceous; deformation; hot spot; Nazca plate; oceanic lithosphere; plate motion; subduction; trench; triple junction; Andes; Chile; Pacific Ocean; Peru; South America
Año:2012
Volumen:331-332
Página de inicio:152
Página de fin:163
DOI: http://dx.doi.org/10.1016/j.epsl.2012.03.003
Título revista:Earth and Planetary Science Letters
Título revista abreviado:Earth Plan. Sci. Lett.
ISSN:0012821X
Registro:https://bibliotecadigital.exactas.uba.ar/collection/paper/document/paper_0012821X_v331-332_n_p152_Somoza

Referencias:

  • Acton, G., Gordon, R.G., Paleomagnetic tests of the pacific plate reconstructions and implications for motion between hotspots (1994) Science, 263, pp. 1246-1254
  • Aleman, A., Ramos, V.A., Northern Andes (2000) Tectonic Evolution of South America. 31st Int. Geol. Cong., Rio de Janeiro, Brazil, pp. 453-480. , U. Cordani (Ed.)
  • Anderson, D.L., The thermal state of the upper mantle: no role for mantle plumes (2000) Geophys. Res. Lett., 27, pp. 3623-3626
  • Babeyko, A.Y., Sobolev, S.V., High resolution numerical modeling of stress distribution in visco-elastic-plastic subducting slabs (2008) Lithos, 103, pp. 205-216
  • Barckhausen, U., Ranero, C.R., Cande, S.C., Engels, M., Weinrebe, W., Birth of an intraoceanic spreading center (2008) Geology, 36, pp. 767-770
  • Boschi, L., Becker, T.W., Steinberger, B., Mantle plumes: dynamic models and seismic images (2007) Geochem. Geophys. Geosyst., 6 (4), pp. Q100006
  • Boschi, L., Becker, T.W., Steinberger, B., On the statistical significance of correlations between synthetic mantle plumes and tomographic models (2008) Phys. Earth Planet. Inter., 167, pp. 230-238
  • Cande, S., Haxby, W., Eocene propagating rifts in the southwest Pacific and their conjugate features in the Nazca plate (1991) J. Geophys. Res., 96, pp. 19609-19622
  • Cande, S., Kent, D., Revised calibration of the geomagnetic timescale for the Late Cretaceous and Cenozoic (1995) J. Geophys. Res., 100, pp. 6093-6095
  • Cande, S., Leslie, R., Late Cenozoic tectonics of the southern Chile trench (1986) J. Geophys. Res., 91, pp. 471-496
  • Cande, S., Herron, E., Hall, B., The early Cenozoic tectonic history of the southeast Pacific (1982) Earth Planet. Sci. Lett., 57, pp. 63-74
  • Cande, S., LaBrecque, J., Haxby, W., Plate kinematics of the South Atlantic: chron C34 to present (1988) J. Geophys. Res., 93, pp. 13479-13492
  • Cande, S.C., Raymond, C., Stock, J., Haxby, W., Geophysics of the pitman fracture zone and Pacific-Antarctica plate motions during the Cenozoic (1995) Science, 270, pp. 947-953
  • Cande, S.C., Stock, J.M., Dietmar Müller, R., Ishihara, T., Cenozoic motion between East and West Antarctica (2000) Nature, 404, pp. 145-150
  • Cande, S.C., Patriat, P., Dyment, J., Motion between the Indian, Antarctic and African plates in the Early Cenozoic (2010) Geophys. J. Int., 183, pp. 127-149
  • Chang, T., Stock, J., Molnar, P., The rotation group in plate tectonics and the representation of uncertainties of plate reconstructions (1990) Geophys. J. Int., 102, pp. 649-661
  • Chase, C.G., Plate kinematics: the Americas, East Africa, and the rest of the world (1978) Earth Planet. Sci. Lett., 37, pp. 355-368
  • Corrêa Rosa, J.W., Molnar, P., Uncertainties in reconstructions of the Pacific, Farallon, Vancouver, and Kula plates and constraints on the rigidity of the Pacific and Farallon (Vancouver) plates between 72 and 35Ma (1988) J. Geophys. Res., 93, pp. 2997-3008
  • Croon, M.B., Cande, S.C., Stock, J.M., Revised Pacific-Antarctic plate motions and geophysics of the Menard fracture zone (2008) Geochem. Geophys. Geosyst., 9
  • Dalziel, I.W.D., Back-arc extension in the southern Andes: a review and critical reappraisal (1981) Phil. Trans. R. Soc. Lond. A, 300, pp. 319-335
  • DeMets, C., Gordon, R.G., Argus, A., Stein, S., Effect of recent revisions to the geomagnetic reversal timescale on estimates of current plate motions (1994) Geophys. Res. Lett., 21, pp. 2191-2194
  • DeMets, C., Gordon, R.G., Argus, D.F., Geologically current plate motions (2010) Geophys. J. Int., 181, pp. 1-80
  • DePaolo, D.J., Manga, M., Deep origin of hotspots-the mantle plume model (2003) Science, 300, pp. 920-921
  • Dewey, J., Bird, J., Mountain belts and the new global tectonics (1970) J. Geophys. Res., 75, pp. 2625-2647
  • Doubrovine, P.V., Tarduno, J.A., A revised kinematic model for the relative motion between Pacific oceanic plates and North America since the Late Cretaceous (2008) J. Geophys. Res., 113, pp. B12101
  • Doubrovine, P.V., Tarduno, J.A., Linking the Late Cretaceous to Paleogene Pacific plate and the Atlantic bordering continents using plate circuits and paleomagnetic data (2008) J. Geophys. Res., 113, pp. B07104
  • Engebretson, D.C., Cox, A., Gordon, R.G., Relative motions between oceanic plates in the Pacific basin (1984) J. Geophys. Res., 89, pp. 10291-10310
  • Feininger, T., Bristow, C.R., Cretaceous and Paleogene geologic history of coastal Ecuador (1980) Geol. Rundsch., 69, pp. 849-874
  • Foulguer, G.R., Natland, J.H., Is "hotspot" volcanism a consequence of plate tectonics? (2003) Science, 300, pp. 921-922
  • Ghiglione, M.C., Quinteros, J., Yagupsky, D., Bonillo-Martinez, P., Hlebszevrich, J., Ramos, V.A., Vergani, G., Zapata, T., Structure and tectonic history of the foreland of southernmost South America (2010) J. South Am. Earth Sci., 29, pp. 262-277
  • Gordon, R.G., Cox, A., Paleomagnetic test of the Early Tertiary plate circuit between the Pacific basin plates and the Indian plate (1980) J. Geophys. Res., 85, pp. 6534-6546
  • Gordon, R.G., Jurdy, D.M., Cenozoic global plate motions (1986) J. Geophys. Res., 91, pp. 12389-12406
  • Gradstein, F.M., (2004) A Geologic Time Scale 2004, , Cambridge University Press, Cambridge, 500pp
  • Hampel, A., The migration history of the Nazca ridge along the Peruvian active margin; a re-evaluation (2002) Earth Planet. Sci. Lett., 203, pp. 665-679
  • Hartley, A.J., Andean uplift and climate change (2003) J. Geol. Soc., 160, pp. 7-10
  • Homer-Johnson, B.C., Gordon, R.G., Argus, D.F., Plate kinematic evidence for the existence of a distinct plate between the Nubian and Somalian plates along the Southwest Indian Ridge (2007) J. Geophys. Res., 112, pp. B05418
  • Iaffaldano, G., Bunge, H.P., Dixon, T.H., Feedback between mountain belt growth and plate convergence (2006) Geology, 34, pp. 893-896
  • Jin, S., Wang, J., Spreading change of Africa-South America plate: insights from space geodetic observations (2008) Int. J. Earth Sci., 97, pp. 1293-1300
  • Kendrick, E., Bevis, M., Smalley, R., Brooks, B., Bariiga Vargas, R., Lauría, E., Fortes, L.P., The Nazca-South America Euler vector and its rate of change (2003) J. South Am. Earth Sci., 16, pp. 125-131
  • Lamb, S., Davis, P., Cenozoic climate change as a possible cause for the rise of the Andes (2003) Nature, 425, pp. 792-797
  • Larson, R.L., Pockainy, R.A., Viso, R.F., Erba, E., Abrams, L.J., Luyendyk, B.F., Stock, J.M., Clayton, R.W., Mid-Cretaceous tectonic evolution of the Tongareva triple junction in the southwestern Pacific basin (2002) Geology, 30, pp. 67-70
  • Liu, M., Yang, X., Stein, S., Klosko, E., Crustal shortening and extensión in the Central Andes: insights from viscoelastic model (2003) AGU Geodyn. Ser, 30, pp. 325-339. , S. Stein, G. Freymuller (Eds.) Plate Boundary Zones
  • Lonsdale, P., Creation of the Cocos and Nazca plates by fission of the Farallon plate (2005) Tectonophysics, 404, pp. 237-264
  • Martinod, J., Husson, L., Roperch, P., Guillaume, B., Espurt, N., Horizontal subduction, convergence velocity and the building of the Andes (2010) Earth Planet. Sci. Lett., 299, pp. 299-309
  • Mayes, C.L., Lawver, L.A., Sandwell, D.T., Tectonic history and new isochron chart of the South Pacific (1990) J. Geophys. Res., 95, pp. 8543-8567
  • McCarron, J.J., Larter, R.D., Late Cretaceous to early Tertiary subduction history of the Antarctica Peninsula (1998) J. Geol. Soc., 155, pp. 255-268
  • McQuarrie, N., Initial plate geometry, shortening variations, and evolution of the Bolivian orocline (2002) Geology, 30, pp. 867-870
  • Mégard, F., Cordilleran Andes and marginal Andes: a review of Andean geology north of the Arica elbow (18°S) (1987) AGU, Geodyn. Ser., 18, pp. 71-95. , Monger, Francheteau (Eds.) Circum-Pacific belts and evolution of the Pacific Ocean basin
  • Minster, J.B., Jordan, T.H., Present-day plate motions (1978) J. Geophys. Res., 83, pp. 5331-5354
  • Molnar, P., Pardo Casas, F., Stock, J., Uncertainties in the reconstruction of the Indian, African, and Antarctic plates since Late Cretaceous time (1988) Basin Res., 1, pp. 23-40
  • Morgan, W.J., Deep mantle convection plumes and plate tectonics (1971) AAPG Bull., 56 (2), pp. 203-213
  • Mpodozis, C., Ramos, V.A., The Andes of Chile and Argentina (1990) Earth Sci. Ser., 11, pp. 59-90. , Houston, G. Eriksen (Ed.) Geology of the Andes and Its Relation to Hydrocarbon and Mineral Resources, Circum-Pacific Council for Energy and Mineral Resources
  • Müller, R.D., Royer, J.-Y., Lawver, L.A., Revised plate motions relative to the hotspots from combined Atlantic and Indian Ocean hotspot tracks (1993) Geology, 21, pp. 275-278
  • Müller, R.D., Roest, W.R., Royer, J.Y., Asymmetric sea-floor spreading caused by ridge-plume interactions (1998) Nature, 396, pp. 455-459
  • Müller, R.D., Cande, S.C., Royer, J.-Y., Roest, W.R., Machenkov, S., New constraints on the Late Cretaceous/Tertiary plate tectonic evolution of the Caribbean (1999) Caribbean Basin, 4, pp. 39-55. , Elsevier, New York, P. Mann (Ed.) Sedimentary Basins of the World
  • Müller, J.P., Kley, J., Jacobshagen, V., Structure and Cenozoic kinematics of the Eastern Cordillera, southern Bolivia (21°S) (2002) Tectonics, 21 (5), p. 1037
  • Müller, R.D., Sdrolias, M., Gaina, C., Roest, W.R., Age, spreading rates, and spreading asymmetry of the world's ocean crust (2008) Geochem. Geophys. Geosyst., 9, pp. Q04406
  • Norton, I., Plate motions in the North Pacific: the 43Ma nonevent (1995) Tectonics, 14, pp. 1080-1094
  • O'Connor, J.M., Duncan, R.A., Evolution of the Walvis Ridge-Rio Grande Rise hot spot system: implications for African and South American plate motions over plumes (1990) J. Geophys. Res., 95, pp. 17475-17502
  • O'Connor, J.M., le Roex, A.P., South Atlantic hot spot-plume systems: distribution of volcanism in time and space (1992) Earth Planet. Sci. Lett., 113, pp. 343-364
  • O'Neill, C., Müller, R.D., Steinberger, B., On the uncertainties in hot spot reconstructions and the significance of moving hot spot reference frames (2005) Geochem. Geophys. Geosyst., 6 (4), pp. Q04003
  • Oncken, O., Hindle, D., Kley, J., Elger, K., Victor, P., Schemmann, K., Deformation of the Central Andean upper plate system-facts, fiction, and constraints for plateau models (2006) Front. Earth Sci., 1, pp. 3-27. , Springer, Berlin, O. Oncken, G. Chong, G. Franz, P. Giese, H.J. Götze, V.A. Ramos, M. Strecker, P. Wigger (Eds.) The Andes. Active subduction orogeny
  • Pardo Casas, F., Molnar, P., Relative motion of the Nazca (Farallon) and South American plates since Late Cretaceous (1987) Tectonics, 6, pp. 233-248
  • Pilger, R.H., Cenozoic plate kinematics, subduction and magmatism: South American Andes (1984) J. Geol. Soc., 141, pp. 793-802
  • Poblete, F., Arriagada, C., Roperch, P., Astudillo, N., Hervé, F., Kraus, S., le Roux, J.P., Paleomagnetism and tectonics of the South Shetland Islands and the Antarctica Peninsula (2011) Earth Planet. Sci. Lett., 302, pp. 299-313
  • Quinteros, J., Jacovkis, P.M., Ramos, V.A., Evolution of the upper crustal deformation in subduction zones (2006) J. Appl. Mech. Trans. ASME, 73, pp. 984-994
  • Ramos, V.A., Aleman, A., Tectonic evolution of the Andes (2000) Tectonic Evolution of South America. 31st Int. Geol. Cong., Rio de Janeiro, Brazil, pp. 453-480. , U. Cordani (Ed.)
  • Raymond, C., Stock, J., Cande, S., Fast Paleogene motion of the Pacific hotspots from revised global plate circuit constraints (2000) AGU Geophys. Monog. Ser., 121, pp. 359-375. , M.A. Richards, R.G. Gordon, R.D. van der Hilst (Eds.) The history and dynamics of global plate motions
  • Royer, J.-Y., Chang, T., Evidence for relative motions between the Indian and Australian plates during the last 20m.y. from plate tectonic reconstructions: implications for the deformation of the Indo-Australian plate (1991) J. Geophys. Res., 96, pp. 11779-11802
  • Royer, J.-Y., Gordon, R.G., Horner-Johnson, B.C., Motion of Nubia relative to Antarctica since 11Ma: implications for Nubia-Somalia, Pacific-North America, and India Eurasia motion (2006) Geology, 34, pp. 501-504
  • Sager, W.W., Cretaceous paleomagnetic apparent polar wander path for the Pacific plate calculated from Deep Sea Drilling Project and Ocean Drilling Program basalt cores (2006) Phys. Earth Planet. Inter., 156, pp. 329-349
  • Sandwell, D.T., Smith, W.H.F., Global marine gravity from retracked Geosat and ERS-1 altimetry: ridge segmentation versus spreading rate (2009) J. Geophys. Res., 114, pp. B01411
  • Schellart, W.P., Overriding plate shortening and extension above subduction zones: a parametric study to explain formation of the Andes Mountains (2008) Geol. Soc. Am. Bull., 120, pp. 1441-1454
  • Sdrolias, M., Dietmar Müller, R., Controls on back-arc basin formation (2006) Geochem. Geophys. Geosyst., 7 (4), pp. Q04016
  • Shaw, P.R., Cande, S.C., High-resolution inversion for South Atlantic plate kinematics using joint altimeter and magnetic anomaly data (1990) J. Geophys. Res., 95, pp. 2625-2644
  • Silver, P.G., Russo, R.M., Lithgow-Bertelloni, C., Coupling of South America and African plate motion and plate deformation (1998) Science, 279, pp. 60-63
  • Sleep, N.H., Mantle plumes from top to bottom (2006) Earth Sci. Rev., 77, pp. 231-271
  • Sobolev, S.V., Babeyko, A.Y., What drives orogeny in the Central Andes? (2005) Geology, 33, pp. 617-620
  • Somoza, R., Updated Nazca (Farallon)-South America relative motions during the last 40My: implications for mountain building in the Central Andean region (1998) J. South Am. Earth Sci., 11, pp. 211-215
  • Somoza, R., Cenozoic convergence in western South America: the subduction of the Nazca, Farallon and Phoenix plates (2005) 6th ISAG, Paris, France, pp. 681-684. , Universitat de Barcelona, IRD (Eds.)
  • Somoza, R., Ghidella, M.E., Convergencia en el margen occidental de América del Sur durante el Cenozoico: subducción de las placas de Nazca, Farallon y Phoenix (2005) Rev. Asoc. Geol. Argent., 60, pp. 797-809
  • Somoza, R., Zaffarana, C.B., Mid-Cretaceous polar standstill of South America, motion of the Atlantic hotspots and the birth of the Andean cordillera (2008) Earth Planet. Sci. Lett., 271, pp. 267-277
  • Steinberger, B., O'Connell, R.J., Advection of plumes in mantle flow: implications for hotspot motion, mantle viscosity and plume distribution (1998) Geophys. J. Int., 132, pp. 412-434
  • Steinberger, B., Sutherland, R., O'Connell, R., Prediction of Emperor-Hawaii seamount locations from revised model of global plate motion and mantle flow (2004) Nature, 430, pp. 167-173
  • Steinerger, B., Plumes in a convecting mantle: models and observations for individual hotspots (2000) J. Geophys. Res., 105, pp. 11127-11252
  • Tarduno, J.A., Cottrell, R.D., Paleomagnetic evidence for motion of the Hawaiian hotspot during formation of the Emperor seamounts (1997) Earth Planet. Sci. Lett., 153, pp. 171-180
  • Tarduno, J.A., Duncan, R.A., Scholl, D.W., Cottrell, R.D., Steinberger, B., Thordarson, T., Kerr, B.C., Carvallo, C., The Emperor Seamounts: southward motion of the Hawaiian hotspot plume in Earth's mantle (2003) Science, 301, pp. 1064-1069
  • Tassara, A., Götze, H.J., Schmidt, S., Hackney, R., Three-dimensional density model of the Nazca plate and the Andean continental margin (2006) J. Geophys. Res., 111, pp. B09404
  • Tebbens, S.F., Cande, S.C., Southeast Pacific tectonic evolution from early Oligocene to Present (1997) J. Geophys. Res., 102, pp. 12061-12084
  • Torsvik, T.H., Dietmar Müller, R., Van de Voo, R., Steinberger, B., Gaina, C., Global plate motion frames: toward a unified model (2008) Rev. Geophys., 46. , (RG3004/2008, Paper number 2007RG000227)
  • Wessel, P., Kroenke, L.W., Pacific absolute plate motion since 145Ma: an assessment of the fixed hot spot hypothesis (2008) J. Geophys. Res., 113, pp. B06101
  • Wilson, J.T., A possible origin of the Hawaiian Islands (1963) Can. J. Phys., 41, pp. 863-870
  • Yañez, G., Cembrano, J., Role of viscous coupling in the late Tertiary Andean tectonics (2004) J. Geophys. Res., 109, pp. B02407

Citas:

---------- APA ----------
Somoza, R. & Ghidella, M.E. (2012) . Late Cretaceous to recent plate motions in western South America revisited. Earth and Planetary Science Letters, 331-332, 152-163.
http://dx.doi.org/10.1016/j.epsl.2012.03.003
---------- CHICAGO ----------
Somoza, R., Ghidella, M.E. "Late Cretaceous to recent plate motions in western South America revisited" . Earth and Planetary Science Letters 331-332 (2012) : 152-163.
http://dx.doi.org/10.1016/j.epsl.2012.03.003
---------- MLA ----------
Somoza, R., Ghidella, M.E. "Late Cretaceous to recent plate motions in western South America revisited" . Earth and Planetary Science Letters, vol. 331-332, 2012, pp. 152-163.
http://dx.doi.org/10.1016/j.epsl.2012.03.003
---------- VANCOUVER ----------
Somoza, R., Ghidella, M.E. Late Cretaceous to recent plate motions in western South America revisited. Earth Plan. Sci. Lett. 2012;331-332:152-163.
http://dx.doi.org/10.1016/j.epsl.2012.03.003