Subduction erosion: Rates, mechanisms, and its role in arc magmatism and the evolution of the continental crust and mantle

Gondwana Research - Tập 20 - Trang 284-308 - 2011
Charles R. Stern1
1Department of Geological Sciences, University of Colorado, Boulder, CO 80309-0399, USA

Tài liệu tham khảo

Allmendinger, 1997, The evolution of the Altiplano-Puna plateau of the Central Andes, Annual Reviews on Earth and Planetary Sciences, 25, 139, 10.1146/annurev.earth.25.1.139 ANCORP Working Group, 2003, Seismic image of a convergent continental margin and plateau in the central Andes, Journal of Geophysical Research, 108, 10.1029/2002JB001771 Armstrong, 1981, Radiogenic isotopes: the case for crustal recycling on a near-steady-state no-continental growth Earth, Royal Society of London Philosophical Transactions, 301, 443, 10.1098/rsta.1981.0122 Armstrong, 1991, The persistent myth of crustal growth, Australian Journal of Earth Sciences, 38, 613, 10.1080/08120099108727995 Atherton, 1993, Generation of sodium-rich magmas from newly underplated basaltic crust, Nature, 362, 144, 10.1038/362144a0 Atherton, 1996, Plutonism and the growth of Andean crust at 9 degrees S from 100 to 3Ma, Journal of South American Earth Sciences, 9, 1, 10.1016/0895-9811(96)00023-5 Bangs, 1997, Episodic development of a convergent margin inferred from structures and processes along the southern Chile margin, Tectonics, 16, 489, 10.1029/97TC00494 Bangs, 2006, Seamount subduction erosion in the Nankai Trough and its potential impact on the seismogenic zone, Geology, 34, 701, 10.1130/G22451.1 Barreiro, 1984, Lead isotopes and Andean magmagenesis, 21 Barth, 2003, U–Pb zircon geochronology of rocks in the Salinas Valley region of California: a reevaluation of the crustal structure and origin of the Salinian block, Geology, 31, 517, 10.1130/0091-7613(2003)031<0517:UZGORI>2.0.CO;2 Bindeman, 2005, Oxygen isotope evidence for slab melting in modern and ancient subduction zones, Earth and Planetary Science Letters, 235, 480, 10.1016/j.epsl.2005.04.014 Bourgois, 1988, Seabeam and seismic reflection imaging of the tectonic regime of the Andean continental margin off Peru (4°S to 10°S), Earth and Planetary Science Letters, 87, 111, 10.1016/0012-821X(88)90068-4 Bourgois, 1996, Subduction erosion related to spreading-ridge subduction: Taitao peninsula (Chile margin triple junction area), Geology, 24, 723, 10.1130/0091-7613(1996)024<0723:SERTSR>2.3.CO;2 Bourgois, 2000, Glacial–interglacial trench supply variation, spreading-ridge subduction, and feedback controls on the Andean margin development at the Chile triple junction area (45–48°S), Journal of Geophysical Research, 105, 8355, 10.1029/1999JB900400 Brown, 2008, Characteristic thermal regimes of plate tectonics and their metamorphic imprint throughout Earth history: when did Earth first adopt a plate tectonics mode of behavior?, 440, 97 Cande, 1986, Late Cenozoic tectonics of the Southern Chile Trench, Journal of Geophysical Research, 91, 471, 10.1029/JB091iB01p00471 Chen, 1982, Uranium-lead isotopic ages from the Sierra Nevada batholith, Journal of Geophysical Research, 87, 4761, 10.1029/JB087iB06p04761 Clift, 2007, Slow rates of subduction erosion along the Andean margin and reduced global crustal recycling, Geology, 35, 503, 10.1130/G23584A.1 Clift, 2004, Controls on tectonic accretion versus erosion in subduction zones; implications for the origin and recycling of the continental crust, Reviews of Geophysics, 42, RG2001, 10.1029/2003RG000127 Clift, 1998, Tectonic controls on sedimentation and diagenesis in the Tonga Trench and forearc, southwest Pacific, Geological Society of America Bulletin, 110, 483, 10.1130/0016-7606(1998)110<0483:TCOSAD>2.3.CO;2 Clift, 2003, Tectonic erosion of the Peruvian forearc, Lima Basin, by subduction and Nazca Ridge collision, Tectonics, 22, 1023, 10.1029/2002TC001386 Clift, 2005, Pulsed subduction accretion and tectonic erosion reconstructed since 2.5Ma from the tephra record offshore Costa Rica, Geochemistry, Geophysics, Geosystems, 6, 10.1029/2005GC000963 Clift, 2009, Crustal redistribution, crust–mantle recycling and Phanerozoic evolution of the continental crust, Earth-Science Reviews, 97, 80, 10.1016/j.earscirev.2009.10.003 Clift, 2009, Arc–continent collisions, sediment recycling and the maintenance of the continental crust, 318, 75 Cloos, 1988, Subduction-channel model of prism accretion, mélange formation, sediment subduction, and subduction erosion at convergent plate margins, 1: background and description, Pure and Applied Geophysics, 128, 456 Cloos, 1988, Subduction-channel model of prism accretion, mélange formation, sediment subduction, and subduction erosion at convergent plate margins, 2: implications and discussion, Pure and Applied Geophysics, 128, 501, 10.1007/BF00874549 Coats, 1962, Magma type and crustal structure in the Aleutian arc, 92 Condie, 2008, When did plate tectonics begin? Evidence from the geologic record, 440, 281 Defant, 1990, Derivation of some modern arc magmas by melting of young subducted lithosphere, Nature, 347, 662, 10.1038/347662a0 Defant, 1991, Dacite genesis via both slab melting and differentiation: petrogenesis of La Yeguada volcanic complex, Panama, Journal of Petrology, 32, 1101, 10.1093/petrology/32.6.1101 DeLong, 1979, Thermal effects of ridge subduction, Earth and Planetary Science Letters, 44, 239, 10.1016/0012-821X(79)90172-9 Drummond, 1990, A model for trondhjemite–tonalite–dacite genesis and crustal growth via slab melting: Archean to modern comparisons, Journal of Geophysical Research, 95, 21503, 10.1029/JB095iB13p21503 Dumitru, 2010, Early Cretaceous (ca. 123Ma) transition from nonaccretionary behavior to strongly accretionary behavior within the Franciscan subduction complex, Tectonics, 10.1029/2009TC002542 Elliott, 1997, Element transport from subducted slab to volcanic front at the Mariana Arc, Journal of Geophysical Research, 102, 14991, 10.1029/97JB00788 Futa, 1988, Sr and Nd isotopic and trace element compositions of Quaternary volcanic centers of the Southern Andes, Earth and Planetary Sciences Letters, 88, 253, 10.1016/0012-821X(88)90082-9 Goss, 2006, Steep REE patterns and enriched Pb isotopes in southern Central American arc magmas; evidence for forearc subduction erosion?, Geochemistry, Geophysics, Geosystems, 7, 10.1029/2005GC001163 Gromet, 1987, REE variations across the Peninsula Ranges batholiths: implications for batholithic petrogenesis and crustal growth in magmatic arcs, Journal of Petrology, 28, 75, 10.1093/petrology/28.1.75 Grove, 2003, Temporal and spatial trends of Late Cretaceous–early Tertiary underplating of Pelona and related schist beneath southern California and southwestern Arizona, 374, 381 Grove, 2008, The Catalina Schist: evidence for middle Cretaceous subduction erosion of southwestern North America, 436, 335 Guivel, 1999, New geochemical constraints for the origin of ridge-subduction-related plutonic and volcanic suites from the Chile Triple Junction (Taitao Peninsula and Site 862, LEG ODP 141 on the Taitao Ridge), Tectonophysics, 311, 83, 10.1016/S0040-1951(99)00160-2 Guivel, 2003, Very shallow melting of oceanic crust during spreading ridge subduction: origin of near-trench Quaternary volcanism at the Chile Triple Junction, Journal Geophysical Research, 108, 2345, 10.1029/2002JB002119 Gutscher, 2000, Can slab melting be caused by flat subduction?, Geology, 28, 535, 10.1130/0091-7613(2000)28<535:CSMBCB>2.0.CO;2 Hampel, 2004, Response of the tectonically erosive south Peruvian forearc to subduction of the Nazca Ridge: analysis of three-dimensional analogue experiments, Tectonics, 23, TC5003, 10.1029/2003TC001585 Hampel, 2004, Ridge subduction at an erosive margin: the collision zone of the Nazca Ridge in southern Peru, Journal of Geophysical Research, 109, B02101, 10.1029/2003JB002593 Hartley, 2000, Development of continental forearc: a Cenozoic example from the Central Andes, northern Chile, Geology, 28, 331, 10.1130/0091-7613(2000)28<331:DOACFA>2.0.CO;2 Hickey, 1986, Multiple sources for basaltic arc rocks from the Southern Volcanic Zone of the Andes (34°–41°S): trace element and isotopic evidence for contributions from subducted oceanic crust, mantle and continental crust, Journal of Geophysical Research, 91, 5963, 10.1029/JB091iB06p05963 Hickey-Vargas, 1989, Geochemical variations in Andean basaltic and silicic lavas from the Villarrica-Lanín volcanic chain (39.5°S): an evaluation of source heterogeneity, fractional crystallization and crustal assimilation, Contributions to Mineralogy and Petrology, 103, 361, 10.1007/BF00402922 Hickey-Vargas, 2002, Multiple subduction components in the mantle wedge: evidence from eruptive centers in the Central Southern volcanic zone, Chile, Geology, 30, 199, 10.1130/0091-7613(2002)030<0199:MSCITM>2.0.CO;2 Hilde, 1983, Sediment subduction versus accretion around the Pacific, Tectonophysics, 99, 381, 10.1016/0040-1951(83)90114-2 Hildreth, 1988, Crustal contributions to arc magmatism in the Andes of central Chile, Contributions to Mineralogy and Petrology, 103, 361 Hirose, 1999, The fate of subducted basaltic crust in the Earth's lower mantle, Nature, 397, 53, 10.1038/16225 Hirose, 2005, Phase transition and density of subducted MORB crust in the lower mantle, Earth and Planetary Science Letters, 237, 239, 10.1016/j.epsl.2005.06.035 Irifune, 1987, Phase transformations in a harzburgite composition to 26GPa: implications for dynamical behaviour of the subducting slab, Earth and Planetary Science Letters, 86, 365, 10.1016/0012-821X(87)90233-0 Isozaki, 2010, New insight into a subduction-related orogen: a reappraisal of the geotectonic framework and evolution of the Japanese Islands, Gondwana Research, 18, 82, 10.1016/j.gr.2010.02.015 Ito, 2009, Crustal structure of southwest Japan, revealed by the integrated seismic experiment Southwest Japan 2002, Tectonophysics, 472, 124, 10.1016/j.tecto.2008.05.013 Jackson, 2007, The return of subducted continental crust in Samoan lavas, Nature, 448, 684, 10.1038/nature06048 Jacobson, 2000, Late Cretaceous protolith age and provenance of the Pelona and Orocopia Schists, southern California: implications for evolution of the Cordilleran margin, Geology, 28, 219, 10.1130/0091-7613(2000)28<219:LCPAAP>2.0.CO;2 Jacobson, 2011, Late Cretaceous–early Cenozoic tectonic evolution of the southern California margin inferred from provenance of trench and forearc sediments, Geologic Society of America Bulletin, 123, 485, 10.1130/B30238.1 Jordan, 1983, Andean tectonics related to geometry of the subducted Nazca Plate, Geological Society of America Bulletin, 94, 341, 10.1130/0016-7606(1983)94<341:ATRTGO>2.0.CO;2 Kawai, 2009, Lost primordial continents, Gondwana Research, 16, 581, 10.1016/j.gr.2009.05.012 Kay, 1978, Aleutian magnesian andesites: melts from subducted Pacific Oceanic crust, Journal of Volcanology and Geothermal Research, 4, 117, 10.1016/0377-0273(78)90032-X Kay, 2006, Subduction erosion and recycled crust at convergent margins: the Adak adakite example, 35 Kay, 2009, Shallowing and steepening subduction zones, continental lithospheric loss, magmatism, and crustal flow under the Central Andean Altiplano-Puna Plateau, 204, 229 Kay, 2008 Kay, 2002, Magmatism as a probe to the Neogene shallowing of the Nazca plate beneath the modern Chilean flat-slab, Journal of South American Earth Sciences, 15, 39, 10.1016/S0895-9811(02)00005-6 Kay, 1978, Pb and Sr isotopes in volcanic rocks from the Aleutian Islands and Pribilof Islands, Alaska, Geochimica Cosmochimica Acta, 42, 263, 10.1016/0016-7037(78)90178-3 Kay, 1986, Aleutian terranes from Nd isotopes, Nature, 322, 605, 10.1038/322605a0 Kay, S.M., Mpodozis, C., Ramos, V.A., Munizaga, F., 1991. Magma source variations for mid-late Tertiary magmatic rocks associated with a shallowing subduction zone and a thickening crust in the Central Andes (28-33°S). In: Harmon, R.S., Rapela, C.W. (Eds.), Andean Magmatism and Its Tectonic Setting. Geological Society of America Special Paper, 265, pp. 113–138. Kay, 2005, Episodic arc migration, crustal thickening, subduction erosion, and magmatism in the south-central-Andes, Geological Society of America Bulletin, 117, 67, 10.1130/B25431.1 Kilian, 2002, Constraints on the interaction between slab melts and the mantle wedge from adakite glass in peridotite xenoliths, European Journal of Mineralogy, 14, 25, 10.1127/0935-1221/2002/0014-0025 Kimbrough, 2006, The eastern Peninsula Ranges batholithic flare-up: insights from zircon U–Pb ages and oxygen isotope ratios. Backbone of the Americas, Patagonia to Alaska, 2, 107 Komabayashi, 2009, Structure of D″ layer; anti-crust grown through 4.6Ga subduction history of the earth, Gondwana Research, 15, 342, 10.1016/j.gr.2008.11.006 Kopf, 1999, Fate of sediment during plate convergence at the Mediterranean Ridge accretionary complex: volume balance of mud extrusion versus subduction and/or accretion, Geology, 27, 87, 10.1130/0091-7613(1999)027<0087:FOSDPC>2.3.CO;2 Kopf, 2003, The Mediterranean Ridge: a mass balance across the fastest growing accretionary complex on Earth, Journal of Geophysical Research, 108, 2372, 10.1029/2001JB000473 Kukowski, 2006, Subduction erosion — the “normal” mode of fore-arc material transfer along the Chilean Margin, 217 Kulm, 1977, A preliminary analysis of the geotectonic processes of the Andean continental margin, 6° to 45°S, 1, 285 Kurtz, 1997, Geochronology of Miocene plutons and exhumation history of the El Teniente region, Central Chile (34–35°S), Revista Geológica de Chile, 16, 145 Lagabrielle, 2000, Magmatic–tectonic effects of high thermal regime at the site of active ridge subduction: the Chile Triple Junction model, Tectonophysics, 326, 255, 10.1016/S0040-1951(00)00124-4 Lagabrielle, 2004, Neogene to Quaternary tectonic evolution of the Patagonian Andes at the latitude of the Chile Triple Junction, Tectonophysics, 385, 211, 10.1016/j.tecto.2004.04.023 Lamb, 2003, Cenozoic climate change as a possible cause for the rise of the Andes, Nature, 425, 792, 10.1038/nature02049 Laursen, 2002, Neotectonic deformation of the central Chile margin: deepwater forearc basin formation in response to hot spot ridge and seamount subduction, Tectonics, 21, 10.1029/2001TC901023 Liou, 2002, Global distribution and petrotectonic characterizations of UHPM Terranes, 15 Liu, 2007, Evidence of former stishovite in metamorphosed sediments, implying subduction to ~350km, Earth and Planetary Science Letters, 263, 180, 10.1016/j.epsl.2007.08.010 Lohrmann, 2006, Subdcution channel evolution in brittle fore-arc wedges — a combined study with scaled sanbox experiments, seismological and reflection seismic data and geologic field evidence, 237 Macfarlane, 1999, Isotopic studies of northern Andean crustal evolution and ore metal sources, 7, 195 Martin, 1986, Effect of steeper Archean geothermal gradients on geochemistry of subdcution zone magmas, Geology, 14, 753, 10.1130/0091-7613(1986)14<753:EOSAGG>2.0.CO;2 Melnick, 2006, Inversion of forearc basins in south-central Chile caused by rapid glacial age trench fill, Geology, 34, 709, 10.1130/G22440.1 Meschede, 1999, Subsidence and extension at a convergent plate margin: evidence for subduction erosion off Costa Rica, Terra Nova, 11, 112, 10.1046/j.1365-3121.1999.00234.x Morris, 1990, The subducted component in island arc lavas constraints from Be isotopes and B–Be systematics, Nature, 344, 31, 10.1038/344031a0 Muñoz, 2000, The relationship of the mid-Tertiary coastal magmatic belt in south-central Chile to the late Oligocene increase in plate convergence rate, Revista Geológica de Chile, 27, 177, 10.4067/S0716-02082000000200003 Murauchi, 1971, The renewal of island arcs and the tectonics of marginal seas, 39 Myers, 1986, A test of the quartz eclogite source for parental Aleutian magmas: a mass balance approach, Journal of Geology, 94, 811, 10.1086/629089 Nichols, 1994, Subduction zone melting of pelagic sediments constrained by melting experiments, Nature, 371, 785, 10.1038/371785a0 Nichols, 1996, Experimental melting of pelagic sediments; constraints relevant to subduction, 96, 293 Pearce, 1999, Hf–Nd element and isotope perspective on the nature of provenance of mantle and subduction components in the western Pacific arc-basin systems, Journal of Petrology, 40, 1579, 10.1093/petrology/40.11.1579 Peterson, 1999, Magmatic and metallogenic evolution of the Central Andes, 7, 109 Petford, 1996, Na-rich partial melts from newly underplated basaltic crust: the Cordillera Blanca Batholith, Peru, Journal of Petrology, 37, 1491, 10.1093/petrology/37.6.1491 Phipps-Morgan, 1999, Two-stage melting and the geochemical evolution of the mantle; a recipe for mantle plum-pudding, Earth Planetary Science Letters, 170, 215, 10.1016/S0012-821X(99)00114-4 Plank, 1993, Tracing trace elements from sediment input into volcanic output at subduction zones, Nature, 362, 739, 10.1038/362739a0 Plank, 1998, The geochemical composition of subducting sediment and its consequences for the crust and mantle, Chemical Geology, 145, 325, 10.1016/S0009-2541(97)00150-2 Ranero, 2000, Subduction erosion along the Middle America convergent margin, Nature, 404, 748, 10.1038/35008046 Rapp, 1995, Dehydration melting of metabasalt at 1–12kbars: implications for continental growth and crust-mantle recycling, Journal of Petrology, 36, 891, 10.1093/petrology/36.4.891 Rapp, 1991, Partial melting of amphibolites/eclogite and the origin of Archean trondhjemites and tonalities, Precambrian Research, 51, 1, 10.1016/0301-9268(91)90092-O Rogers, 1989, A geochemical transverse across the North Chilean Andes: evidence of crust generation from the mantle wedge, Earth and Planetary Science Letters, 91, 271, 10.1016/0012-821X(89)90003-4 Rutland, 1971, Andean orogeny and ocean floor spreading, Nature, 233, 252, 10.1038/233252a0 Saleeby, 2003, Segmentation of the Laramide slab—evidence from the southern Sierra Nevada region, Geological Society of America Bulletin, 115, 655, 10.1130/0016-7606(2003)115<0655:SOTLSF>2.0.CO;2 Sallarés, 2005, Structure and tectonics of the erosional convergent margin off Antofagasta, north Chile (23°30′S), Journal of Geophysical Research, 110, 10.1029/2004JB003418 Santosh, 2010, A synopsis of recent conceptual models on supercontinent tectonics in relation to mantle dynamics, life evolution and surface environment, Journal of Geodynamics, 50, 116, 10.1016/j.jog.2010.04.002 Santosh, 2009, The making and breaking of supercontinents: some speculations based on superplumes, super downwelling and the role of tectosphere, Gondwana Research, 15, 324, 10.1016/j.gr.2008.11.004 Scheuber, 1992, Magmatic arc tectonics in the Central Andes between 21° and 25°S, Tectonophysics, 205, 127, 10.1016/0040-1951(92)90422-3 Schmitz, 1994, A balanced model of the southern Central Andes, Tectonics, 13, 484, 10.1029/93TC02232 Scholl, 2007, Crustal recycling at modern subduction zones applied to the past — issues of growth and preservation of continental basement crust, mantle geochemistry, and supercontinent reconstruction, 200, 9 Scholl, 2009, Implications of estimated magmatic additions and recycling losses at the subduction zones of accretionary (non-collisional) and collisional (suturing) orogens, 318, 105 Schweller, 1978, Extensional rupture of oceanic crust in the Chile Trench, Marine Geology, 28, 271, 10.1016/0025-3227(78)90022-1 Sen, 1994, Dehydration melting of a basaltic composition amphibolites at 1.5 and 2.0GPa: implications for the origin of adakites, Contributions to Mineralogy and Petrology, 117, 394, 10.1007/BF00307273 Senshu, 2009, Role of tonalite–trodhjemite–granite (TTG) crust subduction on the mechanism of supercontinent breakup, Gondwana Research, 15, 433, 10.1016/j.gr.2008.12.008 Shimoda, 1998, Setouchi high-Mg andesites revisited: geochemical evidence for melting of subducting sediments, Earth and Planetary Science Letters, 160, 479, 10.1016/S0012-821X(98)00105-8 Sigmarsson, 1990, Uranium and 10Be enrichments by fluids in Andean arc magmas, Nature, 346, 163, 10.1038/346163a0 Sigmarsson, 1998, Melting of a subducting oceanic crust from U–Th disequilibria in Austral Andean lavas, Nature, 394, 566, 10.1038/29052 Sigmarsson, 2002, Origin of 226Ra–230Th disequilibria in arc lavas from southern Chile and implications for magma transfer time, Earth and Planetary Science Letters, 196, 189, 10.1016/S0012-821X(01)00611-2 Skewes, 1993, Solevantamiento Andino, erosión y emplazamiento de brechas mineralizadas en el depósito de cobre porfídico Los Bronces, Chile Central (33°S): aplicación de termometría de inclusiones fluidas, Revista Geológica de Chile, 20, 71 Stern, 1974, Melting products of olivine tholeiite basalt in subduction zones, Geology, 2, 227, 10.1130/0091-7613(1974)2<227:MPOOTB>2.0.CO;2 Stern, 1989, Pliocene to present migration of the volcanic front, Andean Southern Volcanic Front, Revista Geológica de Chile, 16, 145 Stern, 1990, Comment on “A geochemical traverse across the northern Chilean Andes: evidence for crust generation from the mantle” by G. Rogers and C. Hawkesworth, Earth and Planetary Science Letters, 101, 129, 10.1016/0012-821X(90)90134-J Stern, 1991, Role of subduction erosion in the generation of the Andean magmas, Geology, 19, 78, 10.1130/0091-7613(1991)019<0078:ROSEIT>2.3.CO;2 Stern, 2004, Active Andean volcanism: its geologic and tectonic setting, Revista Geológica de Chile, 31, 161, 10.4067/S0716-02082004000200001 Stern, 2005, Evidence from ophiolites, blueschists, and ultra-high pressure metamorphic terranes that the modern episode of subduction tectonics began in Neoproterozoic time, Geology, 33, 557, 10.1130/G21365.1 Stern, 2008, Modern-style plate tectonics began in Neoproterozoic time: an alternative interpretation of Earth's tectonic history, 440, 265 Stern, 1996, Role of the subducted slab, mantle wedge and continental crust in the generation of adakites from the Andean Austral Volcanic Zone, Contributions to Mineralogy and Petrology, 123, 263, 10.1007/s004100050155 Stern, 1991, Geologic evidence for subduction erosion along the west coast of Central and Northern Chile, 205 Stern, 2010, Yin and yang of continental crust creation and destruction by plate tectonic processes, International Geology Review, 52, 1, 10.1080/00206810903332322 Stern, 1995, Miocene to Present magmatic evolution at the northern end of the Andean Southern Volcanic Zone, Central Chile, Revista Geológica de Chile, 22, 261 Stern, 1973, Melting relation of basalt–andesite–rhyolite–H2O and a pelagic red clay at 30kilobars, Contributions to Mineralogy and Petrology, 42, 313, 10.1007/BF00372609 Stern, 1981, Isotopic U–Pb Ages of Zircon from the Granitoids of the Central Sierra Nevada, California Stern, 1990, Trace element and Sr, Nd, Pb and O isotopic composition of Pliocene and Quaternary alkali basalts of the Patagonian Plateau Lavas of southernmost South America, Contributions to Mineralogy and Petrology, 104, 294, 10.1007/BF00321486 Stern, 2007, Chilean volcanoes, 149 Stern, 2010, Magmatic evolution of the giant El Teniente Cu–Mo deposit, central Chile, Journal of Petrology, 10.1093/petrology/egq029 Stern, 2011, Olivine–hornblende–lamprophyre dikes from Quebrada los Sapos, El Teniente, Central Chile (34°S): implications for the temporal geochemical evolution of the Andean subarc mantle, Andean Geology, 38, 1, 10.5027/andgeoV38n1-a02 Suárez, 1994, Braided rivers, lakes and sabkhas of the upper Triassic Cifuncho formation, Atacama region, Chile, Journal of South American Earth Sciences, 7, 25, 10.1016/0895-9811(94)90031-0 Takagi, 2004, Origin of magnetite- and ilmenite-series granitic rocks in the Japan arc, American Journal of Science, 304, 169, 10.2475/ajs.304.2.169 Tatsumi, 2001, Geochemical modeling of partial melting of subducting sediments and subsequent melt-mantle interaction: Generation of high-Mg andesites in the Setouchi volcanic belt, southwest Japan, Geology, 29, 323, 10.1130/0091-7613(2001)029<0323:GMOPMO>2.0.CO;2 Tera, 1986, Sediment incorporation in island-arc magmas: inferences from 10Be, Geochimica Cosmochimica Acta, 50, 535, 10.1016/0016-7037(86)90103-1 Tulloch, 2003, Paired plutonic belts in convergent margins and the development of high Sr/Y magmatism: Peninsula Ranges Batholith of Baja California and Median Batholith of New Zealand, 374, 275 Vannucchi, 2001, Tectonic erosion and consequent collapse of the Pacific margin of Costa Rica: combined implications from ODP Leg 170, seismic offshore data, and regional geology of the Nicoya Peninsula, Tectonics, 20, 649, 10.1029/2000TC001223 Vannucchi, 2003, Fast rates of subduction erosion along the Costa Rica Pacific margin: implications for nonsteady rates of crustal recycling at subduction zones, Journal of Geophysical Research, 108, 2511, 10.1029/2002JB002207 von Huene, 1989, Tectonic erosion at the front of the Japan convergent margin, Tectonophysics, 160, 75, 10.1016/0040-1951(89)90385-5 von Huene, 1990, Tectonic erosion along the Japan and Peru convergent margins, Geological Society of America Bulletin, 102, 704, 10.1130/0016-7606(1990)102<0704:TEATJA>2.3.CO;2 von Huene, 2003, Subduction erosion and basal friction along the sediment-starved convergent plate margin off Anatofagasta, Chile, Journal of Geophysical Research, 108, 10.1029/2001JB001569 von Huene, 1991, Observations at convergent margins concerning sediment subduction, sediment erosion, and the growth of continental crust, Reviews of Geophysics, 29, 279, 10.1029/91RG00969 von Huene, 1982, A summary of Cenozoic tectonic history along the IPOD Japan trench transect, Geological Society of America Bulletin, 93, 829, 10.1130/0016-7606(1982)93<829:ASOCTH>2.0.CO;2 von Huene, 1988, Ocean Drilling Program Leg 112, Peru continental margin, part 1, Tectonic history, Geology, 16, 934, 10.1130/0091-7613(1988)016<0934:ODPLPC>2.3.CO;2 von Huene, 1997, Tectonic control of the subducting Juan Fernández Ridge on the Andean margin near Valparaiso, Chile, Tectonics, 16, 474, 10.1029/96TC03703 von Huene, 1999, Subduction erosion along the North Chile margin, Journal of Geodynamics, 27, 345, 10.1016/S0264-3707(98)00002-7 von Huene, 2004, Generic model of subduction erosion, Geology, 32, 913, 10.1130/G20563.1 Wells, 2003, Basin-centered asperities in great subduction zone earthquakes—a link between sip, subsidence and subduction erosion?, Journal of Geophysical Research, 108, 2507, 10.1029/2002JB002072 White, 1986, Sediment subduction and magma genesis in the Lesser Antilles: isotopic and trace element constraints, Journal of Geophysical research, 91, 5927, 10.1029/JB091iB06p05927 White, 1982, Sr and Nd isotope geochemistry of oceanic basalts and mantle evolution, Nature, 296, 821, 10.1038/296821a0 Woodhead, 1985, Pb, Sr, and 10Be isotopic studies of volcanic rocks from the Northern Mariana Islands: implications for magma genesis and crustal recycling in the western Pacific, Geochimica Cosmochimica Acta, 49, 1925, 10.1016/0016-7037(85)90087-0 Workman, 2008, Oxygen isotopes in Samoan lavas: confirmation of continent recycling, Geology, 36, 551, 10.1130/G24558A.1 Yamamoto, 2009, Granite subduction: arc subduction, tectonic erosion and sediment subduction, Gondwana Research, 15, 443, 10.1016/j.gr.2008.12.009 Yáñez, 2001, Magnetic anomaly interpretation across the southern Central Andes (32°–33.5°S): the role of the Juan Fernández ridge in the late Tertiary evolution of the margin, Journal of Geophysical Research, 106, 6325, 10.1029/2000JB900337 Yáñez, 2002, The Challenger–Juan Fernández–Maipo major tectonic transition of the Nazca–Andean subduction system at 33–34°S: geodynamic evidence and implications, Journal of South American Earth Sciences, 15, 23, 10.1016/S0895-9811(02)00004-4 Ye, 2000, The possible subduction of continental material to depths greater than 200km, Nature, 407, 734, 10.1038/35037566 Yogodzinski, 1994, Magnesian andesites and the subduction component in a strongly calc-alkaline series at Piip Volcano, far western Aleutians, Journal of Petrolology, 35, 163, 10.1093/petrology/35.1.163 Ziegler, 1981, Paleoclimate, sedimentation and continental accretion, Royal Society of London Philosophical Transactions, 301, 253, 10.1098/rsta.1981.0109