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Canadian Journal of Earth Sciences, 43, 57, 10.1139\u002Fe05-111\nBahroudi, 1999, 1\u002F100000 Geological map of Bashtin region, Geological Survey of Iran\nBagcı, 2005, Whole rock and mineral chemistry of cumulates from the Kızıldag (Hatay) ophiolite (Turkey): clues for multiple magma generation during crustal accretion in the southern Neotethyan Ocean, Mineralogical Magazine, 69, 53, 10.1180\u002F0026461056910234\nBaroz, 1984, La serie volcanosedimentaire du chainon ophiolitique de Sabzevar (Iran), Ofioliti, 9, 3\nBaroz, 1983, Ophiolite and related formation in the central part of the Sbzevar rang (Iran) and possible geotectonic reconstructions. Geodynamic project (Geotraverse) in Iran\nBaroz, 1984, Ophiolites and related formations in the central part of the Sabzevar (Iran) and possible geotectonics reconstructions, Neues Jahrbuch für Geologie und Paläontologie (Abhandlungen), 168, 358, 10.1127\u002Fnjgpa\u002F168\u002F1984\u002F358\nBarrier, 2007\nBedard, 2009, Petrology and geochemistry of the Saga and Sangsang ophiolitic massifs, Yarlung Zangbo Suture Zone, Southern Tibet: evidence for an arc–back-arc origin, Lithos, 113, 48, 10.1016\u002Fj.lithos.2009.01.011\nBerberian, 1981, Towards a paleogeography and tectonic evolution of Iran, Canadian Journal of Earth Sciences, 18, 210, 10.1139\u002Fe81-019\nBurns, 1985, The Border Ranges ultramafic and mafic complex, south central Alaska: cumulate fractionates of island arc volcanics, Canadian Journal of Earth Sciences, 22, 1020, 10.1139\u002Fe85-106\nCelik, 2013, The Eldivan ophiolite and volcanic rocks in the İzmir–Ankara–Erzincan suture zone, Northern Turkey: geochronology, 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associated lavas, Contributions to Mineralogy and Petrology, 86, 54, 10.1007\u002FBF00373711\nDilek, 2003, Ophiolite concept and its evolution, 373, 1\nDilek, 2011, Ophiolite genesis and global tectonics: geochemical and tectonic fingerprinting of ancient oceanic lithosphere, Geological Society of America Bulletin, 123, 387, 10.1130\u002FB30446.1\nFan, 2010, Permian arc–back-arc basin development along the Ailaoshan tectonic zone: geochemical, isotopic and geochronological evidence from the Mojiang volcanic rocks, Southwest China, Lithos, 119, 553, 10.1016\u002Fj.lithos.2010.08.010\nGillis, 2002, Anatectic migmatites from the roof zone of an ocean ridge magma chamber, Journal of Petrology, 43, 2075, 10.1093\u002Fpetrology\u002F43.11.2075\nGodard, 2003, Geochemical variability of the Oman ophiolite lavas: relationship with spatial distribution and paleomagnetic directions, Geochemistry, Geophysics, Geosystems (G), 4, 8609\nGodard, 2006, A MORB source for low-Ti magmatism in the Semail ophiolite, Chemical Geology, 234, 58, 10.1016\u002Fj.chemgeo.2006.04.005\nHart, 1984, A large-scale isotope anomaly in the Southern Hemisphere mantle, Nature, 309, 753, 10.1038\u002F309753a0\nKawahata, 2001, Sr isotope geochemistry and hydrothermal alteration of the Oman ophiolite, Journal of Geophysical Research, 106, 11083, 10.1029\u002F2000JB900456\nKnipper, 1986, Ophiolites as indicators of the geodynamic evolution of the Tethyan ocean, Tectonophysics, 123, 213, 10.1016\u002F0040-1951(86)90198-8\nKoepke, 2005, Hydrous partial melting within the lower oceanic crust, Terra Nova, 16, 286, 10.1111\u002Fj.1365-3121.2005.00613.x\nLanphere, 1983, 40Ar\u002F39Ar ages and tectonic setting of ophiolites from Neyriz area, southeast Zagros range, Iran, Tectonophysics, 96, 245, 10.1016\u002F0040-1951(83)90220-2\nLarocque, 2010, The role of amphibole in the evolution of arc magmas and crust: the case from the Jurassic Bonanza arc section, Vancouver Island, Canada, Contributions to Mineralogy and Petrology, 159, 475, 10.1007\u002Fs00410-009-0436-z\nLensch, 1980, The post-ophiolitic volcanics north of Sabzevar (Iran): geology, petrography and major elements geochemistry, Neues Jahrbuch für Geologie und Paläontologie (Monatsheft), 11, 686, 10.1127\u002Fnjgpm\u002F1980\u002F1980\u002F686\nLi, 2013, Geochronology and geochemistry of volcanic rocks from the Shaojiwa Formation and Xingzi Group, Lushan area, SE China: implications for Neoproterozoic back-arc basin in the Yangtze Block, Precambrian Research, 238, 1, 10.1016\u002Fj.precamres.2013.09.016\nLippard, 1986, The ophiolite of northern Oman, 11\nLiu, 2013, A late-Carboniferous to early early-Permian subduction-accretion complex in Daqing pasture, southeastern Inner Mongolia: evidence of northward subduction beneath the Siberian paleoplate southern margin, Lithos, 177, 285, 10.1016\u002Fj.lithos.2013.07.008\nMajidi, 1987, 1\u002F100000 Geological map of Sabzevar region, Geological Survey of Iran\nMcCulloch, 1981, Sm–Nd, Rb–Sr, and 18O\u002F16O isotopic systematics in an oceanic crustal section: evidence from the Samail ophiolite, Journal of Geophysical Research, 86, 2721, 10.1029\u002FJB086iB04p02721\nMcDonough, 1995, The composition of the Earth, Chemical Geology, 120, 223, 10.1016\u002F0009-2541(94)00140-4\nMoghadam, 2011, Geodynamic evolution of Upper Cretaceous Zagros ophiolites: formation of oceanic lithosphere above a nascent subduction zone, Geological Magazine, 148, 762, 10.1017\u002FS0016756811000410\nMoghadam, 2014, Supra-subduction zone magmatism of the Neyriz ophiolite, Iran: constraints from geochemistry and Sr-Nd-Pb isotopes, International Geology Review, 56, 1395, 10.1080\u002F00206814.2014.942391\nMoghadam, H.S., Li, X.-H., Ling, X.-X., Santos, J.F., Stern, R.J., Ling, Q.-L., Ghorbani, G., submitted for publication. Eocene Kashmar granitoids (NE Iran): Petrogenetic constraints from major and trace elements, U-Pb zircon geochronology, zircon Hf-O and whole rock Sr-Nd isotopes. Lithos (paper revised).\nNeill, 2013, The Albian–Turonian island-arc rocks of Tobago, West Indies: geochemistry, petrogenesis and Caribbean plate tectonics, Journal of Petrology, 54, 1607, 10.1093\u002Fpetrology\u002Fegt025\nNoghreyan, 1982\nNozaem, 2013, Post-Neogene right-lateral strike–slip tectonics at the north-western edge of the Lut Block (Kuh-e–Sarhangi Fault), Central Iran, Tectonophysics, 589, 220, 10.1016\u002Fj.tecto.2013.01.001\nOhnenestetter, 1982, Contraintes geochimiques apportees par le magmatisme sur le developpement du bassin marginal ensialique du Beaujolais au Devonian, Bulletin de la Societe Geologique de France, 8, 499\nOmrani, 2013, The Sabzevar blueschists of the North-Central Iranian micro-continent as remnants of the Neotethys-related oceanic crust subduction, International Journal of Earth Sciences, 102, 1491, 10.1007\u002Fs00531-013-0881-9\nPearce, 2008, Geochemical fingerprinting of oceanic basalts with applications to ophiolite classification and the search for Archean oceanic crust, Lithos, 100, 14, 10.1016\u002Fj.lithos.2007.06.016\nPearce, 2014, Immobile element fingerprinting of ophiolites, Elements, 10, 101, 10.2113\u002Fgselements.10.2.101\nPearce, 1995, Tectonic implications of the composition of volcanic arc magmatism, Annual Review of Earth and Planetary Sciences, 23, 251, 10.1146\u002Fannurev.ea.23.050195.001343\nPearce, 2000, Geochemistry and tectonic significance of peridotites from the South Sandwich arc-basin systems, South Atlantic, Contributions to Mineralogy and Petrology, 139, 36, 10.1007\u002Fs004100050572\nReagan, 2010, Fore-arc basalts and subduction initiation in the Izu–Bonin–Mariana system, Geochemistry, Geophysics, Geosystems (G3), 11, Q03X12\nRobertson, 2007, Overview of tectonic settings related to the rifting and opening of Mesozoic ocean basins in the Eastern Tethys: Oman, Himalayas and Eastern Mediterranean regions, 325\nRollinson, 2009, New models for the genesis of plagiogranites in the Oman ophiolite, Lithos, 112, 603, 10.1016\u002Fj.lithos.2009.06.006\nRossetti, 2010, Early Cretaceous migmatitic mafic granulites from the Sabzevar range (NE Iran): implications for the closure of the Mesozoic peri-Tethyan oceans in central Iran, Terra Nova, 22, 26, 10.1111\u002Fj.1365-3121.2009.00912.x\nSaccani, 2013, Geochemistry and petrology of the Kermanshah ophiolites (Iran): implication for the interaction between passive rifting, oceanic accretion, and OIB-type components in the southern Neo-Tethys Ocean, Gondwana Research, 24, 392, 10.1016\u002Fj.gr.2012.10.009\nSaccani, 2014, Petrology and geochemistry of mafic magmatic rocks from the Sarve–Abad ophiolites (Kurdistan region, Iran): evidence for interaction between MORB-type asthenosphere and OIB-type components in the southern Neo-Tethys Ocean, Tectonophysics, 10.1016\u002Fj.tecto.2014.02.011\nSandeman, 2006, Petrogenesis of Neoarchaean volcanic rocks of the MacQuoid supracrustal belt: a back-arc setting for the northwestern 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J. Sci., 272, 334, 10.2475\u002Fajs.272.4.334\nBrueckner, 1974, “Mantle” RbSr and 87Sr86Sr ratios for clinopyroxenes from Norwegian garnet peridotites and pyroxenites, Earth Planet. Sci. Lett., 5, 26, 10.1016\u002F0012-821X(74)90004-1\nBrueckner, 1977, A crustal origin for eclogites and a mantle origin for garnet peridotites: strontium isotopic evidence from clinopyroxenes, Contrib. Mineral. 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Res., 68, 448, 10.2110\u002Fjsr.68.448",{"EN":709},"Petrology of sapphirine granulite and associated sodic gneisses from the Indian Head Range, Newfoundland",{"VOID":711},"10.1016\u002Fs0024-4937(03)00043-4","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0024493703000434",[714,729,744],{"id":715,"sortIndex":138,"researcher":17,"roles":716,"affiliations":717,"properties":726},"6cce4546-3510-4ed7-9f85-bb43d5e89262",[213],[718],{"id":17,"sortIndex":18,"affiliation":719,"properties":17},{"id":720,"createTime":721,"updateTime":721,"relativeEntities":722,"slug":17,"properties":723,"entityType":45,"verifyStatus":16,"verifyTime":17,"verifyNote":17,"syncStatus":16,"languages":17,"translateLanguages":17,"viewCount":18},"ee57a2cd-c690-4d56-abf0-3d2ee83f1364","2023-11-30T04:51:53.430+00:00",[],{"title":724},{"VI":725},"Department of Earth Sciences, The University of Western Ontario, London, Ontario, Canada N6A 5B7",{"title":727},{"VI":728},"F.J. 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and evolution of the North China Craton, 338, 235\nZhang, 2012, Destruction of ancient lower crust through magma underplating beneath Jiaodong Peninsula, North China Craton: U-Pb and Hf isotopic evidence from granulite xenoliths, Gondwana Research, 21, 281, 10.1016\u002Fj.gr.2011.05.013\nZhang, 2010, Melt\u002Frock interaction in remains of refertilized Archean lithospheric mantle in Jiaodong Peninsula, North China Craton: Li isotopic evidence, Contribution to Mineralogy and Petrology, 160, 261, 10.1007\u002Fs00410-009-0476-4\nZhang, 2010, Postcollisional magmatism: geochemical constraints on the petrogenesis of Mesozoic granitoids in the Sulu orogen, China, Lithos, 119, 512, 10.1016\u002Fj.lithos.2010.08.005\nZhang, 2010, Early Devonian alkaline intrusive complex from the northern North China Craton: a petrological monitor of post-collisional tectonics, Journal of the Geological Society, London, 167, 717, 10.1144\u002F0016-76492009-110\nZhang, 2011, Phanerozoic reactivation of the Archean North China Craton through episodic magmatism: evidence from zircon U-Pb geochronology and Hf isotopes from the Liaodong Peninsula, Gondwana Research, 19, 446, 10.1016\u002Fj.gr.2010.09.002\nZhang, 2012, Evolution of the Archean and Paleoproterozoic lower crust beneath the Trans-North China Orogen and Western Block of the North China Craton, Gondwana Research, 22, 73, 10.1016\u002Fj.gr.2011.08.011\nZhang, 2012, Episodic growth of Precambrian lower crust beneath the North China Craton: a synthesis, Precambrian Research, 222–223, 255, 10.1016\u002Fj.precamres.2011.04.006\nZhang, 2012, Zircon Hf-O isotope and whole-rock geochemical constraints on origin of postcollisional mafic to felsic dykes in the Sulu orogen, Lithos, 136–139, 225, 10.1016\u002Fj.lithos.2011.06.006\nZhang, 2013, Episodic widespread magma underplating beneath the North China Craton in the Phanerozoic: implications for craton destruction, Gondwana Research, 23, 95, 10.1016\u002Fj.gr.2011.12.006\nZhao, 2000, Metamorphism of basement rocks in the Central Zone of the North China Craton: implications for Paleoproterozoic tectonic evolution, Precambrian Research, 103, 55, 10.1016\u002FS0301-9268(00)00076-0\nZhao, 2001, Archean blocks and their boundaries in the North China Craton: lithological, geochemical, structural and P–T path constraints and tectonic evolution, Precambrian Research, 107, 45, 10.1016\u002FS0301-9268(00)00154-6\nZhao, 2012, Amalgamation of the North China Craton: key issues and discussion, Precambrian Research, 222–223, 55, 10.1016\u002Fj.precamres.2012.09.016\nZhao, 2012, Syn-exhumation magmatism during continental collision: evidence from alkaline intrusives of Triassic age in the Sulu orogen, Chemical Geology, 328, 70, 10.1016\u002Fj.chemgeo.2011.11.002\nZheng, 2004, 3.6 Ga lower crust in central China: new evidence on the assembly of the North China Craton, Geology, 32, 229, 10.1130\u002FG20133.1\nZheng, 2004, U-Pb and Hf-isotope analysis of zircons in mafic xenoliths 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New thermobarometers, and practical assessment of existing thermobarometers, Journal of Petrology, 31, 1353, 10.1093\u002Fpetrology\u002F31.6.1353\nCanil, 2003, Mantle exhumation in an early Palaeozoic passive margin, northern Cordillera, Yukon, Journal of Geology, 111, 313, 10.1086\u002F373971\nCannat, 1995, Transform tectonics, metamorphic plagioclase and amphibolitization in ultramafic rocks of the Vema transform fault (Atlantic Ocean), Earth Planetary Science Letters, 133, 283, 10.1016\u002F0012-821X(95)00078-Q\nCipriani, 2009, A 19 to 17 amagmatic extension event at the Mid-Atlantic ridge: ultramafic mylonites from the Vema Lithospheric section, Geochem. Geophys. 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Maggiore (Corsica, France) ophiolitic peridotites: microstructural and geochemical records, Contribution to Mineralogy and Petrology, 156, 453, 10.1007\u002Fs00410-008-0296-y\nRampone, 2008, The melt intrusion\u002Finteraction history of the Erro–Tobbio peridotites (Ligurian Alps, Italy): insights on mantle processes at non-volcanic passive margins, European Journal of Mineralogy, 20, 573, 10.1127\u002F0935-1221\u002F2008\u002F0020-1807\nSeyler, 1997, Regional-scale melt-rock interaction in lherzolitic mantle in the Romanche fracture zone (Atlantic Ocean), Earth and Planetary Science Letters, 146, 273, 10.1016\u002FS0012-821X(96)00220-8\nSmith, 1988\nTakazawa, 1996, Evolution of the Horoman peridotite (Hokkaido, Japan): implications from pyroxene compositions, Chemical Geology, 134, 3, 10.1016\u002FS0009-2541(96)00083-6\nTartarotti, 2002, Melt migration in the upper mantle along the Romanche fracture zone (Equatorial Atlantic), Lithos, 63, 125, 10.1016\u002FS0024-4937(02)00116-0\nTaylor, 1998, An experimental test of some geothermometer and geobarometer formulation for upper mantle peridotites with application to the thermobarometry of fertile lherzolite and garnet websterite, N. Jb. Min. Abh., 172, 381, 10.1127\u002Fnjma\u002F172\u002F1998\u002F381\nWalter, 1994, Melting behaviour of simplified lherzolite in the system CaO-MgO-Al2O3-SiO2-Na2O from 7 to 35kbar, Journal of Petrology, 35, 329, 10.1093\u002Fpetrology\u002F35.2.329\nWarren, 2010, Cryptic variations in abyssal peridotite compositions: evidence for shallow-level melt infiltration in the oceanic lithosphere, Journal of Petrology, 51, 395, 10.1093\u002Fpetrology\u002Fegp096\nWells, 1977, Pyroxene thermometry in simple and complex systems, Contribution to Mineralogy and Petrology, 62, 129, 10.1007\u002FBF00372872",{"EN":987},"The geobarometric significance of plagioclase in mantle peridotites: A link between nature and 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