Petrogenesis and geochemistry of circa 2.5 Ga granitoids in the Zanhuang Massif: Implications for magmatic source and Neoarchean metamorphism of the North China Craton
暂无分享,去创建一个
T. Kusky | A. Polat | Songjie Wang | Lu Wang | Junpeng Wang | H. Deng | Jianmin Fu | D. Fu
[1] T. Kusky,et al. Structural relationships along a Neoarchean arc-continent collision zone, North China craton , 2017 .
[2] Guochun Zhao,et al. Metamorphic P–T path of mafic granulites from Eastern Hebei: Implications for the Neoarchean tectonics of the Eastern Block, North China Craton , 2016 .
[3] D. Wyman,et al. 2090–2070 Ma A-type granitoids in Zanhuang Complex: Further evidence on a Paleoproterozoic rift-related tectonic regime in the Trans-North China Orogen , 2016 .
[4] T. Kusky,et al. A 2.5 Ga fore-arc subduction-accretion complex in the Dengfeng Granite-Greenstone Belt, Southern North China Craton , 2016 .
[5] B. Upton,et al. Origin of mafic and ultramafic cumulates from the Ditrău Alkaline Massif, Romania , 2015 .
[6] A. Polat,et al. A review of structural patterns and melting processes in the Archean craton of West Greenland: Evidence for crustal growth at convergent plate margins as opposed to non-uniformitarian models , 2015 .
[7] M. Santosh,et al. Neoarchean intra-oceanic arc system in the Western Liaoning Province: Implications for Early Precambrian crustal evolution in the Eastern Block of the North China Craton , 2015 .
[8] T. Kusky,et al. A Neoarchean subduction polarity reversal event in the North China Craton , 2015 .
[9] M. Santosh,et al. An exotic Mesoarchean microcontinent: The Coorg Block, southern India , 2015 .
[10] Yi Chen,et al. Metamorphic P–T–t paths of the Zanhuang metamorphic complex: Implications for the Paleoproterozoic evolution of the Trans-North China Orogen , 2014 .
[11] T. Kusky,et al. Geochronology, mantle source composition and geodynamic constraints on the origin of Neoarchean mafic dikes in the Zanhuang Complex, Central Orogenic Belt, North China Craton , 2014 .
[12] Zhiyong Zhang,et al. Neoarchean Algoma-type banded iron formations from Eastern Hebei, North China Craton: SHRIMP U-Pb age, origin and tectonic setting , 2014 .
[13] B. Windley,et al. Spatial distribution of ~1950-1800 Ma metamorphic events in the North China Craton: Implications for tectonic subdivision of the craton , 2014 .
[14] Lu Zhang,et al. Zircon Hf isotopes and geochemistry of the early paleoproterozoic high-Sr low-y quartz-diorite in the Quanji massif, NW China: Crustal growth and tectonic implications , 2014, Journal of Earth Science.
[15] Guochun Zhao. Precambrian Evolution of the North China Craton , 2013 .
[16] Guochun Zhao,et al. Tectonic affinity and reworking of the Archaean Jiaodong Terrane in the Eastern Block of the North China Craton: evidence from LA-ICP-MS U–Pb zircon ages , 2013, Geological Magazine.
[17] T. Kusky,et al. Geochemistry of Neoarchean mafic volcanic rocks and late mafic dikes in the Zanhuang Complex, Central Orogenic Belt, North China Craton: Implications for geodynamic setting , 2013 .
[18] Y. Wan,et al. Delineation of the ca. 2.7 Ga TTG gneisses in the Zanhuang Complex, North China Craton and its geological implications , 2013 .
[19] Q. Qian,et al. Zircon U-Pb ages, trace elements and Nd-Hf isotopic geochemistry of Guyang sanukitoids and related rocks: Implications for the Archean crustal evolution of the Yinshan Block, North China Craton , 2013 .
[20] J. Cliff,et al. Interaction of weathering solutions with oxygen and U–Pb isotopic systems of radiation-damaged zircon from an Archean granite, Darling Range Batholith, Western Australia , 2013, Contributions to Mineralogy and Petrology.
[21] Guochun Zhao,et al. Lithotectonic elements of Precambrian basement in the North China Craton: Review and tectonic implications , 2013 .
[22] S. Wilde,et al. Late Neoarchean potassic high Ba–Sr granites in the Taishan granite–greenstone terrane: Petrogenesis and implications for continental crustal evolution , 2013 .
[23] M. Kusiak,et al. Mobilization of radiogenic Pb in zircon revealed by ion imaging: Implications for early Earth geochronology , 2013 .
[24] Hong‐fu Zhang,et al. Zircon U-Pb age and Lu-Hf isotope constraints on Precambrian evolution of continental crust in the Songshan area, the south-central North China Craton , 2013 .
[25] Pengtao Yang,et al. Zircon U–Pb–Hf isotopes and whole-rock geochemistry of granitoid gneisses in the Jianping gneissic terrane, Western Liaoning Province: Constraints on the Neoarchean crustal evolution of the North China Craton , 2013 .
[26] San-zhong Li,et al. Petrology and P–T path of the Yishui mafic granulites: Implications for tectonothermal evolution of the Western Shandong Complex in the Eastern Block of the North China Craton , 2012 .
[27] Q. Zhang,et al. Episodic mantle melting-crustal reworking in the late Neoarchean of the northwestern North China Craton: Zircon ages of magmatic and metamorphic rocks from the Yinshan Block , 2012 .
[28] T. Kusky,et al. A late Archean tectonic mélange in the Central Orogenic Belt, North China Craton , 2012 .
[29] Guochun Zhao,et al. Precambrian geology of China: Preface , 2012 .
[30] Dunyi Liu,et al. Zircon ages and geochemistry of late Neoarchean syenogranites in the North China Craton: A review , 2012 .
[31] Peter A. Cawood,et al. Amalgamation of the North China Craton: Key issues and discussion , 2012 .
[32] Lianchang Zhang,et al. Formation age and tectonic setting of the Shirengou Neoarchean banded iron deposit in eastern Hebei Province: Constraints from geochemistry and SIMS zircon U–Pb dating , 2012 .
[33] P. Monié,et al. Paleoproterozoic tectonic evolution of the Trans-North China Orogen: Toward a comprehensive model , 2012 .
[34] W. Griffin,et al. Triassic “adakitic” rocks in an extensional setting (North China): Melts from the cratonic lower crust , 2012 .
[35] B. Windley,et al. Geochemistry of ultramafic rocks and hornblendite veins in the Fiskenæsset layered anorthosite complex, SW Greenland: Evidence for hydrous upper mantle in the Archean , 2012 .
[36] Dunyi Liu,et al. Late Neoarchean magmatic and subsequent metamorphic events in the northern North China Craton: SHRIMP zircon dating and Hf isotopes of Archean rocks from Yunmengshan Geopark, Miyun, Beijing , 2012 .
[37] L. Ren,et al. Growth and reworking of the early Precambrian continental crust in the North China Craton: Constraints from zircon Hf isotopes , 2012 .
[38] Dunyi Liu,et al. Multistage late Neoarchaean crustal evolution of the North China Craton, eastern Hebei , 2011 .
[39] Pengtao Yang,et al. Zircon U–Pb chronology of the Jianping Complex: Implications for the Precambrian crustal evolution history of the northern margin of North China Craton , 2011 .
[40] M. Santosh,et al. Geochronology and petrogenesis of Neoarchean potassic meta-granites from Huai'an Complex: Implications for the evolution of the North China Craton , 2011 .
[41] Q. Meng,et al. Stratigraphic and sedimentary records of the rift to drift evolution of the northern North China craton at the Paleo- to Mesoproterozoic transition , 2011 .
[42] T. Zhao,et al. Geochronology and geochemistry of 2.5 to 2.4 Ga granitic plutons from the southern margin of the North China Craton: Implications for a tectonic transition from arc to post-collisional setting , 2011 .
[43] Guochun Zhao,et al. Metamorphic P–T paths of the Zanhuang amphibolites and metapelites: constraints on the tectonic evolution of the Paleoproterozoic Trans-North China Orogen , 2011 .
[44] R. Carlson,et al. Implications of the Nuvvuagittuq Greenstone Belt for the Formation of Earth's Early Crust , 2011 .
[45] T. Kusky. Comparison of results of recent seismic profiles with tectonic models of the North China craton , 2011 .
[46] Y. Chong. The age and petrogenesis of the Xuting granite in the Zanhuang Complex,Hebei Province:Constraints on the structural evolution of the Trans-North China Orogen,North China Craton , 2011 .
[47] Xia Ling-ling. Zircon U-Pb dating of metabasic rocks in the Zanhuang metamorphic complex and its geological significance , 2011 .
[48] Xian‐Hua Li,et al. Zircon U–Pb and Hf isotopic study of Mesozoic felsic rocks from eastern Zhejiang, South China: Geochemical contrast between the Yangtze and Cathaysia blocks , 2011 .
[49] Dunyi Liu,et al. Juvenile magmatism and crustal recycling at the end of the Neoarchean in Western Shandong Province, North China Craton: Evidence from SHRIMP zircon dating , 2010, American Journal of Science.
[50] Yigang Xu,et al. Geochemistry of TTG and TTG-like gneisses from Lushan-Taihua complex in the southern North China Craton: Implications for late Archean crustal accretion , 2010 .
[51] M. Santosh. Assembling North China Craton within the Columbia supercontinent: The role of double-sided subduction , 2010 .
[52] Geng Yuan. Late Neoarchean to Early Paleoproterozoic magmatic events and tectonothermal systems in the North China Craton , 2010 .
[53] Li Cheng. Revisiting the new classification of granitic rocks based on whole-rock Sr and Yb contents:Index , 2010 .
[54] Shan Gao,et al. Continental and Oceanic Crust Recycling-induced Melt^Peridotite Interactions in the Trans-North China Orogen: U^Pb Dating, Hf Isotopes and Trace Elements in Zircons from Mantle Xenoliths , 2010 .
[55] P. Monié,et al. The Zanhuang Massif, the second and eastern suture zone of the Paleoproterozoic Trans-North China Orogen , 2009 .
[56] W. Griffin,et al. Granitoid events in space and time: Constraints from igneous and detrital zircon age spectra , 2009 .
[57] Dunyi Liu,et al. Combined U–Pb, hafnium and oxygen isotope analysis of zircons from meta-igneous rocks in the southern North China Craton reveal multiple events in the Late Mesoarchean–Early Neoarchean , 2009 .
[58] Wang Yusheng. Early Precambrian Crustal Evolution in the Dengfeng Area,Henan Province(eastern China):Constraints from Geochemistry and SHRIMP U-Pb Zircon Dating , 2009 .
[59] Guochun Zhao. Metamorphic evolution of major tectonic units in the basement of the North China Craton: Key issues and discussion , 2009 .
[60] J. C. Ordóñez-Calderón,et al. Evidence for HFSE and REE mobility during calc-silicate metasomatism, Mesoarchean (∼3075Ma) Ivisaartoq greenstone belt, southern West Greenland , 2008 .
[61] San-zhong Li,et al. SHRIMP U–Pb zircon geochronology of the Huai'an Complex: Constraints on Late Archean to Paleoproterozoic magmatic and metamorphic events in the Trans-North China Orogen , 2008, American Journal of Science.
[62] P. Kelemen,et al. Geochemistry and magmatic history of eclogites and ultramafic rocks from the Chinese continental scientific drill hole: Subduction and ultrahigh-pressure metamorphism of lower crustal cumulates , 2008 .
[63] Guochun Zhao,et al. Precambrian metamorphic basement and sedimentary cover of the North China Craton: A review , 2008 .
[64] J. C. Ordóñez-Calderón,et al. The origin and compositions of Mesoarchean oceanic crust: Evidence from the 3075 Ma Ivisaartoq greenstone belt, SW Greenland , 2008 .
[65] A. Orlando,et al. Metasomatism induced by alkaline magma in the upper mantle of northern Victoria Land (Antarctica): an experimental approach , 2008 .
[66] Q. Crowley,et al. A-type granite and adakitic magmatism association in Songpan Garze fold belt, eastern Tibetan Plateau: Implication for lithospheric delamination , 2007 .
[67] T. Kusky,et al. Nature of mantle source contributions and crystal differentiation in the petrogenesis of the 1.78 Ga mafic dykes in the central North China craton , 2007 .
[68] Xian‐Hua Li,et al. An early Paleoproterozoic high-K intrusive complex in southwestern Tarim block, NW China: Age, geochemistry, and tectonic implications , 2007 .
[69] P. Monié,et al. Polyorogenic evolution of the Paleoproterozoic Trans-North China Belt, new insights from the in Lüliangshan-Hengshan-Wutaishan and Fuping massifs , 2007 .
[70] L. Jianghai,et al. The Early Precambrian Collisional Orogenic Process and Plate Tectonics: Chance and Challenge of Precambrian Geology , 2006 .
[71] T. Kusky,et al. Geochemical and petrological evidence for a suprasubduction zone origin of Neoarchean (ca. 2.5 Ga) peridotites, central orogenic belt, North China craton , 2006 .
[72] S. Wilde,et al. A hybrid origin for the Qianshan A-type granite, northeast China: Geochemical and Sr–Nd–Hf isotopic evidence , 2006 .
[73] Dunyi Liu,et al. Zircon geochronology and metamorphic evolution of mafic dykes in the Hengshan Complex of northern China: Evidence for late Palaeoproterozoic extension and subsequent high-pressure metamorphism in the North China Craton , 2006 .
[74] Z. Qi. Granite classification on the basis of Sr and Yb contents and its implications. , 2006 .
[75] Peter A. Cawood,et al. Granitoid evolution in the Late Archean Wutai Complex, North China Craton , 2005 .
[76] S. Wilde,et al. Late Archean to Paleoproterozoic evolution of the North China Craton: key issues revisited , 2005 .
[77] Wang Yusheng. New Information from the Surface Outcrops and Deep Crust of Archean Rocks of the North China and Yangtze Blocks, and Qinling-Dabie Orogenic Belt , 2005 .
[78] Yong‐Fei Zheng,et al. Genesis of zircon and its constraints on interpretation of U-Pb age , 2004 .
[79] C. Hawkesworth,et al. Granitic Perspectives on the Generation and Secular Evolution of the Continental Crust , 2003 .
[80] T. Kusky,et al. Paleoproterozoic tectonic evolution of the North China Craton , 2003 .
[81] A. Hofmann,et al. Alteration and geochemical patterns in the 3.7–3.8 Ga Isua greenstone belt, West Greenland , 2003 .
[82] F. Corfu,et al. Atlas of Zircon Textures , 2003 .
[83] U. Schaltegger,et al. The Composition of Zircon and Igneous and Metamorphic Petrogenesis , 2003 .
[84] Jian Zhang,et al. Geological and isotopic geochemical constraints on the evolution of the Fuping Complex, North China Craton , 2002 .
[85] S. Wilde,et al. A-type granites in northeastern China: age and geochemical constraints on their petrogenesis , 2002 .
[86] D. Rubatto. Zircon trace element geochemistry: partitioning with garnet and the link between U–Pb ages and metamorphism , 2002 .
[87] Peter A. Cawood,et al. SHRIMP U-Pb zircon ages of the Fuping Complex: implications for Late Archean to Paleoproterozoic accretion and assembly of the North China Craton , 2002 .
[88] T. Kusky,et al. Archean Podiform Chromitites and Mantle Tectonites in Ophiolitic Mélange, North China Craton: A Record of Early Oceanic Mantle Processes , 2002 .
[89] P. King,et al. Are A‐type granites the high‐temperature felsic granites? Evidence from fractionated granites of the Wangrah Suite , 2001 .
[90] T. Kusky,et al. The Archean Dongwanzi Ophiolite Complex, North China Craton: 2.505-Billion-Year-Old Oceanic Crust and Mantle , 2001, Science.
[91] Peter A. Cawood,et al. Archean blocks and their boundaries in the North China Craton: lithological, geochemical, structural and P–T path constraints and tectonic evolution , 2001 .
[92] Guochun Zhao. Palaeoproterozoic assembly of the North China Craton , 2001, Geological Magazine.
[93] R. Trumbull,et al. A petrogenetic study of anorogenic felsic magmatism in the Cretaceous Paresis ring complex, Namibia: evidence for mixing of crust and mantle-derived components , 2000 .
[94] G. M. Young,et al. Behavior of major and trace elements (including REE) during Paleoproterozoic pedogenesis and diagenetic alteration of an Archean granite near Ville Marie, Québec, Canada , 2000 .
[95] R. Dall’Agnol,et al. An Experimental Study of a Lower Proterozoic A-type Granite from theEastern Amazonian Craton, Brazil , 1999 .
[96] Peter A. Cawood,et al. Thermal evolution of two textural types of mafic granulites in the North China craton: evidence for both mantle plume and collisional tectonics , 1999, Geological Magazine.
[97] D. Weis,et al. Coeval potassic and sodic calc-alkaline series in the post-collisional Hercynian Tanncherfi intrusive complex, northeastern Morocco: Geochemical, isotopic and geochronological evidence , 1998 .
[98] A. Kröner,et al. Single zircon ages from high-grade rocks of the Jianping Complex, Liaoning Province, NE China , 1998 .
[99] A. P. Douce,et al. Generation of metaluminous A-type granites by low-pressure melting of calc-alkaline granitoids , 1997 .
[100] P. King,et al. Characterization and Origin of Aluminous A-type Granites from the Lachlan Fold Belt, Southeastern Australia , 1997 .
[101] J. Beard,et al. Dehydration-melting of Biotite Gneiss and Quartz Amphibolite from 3 to 15 kbar , 1995 .
[102] W. Griffin,et al. THREE NATURAL ZIRCON STANDARDS FOR U‐TH‐PB, LU‐HF, TRACE ELEMENT AND REE ANALYSES , 1995 .
[103] K. Govindaraju,et al. 1994 REPORT ON ZINNWALDITE ZW‐C ANALYSED BY NINETY‐TWO GIT‐IWG MEMBER‐LABORATORIES , 1994 .
[104] A. Kerr,et al. Nd isotope evidence for crust-mantle interaction in the generation of A-type granitoid suites in Labrador, Canada , 1993 .
[105] G. Eby. Chemical subdivision of the A-type granitoids:Petrogenetic and tectonic implications , 1992 .
[106] K. P. Skjerlie,et al. Vapor-absent melting at 10 kbar of a biotite- and amphibole-bearing tonalitic gneiss: Implications for the generation of A-type granites , 1992 .
[107] R. Creaser,et al. A-type granites revisited: Assessment of a residual-source model , 1991 .
[108] G. Eby. The A-type granitoids: A review of their occurrence and chemical characteristics and speculations on their petrogenesis , 1990 .
[109] J. Bédard. Enclaves from the A‐type granite of the Mégantic Complex, White Mountain Magma Series: Clues to granite magmagenesis , 1990 .
[110] Dunyi Liu,et al. Archean crustal evolution in China : U-Pb geochronology of the Qianxi Complex. , 1990 .
[111] W. McDonough,et al. Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes , 1989, Geological Society, London, Special Publications.
[112] J. Middelburg,et al. Chemical processes affecting the mobility of major, minor and trace elements during weathering of granitic rocks , 1988 .
[113] S. Jacobsen,et al. Nd and Sr isotopic variations of Early Paleozoic oceans , 1987 .
[114] J. Whalen,et al. A-type granites: geochemical characteristics, discrimination and petrogenesis , 1987 .
[115] A. J. White,et al. Origin of an A-type granite; experimental constraints , 1986 .
[116] R. Batchelor,et al. Petrogenetic interpretation of granitoid rock series using multicationic parameters , 1985 .
[117] Dunyi Liu,et al. UPb zircon geochronology of late Archaean metamorphic rocks in the Taihangshan—Wutaishan area, North China , 1985 .
[118] W. Collins,et al. Nature and origin of A-type granites with particular reference to southeastern Australia , 1982 .