Strongly Peraluminous Highly Fractionated I-Type Granite from Bangong–Nujiang Metallogenic Belt, Tibet: Implications for Continental Evolution and Evaluation of Economic Potentiality
暂无分享,去创建一个
[1] Bin Lin,et al. Multiple isotopic dating constrains the time framework (Age) of a porphyry system: A case study from the Sangri Cu-Mo deposit, Bangongco-Nujiang metallogenic belt, Tibet, China , 2022, Ore Geology Reviews.
[2] Yang Song,et al. Petrogenesis and Geodynamic Implications of Early Cretaceous (∼130 Ma) Magmatism in the Baingoin Batholith, Central Tibet: Products of Subducting Slab Rollback , 2022, Acta Geologica Sinica - English Edition.
[3] Liang He,et al. Geology and geochronology of the Jinmuguo Mo polymetallic deposit: Implications for the metallogeny of the Bangongco- Nujiang belt of Tibet , 2021, Ore Geology Reviews.
[4] Rongqing Zhang,et al. Genesis of the Cuonadong tin polymetallic deposit in the Tethyan Himalaya: Evidence from geology, geochronology, fluid inclusions and multiple isotopes , 2021 .
[5] Xudong Ma,et al. Timing and origin of the Shesuo skarn Cu-polymetallic deposit in the northern Lhasa subterrane, central Tibet: Implications for Early Cretaceous Cu(Mo) metallogenesis in the Bangong-Nujiang metallogenic belt , 2020 .
[6] Haoruo Wu,et al. Simultaneous growth and reworking of the Lhasa basement: A case study from Early Cretaceous magmatism in the north-central Tibet , 2020 .
[7] Peng Sun,et al. Petrogenesis of Late Early Cretaceous high-silica granites from theBangong–Nujiang suture zone, Central Tibet , 2020 .
[8] Guangming Li,et al. Mineralogy, isotope geochemistry and ore genesis of the miocene Cuonadong leucogranite-related Be-W-Sn skarn deposit in Southern Tibet , 2020 .
[9] L. Ding,et al. Provenance of Lower Cretaceous sedimentary rocks in the northern margin of the Lhasa terrane, Tibet: Implications for the timing of the Lhasa-Qiangtang collision , 2020 .
[10] F. Ayati,et al. Ga-(Nb+Ta)-(Nb/Ta)(Zr/Hf) Ternary Diagram: An Excellent Tool for Discriminating Barren and Ta-Hosting Granite-Pegmatite Systems , 2020, Journal of Earth Science.
[11] Zhenyu Li,et al. Provenance analysis of Cretaceous peripheral foreland basin in central Tibet: Implications to precise timing on the initial Lhasa-Qiangtang collision , 2020, Tectonophysics.
[12] Wei Li,et al. Early Cretaceous sedimentary evolution of the northern Lhasa terrane and the timing of initial Lhasa-Qiangtang collision , 2019, Gondwana Research.
[13] Chengshan Wang,et al. Petrogenesis and tectonic implications of Late Cretaceous highly fractionated I-type granites from the Qiangtang block, central Tibet , 2019, Journal of Asian Earth Sciences.
[14] Zhuang Li,et al. Magmatism and metallogenic mechanism of the Ga’erqiong and Galale Cu-Au deposits in the west central Lhasa subterrane, Tibet: Constraints from geochronology, geochemistry, and Sr-Nd-Pb-Hf isotopes , 2019, Ore Geology Reviews.
[15] Peter A. Cawood,et al. One or Two Early Cretaceous Arc Systems in the Lhasa Terrane, Southern Tibet , 2018 .
[16] T. Ntaflos,et al. Petrogenesis and geodynamic implications of Ediacaran highly fractionated A-type granitoids in the north Arabian-Nubian Shield (Egypt): Constraints from whole-rock geochemistry and Sr-Nd isotopes , 2018 .
[17] Yang Zhang,et al. Petrogenesis of Lingshan highly fractionated granites in the Southeast China: Implication for Nb-Ta mineralization , 2017 .
[18] L. Ding,et al. Provenance of Mesozoic clastic rocks within the Bangong-Nujiang suture zone, central Tibet: Implications for the age of the initial Lhasa-Qiangtang collision , 2017 .
[19] Fawzy F. Basta,et al. Intrusive rocks of the Wadi Hamad Area, North Eastern Desert, Egypt: Change of magma composition with maturity of Neoproterozoic continental island arc and the role of collisional plutonism in the differentiation of arc crust , 2017 .
[20] Fu-guan Wu,et al. Highly fractionated granites: Recognition and research , 2017, Science China Earth Sciences.
[21] You-Lian Li,et al. Petrogenesis of the Huili Paleoproterozoic leucogranite in the Jiaobei Terrane of the North China Craton: A highly fractionated albite granite forced by K-feldspar fractionation , 2017 .
[22] Ming Wang,et al. Late Jurassic adakitic granodiorite in the Dong Co area, northern Tibet: Implications for subduction of the Bangong–Nujiang oceanic lithosphere and related accretion of the Southern Qiangtang terrane , 2016 .
[23] L. Bagas,et al. Zircon U–Pb ages and Sr–Nd–Hf isotopes of the highly fractionated granite with tetrad REE patterns in the Shamai tungsten deposit in eastern Inner Mongolia, China: Implications for the timing of mineralization and ore genesis , 2016 .
[24] Yong‐Fei Zheng,et al. Distinction between S-type and peraluminous I-type granites: Zircon versus whole-rock geochemistry , 2016 .
[25] S. Swapp,et al. Leucogranites of the Teton Range, Wyoming: A record of Archean collisional orogeny , 2016 .
[26] O. Bachmann,et al. Zircon record of the plutonic-volcanic connection and protracted rhyolite melt evolution , 2016 .
[27] R. Tartèse,et al. Nb-Ta fractionation in peraluminous granites: A marker of the magmatic-hydrothermal transition , 2016 .
[28] D. Wyman,et al. Underplating of basaltic magmas and crustal growth in a continental arc: Evidence from Late Mesozoic intermediate–felsic intrusive rocks in southern Qiangtang, central Tibet , 2016 .
[29] Peter A. Cawood,et al. Assembly of the Lhasa and Qiangtang terranes in central Tibet by divergent double subduction , 2016 .
[30] J. G. Shellnutt,et al. Cretaceous ongonites (topaz-bearing albite-rich microleucogranites) from Ongon Khairkhan, Central Mongolia: Products of extreme magmatic fractionation and pervasive metasomatic fluid: Rock interaction , 2015 .
[31] P. Robinson,et al. Paleo-Tethyan evolution of Tibet as recorded in the East Cimmerides and West Cathaysides , 2015 .
[32] F. Gutiérrez,et al. Identifying the crystal graveyards remaining after large silicic eruptions , 2014 .
[33] G. Gehrels,et al. Northern Lhasa thrust belt of central Tibet: Evidence of Cretaceous–early Cenozoic shortening within a passive roof thrust system? , 2014 .
[34] B. Schoene,et al. Short eruption window revealed by absolute crystal growth rates in a granitic magma , 2014 .
[35] Peter A. Cawood,et al. Petrogenesis of early Paleozoic peraluminous granite in the Sibumasu Block of SW Yunnan and diachronous accretionary orogenesis along the northern margin of Gondwana , 2013 .
[36] Lin Ding,et al. Cretaceous to Cenozoic evolution of the northern Lhasa Terrane and the Early Paleogene development of peneplains at Nam Co, Tibetan Plateau , 2013 .
[37] Z. Hou,et al. The origin and pre-Cenozoic evolution of the Tibetan Plateau , 2013 .
[38] Xian‐Hua Li,et al. Petrogenesis of early Yanshanian highly evolved granites in the Longyuanba area, southern Jiangxi Province: Evidence from zircon U-Pb dating, Hf-O isotope and whole-rock geochemistry , 2013, Science China Earth Sciences.
[39] B. Chappell,et al. Peraluminous I-type granites , 2012 .
[40] F. Bea. The sources of energy for crustal melting and the geochemistry of heat-producing elements , 2012 .
[41] G. Stevens,et al. What controls chemical variation in granitic magmas , 2012 .
[42] M. Azer,et al. Post-collisional magmatism in the northern Arabian-Nubian Shield: The geotectonic evolution of the alkaline suite at Gebel Tarbush area, south Sinai, Egypt , 2011 .
[43] Sheng Zhang,et al. Adakitic rocks and destruction of the North China Craton: Evidence from experimental petrology and geochemistry , 2011 .
[44] Thomas Monecke,et al. Unusual rare earth element fractionation in a tin-bearing magmatic-hydrothermal system , 2011 .
[45] Z. Hou,et al. The Lhasa Terrane: Record of a microcontinent and its histories of drift and growth , 2010 .
[46] Yue-heng Yang,et al. Combined chemical separation of Lu, Hf, Rb, Sr, Sm and Nd from a single rock digest and precise and accurate isotope determinations of Lu–Hf, Rb–Sr and Sm–Nd isotope systems using Multi-Collector ICP-MS and TIMS , 2010 .
[47] Fu-Yuan Wu,et al. Geochemical investigation of Early Cretaceous igneous rocks along an east–west traverse throughout the central Lhasa Terrane, Tibet , 2009 .
[48] D. Darbyshire,et al. Sources of post-orogenic calcalkaline magmas : the Arrochar and Garabal Hill-Glen Fyne complexes, Scotland , 2009 .
[49] J. Cole,et al. Sources and evolution of arc magmas inferred from coupled O and Hf isotope systematics of plutonic zircons from the Cretaceous Separation Point Suite (New Zealand) , 2008 .
[50] M. Whitehouse,et al. Plesovice zircon : A new natural reference material for U-Pb and Hf isotopic microanalysis , 2008 .
[51] A. K. Baird,et al. Petrology and tectonics of Phanerozoic continent formation: From island arcs to accretion and continental arc magmatism , 2007 .
[52] C. Macpherson,et al. Amphibole “sponge” in arc crust? , 2007 .
[53] B. Bonin. A-type granites and related rocks: Evolution of a concept, problems and prospects , 2007 .
[54] G. Gehrels,et al. Geological records of the Lhasa-Qiangtang and Indo-Asian collisions in the Nima area of central Tibet , 2007 .
[55] C. Yuan,et al. U-Pb zircon, geochemical and Sr-Nd-Hf isotopic constraints on age and origin of Jurassic I- and A-type granites from central Guangdong, SE China: A major igneous event in response to foundering of a subducted flat-slab? , 2007 .
[56] R. Dall’Agnol,et al. Oxidized, magnetite-series, rapakivi-type granites of Carajás, Brazil: Implications for classification and petrogenesis of A-type granites , 2007 .
[57] T. Monecke,et al. Origin of convex tetrads in rare earth element patterns of hydrothermally altered siliceous igneous rocks from the Zinnwald Sn–W deposit, Germany , 2007 .
[58] F. Bea,et al. Tracking magmatic processes through Zr/Hf ratios in rocks and Hf and Ti zoning in zircons: An example from the Spirit Mountain batholith, Nevada , 2006, Mineralogical Magazine.
[59] M. Thirlwall,et al. Adakites without slab melting: High pressure differentiation of island arc magma, Mindanao, the Philippines , 2006 .
[60] J. Adam,et al. Rutile stability and rutile/melt HFSE partitioning during partial melting of hydrous basalt: Implications for TTG genesis , 2005 .
[61] A. Glazner,et al. Voluminous granitic magmas from common basaltic sources , 2005 .
[62] William L. Griffin,et al. The application of laser ablation-inductively coupled plasma-mass spectrometry to in situ U–Pb zircon geochronology , 2004 .
[63] Yong‐Fei Zheng,et al. Genesis of zircon and its constraints on interpretation of U-Pb age , 2004 .
[64] C. Miller,et al. Hot and cold granites? Implications of zircon saturation temperatures and preservation of inheritance , 2003 .
[65] J. Clemens. S-type granitic magmas—petrogenetic issues, models and evidence , 2003 .
[66] S. Wilde,et al. Highly fractionated I-type granites in NE China (II): isotopic geochemistry and implications for crustal growth in the Phanerozoic , 2003 .
[67] S. Wilde,et al. Highly fractionated I-type granites in NE China (I): geochronology and petrogenesis , 2003 .
[68] F. Corfu,et al. Atlas of Zircon Textures , 2003 .
[69] C. German,et al. Hf isotope ratio analysis using multi-collector inductively coupled plasma mass spectrometry: an evaluation of isobaric interference corrections , 2002 .
[70] H. Keppler,et al. Melt composition control of Zr/Hf fractionation in magmatic processes , 2002 .
[71] S. Wilde,et al. A-type granites in northeastern China: age and geochemical constraints on their petrogenesis , 2002 .
[72] W. Griffin,et al. Zircon chemistry and magma mixing, SE China: In-situ analysis of Hf isotopes, Tonglu and Pingtan igneous complexes , 2002 .
[73] Yixian Wang,et al. Highly evolved juvenile granites with tetrad REE patterns: the Woduhe and Baerzhe granites from the Great Xing'an Mountains in NE China , 2001 .
[74] D. Wyborn,et al. Examples of convective fractionation in high‐temperature granites from the Lachlan Fold Belt , 2001 .
[75] K. Mezger,et al. Calibration of the Lutetium-Hafnium Clock , 2001, Science.
[76] Fuchun Li,et al. Topaz–albite granites and rare-metal mineralization in the Limu District, Guangxi Province, southeast China , 2001 .
[77] Bin Chen,et al. Massive granitoid generation in Central Asia: Nd isotope evidence and implication for continental growth in the Phanerozoic , 2000 .
[78] An Yin,et al. Geologic Evolution of the Himalayan-Tibetan Orogen , 2000 .
[79] R. Macdonald,et al. Two mantle plumes beneath the east African rift system: Sr, Nd and Pb isotope evidence from Kenya Rift basalts. , 2000 .
[80] G. Jenner,et al. Rutile/melt partition coefficients for trace elements and an assessment of the influence of rutile on the trace element characteristics of subduction zone magmas , 2000 .
[81] J. Dostal,et al. Contrasting behaviour of Nb/Ta and Zr/Hf ratios in a peraluminous granitic pluton (Nova Scotia, Canada) , 2000 .
[82] M. Cuney,et al. Ore deposits of the French Massif Central: insight into the metallogenesis of the Variscan collision belt , 1999 .
[83] B. Chappell. Aluminium saturation in I- and S-type granites and the characterization of fractionated haplogranites , 1999 .
[84] W. Irber. Quantification of the lanthanide tetrad effect and its correlation with K/Rb, Eu/Eu*, Sr/Eu, Y/Ho, and Zr/Hf of evolving peraluminous granite suites , 1999 .
[85] R. Solidum,et al. Petrology and geochemistry of Camiguin Island, southern Philippines: insights to the source of adakites and other lavas in a complex arc setting , 1999 .
[86] P. Sylvester. Post-collisional strongly peraluminous granites , 1998 .
[87] P. King,et al. Characterization and Origin of Aluminous A-type Granites from the Lachlan Fold Belt, Southeastern Australia , 1997 .
[88] F. Bea. Residence of REE, Y, Th and U in granites and crustal protoliths : implications for the chemistry of crustal melts , 1996 .
[89] M. Bau. Controls on the fractionation of isovalent trace elements in magmatic and aqueous systems: evidence from Y/Ho, Zr/Hf, and lanthanide tetrad effect , 1996 .
[90] E. Watson,et al. Dehydration melting of metabasalt at 8-32 kbar : Implications for continental growth and crust-mantle recycling , 1995 .
[91] R. Taylor,et al. Geologic and geochemical characteristics of the Yichun Ta-Nb-Li deposit, Jiangxi Province, South China , 1995 .
[92] T. Green. Significance of Nb/Ta as an indicator of geochemical processes in the crust-mantle system , 1995 .
[93] E. Middlemost. Naming materials in the magma/igneous rock system , 1994 .
[94] F. Bea,et al. Mineral/leucosome trace-element partitioning in a peraluminous migmatite (a laser ablation-ICP-MS study) , 1994 .
[95] P. Wyllie,et al. Dehydration-melting of amphibolite at 10 kbar: the effects of temperature and time , 1994 .
[96] R. S. Morrison,et al. Derivation of some A-type magmas by fractionation of basaltic magma: an example from the Padthaway R , 1992 .
[97] W. Hildreth,et al. Modelling the petrogenesis of high Rb/Sr silicic magmas , 1991 .
[98] P. Piccoli,et al. Tectonic discrimination of granitoids , 1989 .
[99] J. Dewey,et al. The tectonic evolution of the Tibetan Plateau , 1988, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.
[100] D. DePaolo. Age dependence of the composition of continental crust: evidence from Nd isotopic variations in granitic rocks , 1988 .
[101] J. Whalen,et al. A-type granites: geochemical characteristics, discrimination and petrogenesis , 1987 .
[102] Alan Bruce Thompson,et al. Pressure—Temperature—Time Paths of Regional Metamorphism I. Heat Transfer during the Evolution of Regions of Thickened Continental Crust , 1984 .
[103] D. DePaolo. Trace element and isotopic effects of combined wallrock assimilation and fractional crystallization , 1981 .
[104] Z. Weihong,et al. Geochronology and petrogenesis of highly fractionated Early Cretaceous granite in Baingoin area, Tibet , 2020 .
[105] Peng Sun,et al. Cretaceous (~100 Ma) high-silica granites in the Gajin area, Central Tibet: Petrogenesis and implications for collision between the Lhasa and Qiangtang Terranes , 2019, Lithos.
[106] Tang Juxing. Mineral resources base investigation and research status of the Tibet Plateau and its adjacent major metallogenic belts , 2019, Acta Petrologica Sinica.
[107] N. Evans,et al. Cretaceous magmatism and metallogeny in the Bangong-Nujiang metallogenic belt, central Tibet: Evidence from petrogeochemistry, zircon U-Pb ages, and Hf-O isotopic compositions , 2017 .
[108] Ming Wang,et al. Origin and tectonic setting of the giant Duolong Cu–Au deposit, South Qiangtang Terrane, Tibet: Evidence from geochronology and geochemistry of Early Cretaceous intrusive rocks , 2017 .
[109] G. Beaudoin,et al. Geochronology and geochemistry of porphyritic intrusions in the Duolong porphyry and epithermal Cu-Au district, central Tibet: Implications for the genesis and exploration of porphyry copper deposits , 2017 .
[110] L. Ding,et al. Zircon U–Pb age and Hf isotopic compositions of Mesozoic granitoids in southern Qiangtang, Tibet: Implications for the subduction of the Bangong–Nujiang Tethyan Ocean , 2017 .
[111] A. Kent,et al. ZIRCON COMPOSITIONAL EVIDENCE FOR SULFUR-DEGASSING FROM ORE-FORMING ARC MAGMAS , 2015 .
[112] Cin-Ty A. Lee,et al. High silica granites: Terminal porosity and crystal settling in shallow magma chambers , 2015 .
[113] Wu Fu,et al. Himalayan leucogranite: Petrogenesis and implications to orogenesis and plateau uplift , 2015 .
[114] Pengtao Yang,et al. Highly fractionated Late Triassic I-type granites and related molybdenum mineralization in the Qinling orogenic belt: Geochemical and U–Pb–Hf and Re–Os isotope constraints , 2014 .
[115] Mlr Key. Progress in the Study of Mineralization in the Bangongco-Nujiang Metallogenic Belt and Some New Recognition , 2014 .
[116] Sui QingLin,et al. Geochemistry,zircon U-Pb geochronology and in-situ Hf isotope of the Maiga batholith in Coqen,Tibet:Constraints on the petrogenesis of the Early Cretaceous granitoids in the central Lhasa Terrane , 2012 .
[117] Gao Shun. The geochronology and geochemistry of intrusive rocks in Bange area: Constraints on the evolution time of the Bangong Lake-Nujiang ocean basin , 2011 .
[118] Qinghai Zhang,et al. Early Cretaceous Gangdese retroarc foreland basin evolution in the Selin Co basin, central Tibet: evidence from sedimentology and detrital zircon geochronology , 2011 .
[119] 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 .
[120] J. Wijbrans,et al. Generation of the Early Cenozoic adakitic volcanism by partial melting of mafic lower crust, Eastern Turkey: Implications for crustal thickening to delamination , 2010 .
[121] M. Key,et al. In situ U-Pb zircon dating using laser ablation-multi ion counting-ICP-MS , 2009 .
[122] Wu Fu. Discussions on the petrogenesis of granites , 2007 .
[123] Z. Tian,et al. Laser ablation-MC-ICP-MS technique for Hf isotope microanalysis of zircon and its geological applications. , 2007 .
[124] L. Qi. Zircon SHRIMP U-Pb age and petrochemical and geochemical features of Mesozoic muscovite monzonitic granite at Ningzhong,Tibet. , 2006 .
[125] Zhu Di. Late Jurassic-Early Cretaceous geodynamic setting in middle-northern Gangdese:New insights from volcanic rocks. , 2006 .
[126] Pan Gui. Spatial-temporal framework of the Gangdese Orogenic Belt and its evolution. , 2006 .
[127] D. Champion,et al. An overview of adakite, tonalite–trondhjemite–granodiorite (TTG), and sanukitoid: relationships and some implications for crustal evolution , 2005 .
[128] Li Cheng. Mesozoic high-Sr, low-Y and low-Sr, low-Y types granitoids in the northern Hebei province: Geochemistry and petrogenesis and its relation to mineralization of gold deposits. , 2004 .
[129] B. Chappell,et al. I- and S-type granites in the Lachlan Fold Belt , 1992, Earth and Environmental Science Transactions of the Royal Society of Edinburgh.
[130] M. Heizler,et al. Geochemistry of highly fractionated I- and S-type granites from the tin-tungsten province of western Tasmania , 1990 .
[131] W. McDonough,et al. Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes , 1989, Geological Society, London, Special Publications.
[132] J. Marcoux,et al. Tectonic environment and geodynamic significance of the Neo-Cimmerian Donqiao ophiolite, Bangong-Nujiang suture zone, Tibet , 1984, Nature.
[133] B. Chappell,et al. Two contrasting granite types , 1974 .