Reappraisal of the petrogenetic processes of Neoproterozoic granitoids in the Altyn Tagh, NW China: Implications for reconstruction of the Qaidam block in Rodinia
暂无分享,去创建一个
L. Liu | Deqing Ma | Jiang-bo Hao | Hang Li | J. Meert | Yong-sheng Gai | Hanning Wu | Shuai Zhang | Lei Kang | Xiao-Jing Sun | Zunpu Yu | Chao Wang | Yuting Cao | Wenqiang Yang | Zun-pu Yu
[1] M. Ganerød,et al. Paleomagnetism and 40Ar/39Ar geochronology of Meso-Neoproterozoic rocks from southwest Norway. Implications for magnetic remanence ages and the paleogeography of Baltica in a Rodinia supercontinent context , 2022, Precambrian Research.
[2] M. Whitehouse,et al. Tracing the Sveconorwegian orogen into the Caledonides of West Norway: Geochronological and isotopic studies on magmatism and migmatization , 2021, Precambrian Research.
[3] P. Fiannacca,et al. Crustal melting vs. fractionation of basaltic magmas: Part 2, Attempting to quantify mantle and crustal contributions in granitoids , 2021 .
[4] Yong‐Fei Zheng,et al. The production of granitic magmas through crustal anatexis at convergent plate boundaries , 2021 .
[5] Danling Chen,et al. Grenvillian and early Paleozoic polyphase metamorphism recorded by eclogite and host garnet mica schist in the North Qaidam orogenic belt , 2021, Geoscience Frontiers.
[6] M. Wingate,et al. Age and composition of Neoproterozoic diabase dykes in North Altyn Tagh, northwest China: implications for Rodinia break-up , 2020, International Geology Review.
[7] B. Sørensen,et al. Multi-isotope tracing of the 1.3–0.9 Ga evolution of Fennoscandia; crustal growth during the Sveconorwegian orogeny , 2020, Gondwana Research.
[8] Liang Liu,et al. Episodic Neoproterozoic extension-related magmatism in the Altyn Tagh, NW China: implications for extension and breakup processes of Rodinia supercontinent , 2020, International Geology Review.
[9] K. Yi,et al. The Sveconorwegian orogeny , 2020 .
[10] C. Kirkland,et al. Zircon fingerprint of the Neoproterozoic North Atlantic: Perspectives from East Greenland , 2020, Precambrian Research.
[11] I. Campbell,et al. S-type granites: Their origin and distribution through time as determined from detrital zircons , 2020 .
[12] C. Wei,et al. Newly discovered Neoproterozoic A‐type granite in the Altun orogenic belt: A record of the initial breakup of Rodinia , 2020, Geological Journal.
[13] San-zhong Li,et al. Early Neoproterozoic magmatic imprints in the Altun-Qilian-Kunlun region of the Qinghai-Tibet Plateau: Response to the assembly and breakup of Rodinia supercontinent , 2019 .
[14] B. Sørensen,et al. Data for: Tectonomagmatic evolution of the Sveconorwegian Orogen recorded in the chemical and isotopic compositions of 1070 – 920 Ma Sveconorwegian granitoids , 2019 .
[15] T. Rivers,et al. Protracted late- to post-Ottawan cooling and exhumation of the mid crust in a Grenvillian inlier, central Appalachians, USA – New data and a new hypothesis , 2019, Precambrian Research.
[16] J. Moyen,et al. Whole-rock geochemical modelling of granite genesis: the current state of play , 2019, Special Publications.
[17] San-zhong Li,et al. Geological reconstructions of the East Asian blocks: From the breakup of Rodinia to the assembly of Pangea , 2018, Earth-Science Reviews.
[18] J. Vervoort,et al. Constraints on the timing and duration of orogenic events by combined Lu–Hf and Sm–Nd geochronology: An example from the Grenville orogeny , 2018, Earth and Planetary Science Letters.
[19] Yunpeng Dong,et al. Zircon U–Pb geochronology and Hf isotope of granitoids in East Kunlun: Implications for the Neoproterozoic magmatism of Qaidam Block, Northern Tibetan Plateau , 2018, Precambrian Research.
[20] S. Wilde,et al. Remnants of Eoarchean continental crust derived from a subducted proto-arc , 2018, Science Advances.
[21] P. Ulmer,et al. Arc crust formation and differentiation constrained by experimental petrology , 2018, American Journal of Science.
[22] A. Yin,et al. Late Cenozoic magmatic inflation, crustal thickening, and >2 km of surface uplift in central Tibet , 2018 .
[23] A. Yin,et al. Balkatach hypothesis: A new model for the evolution of the Pacific, Tethyan, and Paleo-Asian oceanic domains , 2017 .
[24] Qing-guo Zhai,et al. The Shimian ophiolite in the western Yangtze Block, SW China: Zircon SHRIMP U-Pb ages, geochemical and Hf-O isotopic characteristics, and tectonic implications , 2017 .
[25] Peter A. Cawood,et al. Laurentia-Baltica-Amazonia relations during Rodinia assembly , 2017 .
[26] V. Gardien,et al. Collision vs. subduction-related magmatism: two contrasting ways of granite formation and implications for crustal growth , 2017 .
[27] N. Roberts,et al. Linking orogenesis across a supercontinent: the Grenvillian and Sveconorwegian margins on Rodinia , 2017 .
[28] Fu-guan Wu,et al. Highly fractionated granites: Recognition and research , 2017, Science China Earth Sciences.
[29] V. Gardien,et al. Protracted, coeval crust and mantle melting during Variscan late-orogenic evolution: U–Pb dating in the eastern French Massif Central , 2017, International Journal of Earth Sciences.
[30] Lifei Zhang,et al. The multi-stage tectonic evolution of the Xitieshan terrane, North Qaidam orogen, western China: From Grenville-age orogeny to early-Paleozoic ultrahigh-pressure metamorphism , 2017 .
[31] Yunpeng Dong,et al. The 1.0 Ga S–type granite in the East Kunlun Orogen, Northern Tibetan Plateau: Implications for the Meso– to Neoproterozoic tectonic evolution , 2016 .
[32] Yong‐Fei Zheng,et al. Continental versus oceanic subduction zones , 2016 .
[33] I. Nicholls,et al. The Tynong pluton, its mafic synplutonic sheets and igneous microgranular enclaves: the nature of the mantle connection in I-type granitic magmas , 2016, Contributions to Mineralogy and Petrology.
[34] Yunpeng Dong,et al. Tectono-thermal events in East Kunlun, Northern Tibetan Plateau: Evidence from zircon U–Pb geochronology , 2016 .
[35] P. DeCelles,et al. Tracking changes in crustal thickness during orogenic evolution with Sr/Y: An example from the North American Cordillera , 2015 .
[36] N. Roberts,et al. The structural, metamorphic and magmatic evolution of Mesoproterozoic orogens , 2015 .
[37] Liang Liu,et al. Recognition and tectonic implications of an extensive Neoproterozoic volcano-sedimentary rift basin along the southwestern margin of the Tarim Craton, northwestern China , 2015 .
[38] J. McLelland,et al. Tectonic Evolution of the Adirondack Mountains and Grenville Orogen Inliers within the USA , 2013 .
[39] Xilin Zhao,et al. The Grenvillian orogeny in the Altun–Qilian–North Qaidam mountain belts of northern Tibet Plateau: Constraints from geochemical and zircon U–Pb age and Hf isotopic study of magmatic rocks , 2013 .
[40] Shefa Chen,et al. Provenance and ages of the Altyn Complex in Altyn Tagh: Implications for the early Neoproterozoic evolution of northwestern China , 2013 .
[41] Dunyi Liu,et al. Mesoproterozoic (Grenville-age) terranes in the Kyrgyz North Tianshan: Zircon ages and Nd–Hf isotopic constraints on the origin and evolution of basement blocks in the southern Central Asian Orogen , 2013 .
[42] Xian‐Hua Li,et al. Grenville-age orogenesis in the Qaidam-Qilian block: The link between South China and Tarim , 2012 .
[43] L. Liu,et al. Geochronology of multi-stage metamorphic events: Constraints on episodic zircon growth from the UHP eclogite in the South Altyn, NW China , 2012 .
[44] Dunyi Liu,et al. The amphibolite-facies metamorphosed mafic rocks from the Maxianshan area, Qilian block, NW China: A record of early Neoproterozoic arc magmatism , 2012 .
[45] Xiaoning Zhang,et al. Neoproterozoic accretionary tectonics along the northwestern margin of the Yangtze Block, China: Constraints from zircon U–Pb geochronology and geochemistry , 2012 .
[46] Shi Chao. The material composition and LA-ICP-MS zircon U-Pb age of East-Kunlun tectonic melange in Xiaonanchuan area, Golmud City,Qinghai Province,and its geological significance , 2012 .
[47] W. Bleeker,et al. U-Pb baddeleyite ages, distribution and geochemistry of 925 Ma mafic dykes and 900 Ma sills in the North China craton: Evidence for a Neoproterozoic mantle plume , 2011 .
[48] A. Mišković,et al. Tectonic evolution of western Amazonia from the assembly of Rodinia to its break-up , 2011 .
[49] Guo Jun-feng. Zircon U-Pb Age of Xiaomiao Formation of Proterozoic in the Eastern Section of the East Kunlun Orogenic Belt , 2011 .
[50] W. Cheng. New stratigraphic discovery in Qiashikansayi canal of eastern Altun Mountains , 2011 .
[51] Zhu Xiao-hui. Geochemistry,zircon LA-ICP-MS U-Pb ages and Hf isotopes of Hongliugou moyite from north Altyn Tagh tectonic belt , 2011 .
[52] Zhang Jian. Polyphase tectonothermal events recorded in "metamorphic basement" from the Altyn Tagh, the southeastern margin of the Tarim basin,western China: Constraint from U-Pb zircon geochronology , 2011 .
[53] Xisheng Xu,et al. Petrogenesis and tectonic significance of a Mesozoic granite-syenite-gabbro association from inland South China , 2010 .
[54] Zhang Zhi. SHRIMP U-Pb age of zircons from Suoerkuli rhyolite in the Altyn Tagh mountains and its geological significations , 2010 .
[55] W. Teixeira,et al. A review of the tectonic evolution of the Sunsás belt, SW Amazonian Craton , 2010 .
[56] Å. Johansson. Baltica, Amazonia and the SAMBA connection—1000 million years of neighbourhood during the Proterozoic? , 2009 .
[57] Danling Chen,et al. Petrology and geochronology of HP–UHP rocks from the South Altyn Tagh, northwestern China , 2009 .
[58] W. Chao,et al. P-T path of Early Paleozoic pelitic high-pressure granulite from Danshiiiquan area in Altyn Tagh. , 2009 .
[59] Lü Song. Detrital zircon population of Proterozoic meta- sedimentary strata in the Qinling-Qilian-Kunlun Orogen. , 2009 .
[60] T. Rivers. Assembly and preservation of lower, mid, and upper orogenic crust in the Grenville Province—Implications for the evolution of large hot long-duration orogens , 2008 .
[61] S. Kamo,et al. Proterozoic southward accretion and Grenvillian orogenesis in the interior Grenville Province in eastern Labrador: Evidence from U-Pb geochronological investigations , 2008 .
[62] W. Collins,et al. Geodynamic significance of S-type granites in circum-Pacific orogens , 2008 .
[63] S. Kamo,et al. Geochronology of high‐pressure mafic granulite dykes in SW Sweden: tracking the P–T–t path of metamorphism using Hf isotopes in zircon and baddeleyite , 2008 .
[64] Chuan-Lin Zhang,et al. Geological and geochronological evidence for the Precambrian evolution of the Tarim Craton and surrounding continental fragments , 2008 .
[65] B. Bingen,et al. The East European Craton (Baltica) before and during the assembly of Rodinia , 2008 .
[66] Wang Guocan. GEOCHEMICAL CHARACTERISTICS AND TECTONIC SETTING OF VOLCANIC ROCKS FROM THE WANBAOGOU GROUP IN EAST KUNLUN OROGENIC BELT , 2007 .
[67] Z. Jianxin,et al. Geochemistry of high-grade metamorphic rocks of the North Qaidam mountains and their geological significance , 2006 .
[68] Luo Jinhai. U-Pb Geochronology and Tectonic Setting of the Granitic Gneiss in Jianggaleisayi Eclogite Belt, the Southern Edge of Altyn Tagh , 2006 .
[69] J. Hao,et al. Jinyanshan collisional oroginic belt of the early Paleozoic in the Altun Mountains: evidence from single zircon U-Pb and Ar-40/Ar-39 isotopic dating for the arc magmatite and ophiolitic melange , 2006 .
[70] C. Mattinson,et al. An Early Palaeozoic HP/HT granulite–garnet peridotite association in the south Altyn Tagh, NW China: P–T history and U‐Pb geochronology , 2005 .
[71] Y. Jing. Characteristics of the granitoid complex and its zircon SHRIMP dating at the south margin of the Bashikaogong Basin, North Altun, NW China. , 2005 .
[72] Wang Guo-can. Zircon SHRIMP ages of Precambrian metamorphic basement rocks and their tectonic significance in the eastern Kunlun Mountains, Qinghai Province, China , 2004 .
[73] G. Gehrels,et al. Detrital-zircon geochronology of the northeastern Tibetan plateau , 2003 .
[74] C. Miller,et al. Hot and cold granites? Implications of zircon saturation temperatures and preservation of inheritance , 2003 .
[75] Haibing Li,et al. Evidence for UHP metamorphism of eclogites from the Altun Mountains , 2002 .
[76] Calvin G. Barnes,et al. A Geochemical Classification for Granitic Rocks , 2001 .
[77] M. Schmidt,et al. Melting relations in hydrous systems revisited: application to metapelites, metagreywackes and metabasalts , 2001 .
[78] D. Groves,et al. A New Understanding of the Provinces of the Amazon Craton Based on Integration of Field Mapping and U-Pb and Sm-Nd Geochronology , 2000 .
[79] M. Macambira,et al. Geochronological provinces of the Amazonian Craton , 1999 .
[80] B. Barbarin. A review of the relationships between granitoid types, their origins and their geodynamic environments , 1999 .
[81] B. Chappell. Aluminium saturation in I- and S-type granites and the characterization of fractionated haplogranites , 1999 .
[82] N. Harris,et al. Experimental Constraints on Himalayan Anatexis , 1998 .
[83] N. Harris,et al. Geochemical Constraints on Leucogranite Magmatism in the Langtang Valley, Nepal Himalaya , 1993 .
[84] N. Harris,et al. Trace element modelling of pelite-derived granites , 1992 .
[85] P. Piccoli,et al. Tectonic discrimination of granitoids , 1989 .
[86] P. Wyllie. Constraints imposed by experimental petrology on possible and impossible magma sources and products , 1984, Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences.
[87] T. M. Harrison,et al. Zircon saturation revisited: temperature and composition effects in a variety of crustal magma types , 1983 .