Early-Middle Devonian adakitic magmatism generated by slab retreat in southern West Junggar, NW China: implications for tectonic correlation with central and East Kazakhstan
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S. Guan | Rong Ren | Bo Liu | Bao-Fu Han
[1] B. Windley,et al. Rollback, scissor-like closure of the Mongol-Okhotsk Ocean and formation of an orocline: magmatic migration based on a large archive of age data , 2021, National science review.
[2] Bo Liu,et al. Tracking the Tectonic Evolution of the Junggar-Balkhash Ocean: A Case Study from the Post-Collisional Takergan Pluton in the West Junggar, Xinjiang , 2021, Journal of Earth Science.
[3] Zuopeng Wang,et al. An Early Cambrian plume-induced subduction initiation event within the Junggar Ocean: Insights from ophiolitic mélanges, arc magmatism, and metamorphic rocks , 2020 .
[4] D. Bernoulli,et al. Oxygen isotopes in ophicalcites: an ever-lasting controversy? , 2020, International Journal of Earth Sciences.
[5] K. Degtyarev,et al. Siliceous–volcanic associations of the Northern Balkhash ophiolite Zone (Central Kazakhstan): Biostratigraphy, sedimentation and tectonic evolution in the Middle-Late Ordovician , 2020 .
[6] B. Wan,et al. Devonian arc-related granitoids in the Northwestern Chinese Tianshan, Central Asian Orogenic Belt: implications for the bending of the Kazakhstan Orocline , 2020 .
[7] T. Tsujimori,et al. The Itmurundy Pacific-type orogenic belt in northern Balkhash, central Kazakhstan: Revisited plus first U–Pb age, geochemical and Nd isotope data from igneous rocks , 2020 .
[8] B. Han,et al. Late Carboniferous to Early Permian adakitic rocks and fractionated I‐type granites in the southern West Junggar terrane, NW China: Implications for the final closure of the Junggar–Balkhash Ocean , 2020, Geological Journal.
[9] Hao Li,et al. Constraints on the nature of the basement of the Junggar terrane indicated by the Laba Ordovician continental arc , 2020, International Geology Review.
[10] Bo Liu,et al. Identification of lateral inhomogeneity of arc basement by reconstructing the Late Devonian arc belt in the southwestern Central Asian Orogenic Belt , 2019 .
[11] Zeng-Zhen Wang,et al. Ediacaran to Paleozoic magmatism in West Junggar Orogenic Belt, NW China, and implications for evolution of Central Asian Orogenic Belt , 2019, Lithos.
[12] Junlai Liu,et al. Late Ordovician to early Silurian calc-alkaline magmatism in the Xiemisitai Mountains, northern West Junggar: a response to the subduction of the Junggar-Balkhash Ocean , 2019, International Geology Review.
[13] Lei Zhao,et al. Evolution of the early Paleozoic Hongguleleng–Balkybey Ocean: Evidence from the Hebukesaier ophiolitic mélange in the northern West Junggar, NW China , 2019, Lithos.
[14] Hao Li,et al. Tectonic evolution of the Paleozoic Barluk continental arc, West Junggar, NW China , 2018 .
[15] C. Yuan,et al. Petrogenesis and tectonic implications of early Devonian mafic dike–granite association in the northern West Junggar, NW China , 2018 .
[16] B. Windley,et al. Late Paleozoic to early Triassic multiple roll-back and oroclinal bending of the Mongolia collage in Central Asia , 2017, Earth-Science Reviews.
[17] B. Windley,et al. Collision of the Tacheng block with the Mayile-Barleik-Tangbale accretionary complex in Western Junggar, NW China: Implication for Early-Middle Paleozoic architecture of the western Altaids , 2017, Journal of Asian Earth Sciences.
[18] S. Guan,et al. Linking the southern West Junggar terrane to the Yili Block: Insights from the oldest accretionary complexes in West Junggar, NW China , 2017, Journal of Asian Earth Sciences.
[19] C. Yuan,et al. Geometry, kinematics and tectonic models of the Kazakhstan Orocline, Central Asian Orogenic Belt , 2017 .
[20] C. Yuan,et al. Late Silurian–early Devonian adakitic granodiorite, A-type and I-type granites in NW Junggar, NW China: Partial melting of mafic lower crust and implications for slab roll-back , 2017 .
[21] L. Su,et al. Chronological constraints on the tectonic evolution of the Chinese Tianshan Orogen through detrital zircons from modern and palaeo-river sands , 2017 .
[22] Dunyi Liu,et al. Middle to Late Ordovician arc system in the Kyrgyz Middle Tianshan: From arc-continent collision to subsequent evolution of a Palaeozoic continental margin , 2016 .
[23] Bo Liu,et al. The Cambrian initiation of intra-oceanic subduction in the southern Paleo-Asian Ocean: Further evidence from the Barleik subduction-related metamorphic complex in the West Junggar region, NW China , 2016 .
[24] T. Jiang,et al. Late Devonian radiolarian-bearing siliceous rocks from the Karamay ophiolitic mélange in western Junggar: Implications for the evolution of the Paleo-Asian Ocean , 2016 .
[25] Yue-heng Yang,et al. Middle Paleozoic initial amalgamation and crustal growth in the West Junggar (NW China): Constraints from geochronology, geochemistry and Sr–Nd–Hf–Os isotopes of calc-alkaline and alkaline intrusions in the Xiemisitai-Saier Mountains , 2015 .
[26] C. Yuan,et al. A Tale of Amalgamation of Three Permo-Triassic Collage Systems in Central Asia: Oroclines, Sutures, and Terminal Accretion , 2015 .
[27] P. Shen,et al. A Cambrian intra-oceanic subduction system in the Bozshakol area, Kazakhstan , 2015 .
[28] Q. Wang,et al. Partial melting of thickened continental crust in central Tibet: Evidence from geochemistry and geochronology of Eocene adakitic rhyolites in the northern Qiangtang Terrane , 2015 .
[29] Wei Lin,et al. Toward a unified model of Altaids geodynamics: Insight from the Palaeozoic polycyclic evolution of West Junggar (NW China) , 2015, Science China Earth Sciences.
[30] Lei Zhao,et al. Geochronology and geochemistry of the Cambrian (~518 Ma) Chagantaolegai ophiolite in northern West Junggar (NW China): constraints on spatiotemporal characteristics of the Chingiz–Tarbagatai megazone , 2014 .
[31] W. Xiao,et al. Petrogenesis and tectonic implications of the middle Silurian volcanic rocks in northern West Junggar, NW China , 2014 .
[32] Bo Liu,et al. When did the subduction first initiate in the southern Paleo-Asian Ocean: New constraints from a Cambrian intra-oceanic arc system in West Junggar, NW China , 2014 .
[33] C. Yuan,et al. Geochemistry, zircon U-Pb ages and Lu-Hf isotopes of early Paleozoic plutons in the northwestern Chinese Tianshan: Petrogenesis and geological implications , 2013 .
[34] Chunhua Bai,et al. Distribution of the crustal magnetic anomaly and geological structure in Xinjiang, China , 2013 .
[35] Lei Zhao,et al. Tectonic evolution and continental crust growth of Northern Xinjiang in northwestern China: Remnant ocean model , 2013 .
[36] Lei Zhao,et al. Tectonic entities connection between West Junggar (NW China) and East Kazakhstan , 2013 .
[37] L. Su,et al. Palaeozoic multiphase magmatism at Barleik Mountain, southern West Junggar, Northwest China: implications for tectonic evolution of the West Junggar , 2013 .
[38] Wei Lin,et al. Architecture and evolution of accretionary orogens in the Altaids collage: The early Paleozoic West Junggar (NW China) , 2012, American Journal of Science.
[39] R. Voo,et al. Unraveling the early–middle Paleozoic paleogeography of Kazakhstan on the basis of Ordovician and Devonian paleomagnetic results , 2012 .
[40] Bing Zhang,et al. Geochronology and geochemistry of basaltic rocks from the Sartuohai ophiolitic mélange, NW China: Implications for a Devonian mantle plume within the Junggar Ocean , 2012 .
[41] D. Wyman,et al. Asthenosphere–lithosphere interaction triggered by a slab window during ridge subduction: Trace element and Sr–Nd–Hf–Os isotopic evidence from Late Carboniferous tholeiites in the western Junggar area (NW China) , 2012 .
[42] Ping Shen,et al. Northwestern Junggar Basin, Xiemisitai Mountains, China: A geochemical and geochronological approach , 2012 .
[43] Dunyi Liu,et al. Middle-Late Ordovician arc-type plutonism in the NW Chinese Tianshan: Implication for the accretion of the Kazakhstan continent in Central Asia , 2012 .
[44] Dunyi Liu,et al. Ultramafic–mafic mélange, island arc and post-collisional intrusions in the Mayile Mountain, West Junggar, China: Implications for Paleozoic intra-oceanic subduction–accretion process , 2012 .
[45] Zhaojie Guo,et al. Late Carboniferous collision between the Tarim and Kazakhstan-Yili terranes in the western segment of the South Tian Shan Orogen, Central Asia, and implications for the Northern Xinjiang, western China , 2011 .
[46] W. Xiao,et al. A Devonian to Carboniferous intra-oceanic subduction system in Western Junggar, NW China , 2011 .
[47] Chunming Han,et al. A review of the western part of the Altaids: A key to understanding the architecture of accretionary orogens , 2010 .
[48] Tao Wang,et al. Zircon U–Pb ages and tectonic implications of Paleozoic plutons in northern West Junggar, North Xinjiang, China , 2010 .
[49] C. Yuan,et al. Late Carboniferous high-Mg dioritic dikes in Western Junggar, NW China: Geochemical features, petrogenesis and tectonic implications , 2010 .
[50] C. Yuan,et al. Geochemical, Sr-Nd and zircon U-Pb-Hf isotopic studies of Late Carboniferous magmatism in the West Junggar, Xinjiang: Implications for ridge subduction , 2009 .
[51] D. Wyman,et al. Eocene melting of subducting continental crust and early uplifting of central Tibet: Evidence from central-western Qiangtang high-K calc-alkaline andesites, dacites and rhyolites , 2008 .
[52] D. Wyman,et al. Early Cretaceous adakitic granites in the Northern Dabie Complex, central China: Implications for partial melting and delamination of thickened lower crust , 2007 .
[53] F. Guo,et al. Generation of Palaeocene Adakitic Andesites by Magma Mixing; Yanji Area, NE China , 2007 .
[54] Brian F. Windley,et al. Tectonic models for accretion of the Central Asian Orogenic Belt , 2007, Journal of the Geological Society.
[55] M. Thirlwall,et al. Adakites without slab melting: High pressure differentiation of island arc magma, Mindanao, the Philippines , 2006 .
[56] P. Jian,et al. Petrogenesis of Adakitic Porphyries in an Extensional Tectonic Setting, Dexing, South China: Implications for the Genesis of Porphyry Copper Mineralization , 2006 .
[57] K. Condie. TTGs and adakites: Are they both slab melts? , 2005 .
[58] D. Champion,et al. An overview of adakite, tonalite–trondhjemite–granodiorite (TTG), and sanukitoid: relationships and some implications for crustal evolution , 2005 .
[59] M. Tiepolo,et al. Growth of early continental crust controlled by melting of amphibolite in subduction zones , 2002, Nature.
[60] 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 .
[61] A. Şengör,et al. Evolution of the Altaid tectonic collage and Palaeozoic crustal growth in Eurasia , 1993, Nature.
[62] N. Petford,et al. Generation of sodium-rich magmas from newly underplated basaltic crust , 1993, Nature.
[63] M. Drummond,et al. Derivation of some modern arc magmas by melting of young subducted lithosphere , 1990, Nature.