Post-collisional extension of the South Altun subduction-collision belt, northern Tibetan Plateau: insight from phase equilibria modeling and zircon geochronology of pelitic migmatites
暂无分享,去创建一个
[1] C. Wei,et al. Multi-stage metamorphism of the South Altyn ultrahigh-pressure metamorphic belt, West China: insights into tectonic evolution from continental subduction to arc–backarc extension , 2021, Journal of Petrology.
[2] Peter A. Cawood,et al. Mariana-type ophiolites constrain the establishment of modern plate tectonic regime during Gondwana assembly , 2021, Nature Communications.
[3] M. Frezzotti,et al. The fate of calcareous pelites in collisional orogens , 2020, Journal of Metamorphic Geology.
[4] L. Ding,et al. Structural analysis and tectonic evolution of the western domain of the Eastern Kunlun Range, northwest Tibet , 2020, GSA Bulletin.
[5] M. Searle,et al. Muscovite dehydration melting: Reaction mechanisms, microstructures, and implications for anatexis , 2019, Journal of Metamorphic Geology.
[6] Jie Dong,et al. Ultra high temperature metamorphism of mafic granulites from South Altyn Orogen, West China: A result from the rapid exhumation of deeply subducted continental crust , 2018, Journal of Metamorphic Geology.
[7] Jie Dong,et al. Metamorphic Evolution During Deep Subduction and Exhumation of Continental Crust: Insights from Felsic Granulites in South Altyn Tagh, West China , 2018, Journal of Petrology.
[8] Sheng‐yao Yu,et al. Two contrasting accretion v. collision orogenies: insights from Early Paleozoic polyphase metamorphism in the Altun–Qilian–North Qaidam orogenic system, NW China , 2018, Special Publications.
[9] L. Liu,et al. Evidence of former stishovite in UHP eclogite from the South Altyn Tagh, western China , 2018 .
[10] M. Brown,et al. Secular change in metamorphism and the onset of global plate tectonics , 2018 .
[11] Liang Liu,et al. Discovery of coesite in eclogite from Keqike Jianggalesayi: new evidence for ultrahigh-pressure metamorphism in South Altyn Tagh, northwestern China. , 2017, Science bulletin.
[12] S. Harley. A matter of time: The importance of the duration of UHT metamorphism , 2016 .
[13] Liang Liu,et al. Early Paleozoic granitic magmatism related to the processes from subduction to collision in South Altyn, NW China , 2015, Science China Earth Sciences.
[14] M. Kohn,et al. The fall and rise of metamorphic zircon , 2015 .
[15] R. Powell,et al. The effect of Mn on mineral stability in metapelites revisited: new a–x relations for manganese‐bearing minerals , 2014 .
[16] Sheng‐yao Yu,et al. Combined rutile-zircon thermometry and U-Pb geochronology: New constraints on Early Paleozoic HP/UHT granulite in the south Altyn Tagh, north Tibet, China , 2014 .
[17] M. Kohn. Himalayan Metamorphism and Its Tectonic Implications , 2014 .
[18] R. Powell,et al. New mineral activity–composition relations for thermodynamic calculations in metapelitic systems , 2014 .
[19] C. Beaumont,et al. On the origin of orogens , 2013 .
[20] M. Searle,et al. Integrated pressure–temperature–time constraints for the Tso Morari dome (Northwest India): implications for the burial and exhumation path of UHP units in the western Himalaya , 2013 .
[21] Shefa Chen,et al. Provenance and ages of the Altyn Complex in Altyn Tagh: Implications for the early Neoproterozoic evolution of northwestern China , 2013 .
[22] 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 .
[23] C. Clark,et al. New constraints on UHT metamorphism in the Eastern Ghats Province through the application of phase equilibria modelling and in situ geochronology , 2011 .
[24] C. Clark,et al. How Does the Continental Crust Get Really Hot , 2011 .
[25] Roger Powell,et al. An improved and extended internally consistent thermodynamic dataset for phases of petrological interest, involving a new equation of state for solids , 2011 .
[26] M. Brown,et al. Paired metamorphic belts revisited , 2010 .
[27] C. Clark,et al. Thermobarometric modelling of zircon and monazite growth in melt‐bearing systems: examples using model metapelitic and metapsammitic granulites , 2008 .
[28] Chuan-Lin Zhang,et al. Geological and geochronological evidence for the Precambrian evolution of the Tarim Craton and surrounding continental fragments , 2008 .
[29] L. Liu,et al. Evidence of former stishovite in metamorphosed sediments, implying subduction to > 350 km , 2007 .
[30] C. Hawkesworth,et al. Linking granulites, silicic magmatism, and crustal growth in arcs: Ion microprobe (zircon) U-Pb ages from the Hidaka metamorphic belt, Japan , 2007 .
[31] N. Kelly,et al. Zircon Behaviour and the Thermal Histories of Mountain Chains , 2007 .
[32] M. Brown,et al. Duality of thermal regimes is the distinctive characteristic of plate tectonics since the Neoarchean , 2006 .
[33] 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 .
[34] Jingsui Yang,et al. A New HP/LT Metamorphic Terrane in the Northern Altyn Tagh, Western China , 2005 .
[35] D. Henry,et al. The Ti-saturation surface for low-to-medium pressure metapelitic biotites: Implications for geothermometry and Ti-substitution mechanisms , 2005 .
[36] M. Handy,et al. Experimental deformation of partially melted granite revisited: implications for the continental crust , 2005 .
[37] William L. Griffin,et al. The application of laser ablation-inductively coupled plasma-mass spectrometry to in situ U–Pb zircon geochronology , 2004 .
[38] I. Katayama,et al. Global UHP Metamorphism and Continental Subduction/Collision: The Himalayan Model , 2004 .
[39] R. Korsch,et al. TEMORA 1: a new zircon standard for Phanerozoic U–Pb geochronology , 2003 .
[40] C. Chopin. Ultrahigh-pressure metamorphism: tracing continental crust into the mantle , 2003 .
[41] G. Gehrels,et al. Detrital-zircon geochronology of the northeastern Tibetan plateau , 2003 .
[42] R. Powell,et al. Activity–composition relations for phases in petrological calculations: an asymmetric multicomponent formulation , 2003 .
[43] D. Pattison. Temperatures of Granulite-facies Metamorphism: Constraints from Experimental Phase Equilibria and Thermobarometry Corrected for Retrograde Exchange , 2003 .
[44] U. Schaltegger,et al. The Composition of Zircon and Igneous and Metamorphic Petrogenesis , 2003 .
[45] W. Collins. Hot orogens, tectonic switching, and creation of continental crust , 2002 .
[46] I. Katayama,et al. Ultrahigh-pressure mineral inclusions in zircons from gneissic core samples of the Chinese Continental Scientific Drilling Site in eastern China , 2002 .
[47] Z. Jianxin,et al. Evidence for UHP metamorphism of eclogites from the Altun Mountains , 2002 .
[48] D. Rubatto. Zircon trace element geochemistry: partitioning with garnet and the link between U–Pb ages and metamorphism , 2002 .
[49] R. Powell,et al. The interpretation of reaction textures in Fe‐rich metapelitic granulites of the Musgrave Block, central Australia: constraints from mineral equilibria calculations in the system K2O–FeO–MgO–Al2O3–SiO2–H2O–TiO2–Fe2O3 , 2002 .
[50] L. M. Giannini,et al. Ostwald ripening as a possible mechanism for zircon overgrowth formation during anatexis: theoretical constraints, a numerical model, and its application to pelitic migmatites of the Tickalara Metamorphics, northwestern Australia , 2001 .
[51] Jingsui Yang,et al. Petrology and geochronology of eclogites from the western segment of the Altyn Tagh , 2001 .
[52] D. Waters. The significance of prograde and retrograde quartz-bearing intergrowth microstructures in partially melted granulite-facies rocks , 2001 .
[53] Worley,et al. The effect of TiO2 and Fe2O3 on metapelitic assemblages at greenschist and amphibolite facies conditions: mineral equilibria calculations in the system K2O–FeO–MgO–Al2O3–SiO2–H2O–TiO2–Fe2O3 , 2000 .
[54] L. P. Black,et al. Metamorphic zircon formation by solid‐state recrystallization of protolith igneous zircon , 2000 .
[55] Jingsui Yang,et al. Discovery of khondalite series from the western segment of Altyn Tagh and their petrological and geochronological studies , 2000 .
[56] D. Gebauer,et al. Internal morphology, habit and U-Th-Pb microanalysis of amphibolite-to-granulite facies zircons: geochronology of the Ivrea Zone (Southern Alps) , 1999 .
[57] Liang Liu,et al. Recognition and implication of eclogite in the western Altun Mountains, Xinjiang , 1997 .
[58] M. Roberts,et al. Do U-Pb zircon ages from granulites reflect peak metamorphic conditions? , 1997 .
[59] W. Griffin,et al. THREE NATURAL ZIRCON STANDARDS FOR U‐TH‐PB, LU‐HF, TRACE ELEMENT AND REE ANALYSES , 1995 .
[60] K. Condie. Chemical composition and evolution of the upper continental crust: Contrasting results from surface samples and shales , 1993 .
[61] J. Ague. Evidence for major mass transfer and volume strain during regional metamorphism of pelites , 1991 .
[62] R. Powell,et al. An internally consistent dataset with uncertainties and correlations: 3. Applications to geobarometry, worked examples and a computer program , 1988 .
[63] R. Korotev,et al. The 'North American shale composite' - Its compilation, major and trace element characteristics , 1984 .
[64] L. Silver,et al. Uranium-Lead Isotopic Variations in Zircons: A Case Study , 1963, The Journal of Geology.
[65] Sheng‐yao Yu,et al. Early Paleozoic polyphase metamorphism in northern Tibet, China , 2017 .
[66] 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 .
[67] L. Liu,et al. Petrology, Geochemistry, Geochronology, and Metamorphic Evolution of Garnet Peridotites from South Altyn Tagh UHP Terrane, Northwestern China: Records Related to Crustal Slab Subduction and Exhumation History , 2011 .
[68] Donna L. Whitney,et al. Abbreviations for names of rock-forming minerals , 2010 .
[69] K. Ludwig. User's Manual for Isoplot 3.00 - A Geochronological Toolkit for Microsoft Excel , 2003 .
[70] Yuan Gui-bang. Geochronology of Early Precambrian Magmatic Activities in Aketashitage, East Altyn Tagh , 2003 .
[71] E. Sawyer. Criteria for the recognition of partial melting , 1999 .
[72] W. Ridley,et al. Applications of Microanalytical Techniques to Understanding Mineralizing Processes , 1998 .
[73] W. McDonough,et al. Chemical and isotopic systematics of oceanic basalts: implications for mantle composition and processes , 1989, Geological Society, London, Special Publications.