Regional UHT metamorphism with widespread, primary CO2-rich cordierite in the Bakhuis Granulite Belt, Surinam: A feldspar thermometry study
暂无分享,去创建一个
[1] C. Talavera,et al. Sapphirine-bearing Fe-rich granulites in the SW Siberian craton (Angara-Kan block): Implications for Paleoproterozoic ultrahigh-temperature metamorphism , 2018 .
[2] M. Brown,et al. Secular change in metamorphism and the onset of global plate tectonics , 2018 .
[3] K. Ouzegane,et al. Ternary feldspar thermometry of Paleoproterozoic granulites from In-Ouzzal terrane (Western Hoggar, southern Algeria) , 2017 .
[4] S. Harley. A matter of time: The importance of the duration of UHT metamorphism , 2016 .
[5] P. Mason,et al. Charnockites and UHT metamorphism in the Bakhuis Granulite Belt, western Suriname : Evidence for two separate UHT events , 2015 .
[6] M. Hand,et al. On ultrahigh temperature crustal metamorphism: phase equilibria, trace element thermometry, bulk composition, heat sources, timescales and tectonic settings , 2015 .
[7] C. Clark,et al. Taking the temperature of Earth’s hottest crust , 2014 .
[8] R. Powell,et al. A new thermodynamic model for sapphirine: calculated phase equilibria in K2O–FeO–MgO–Al2O3–SiO2–H2O–TiO2–Fe2O3 , 2014 .
[9] A. Gerdes,et al. Sveconorwegian Mid-crustal Ultrahigh-temperature Metamorphism in Rogaland, Norway: U–Pb LA-ICP-MS Geochronology and Pseudosections of Sapphirine Granulites and Associated Paragneisses , 2013 .
[10] M. Santosh,et al. Paleoproterozoic granulites from Heling'er: Implications for regional ultrahigh-temperature metamorphism in the North China Craton , 2012 .
[11] U. Altenberger,et al. The Garzón Massif, Colombia-a new ultrahigh-temperature metamorphic complex in the Early Neoproterozoic of northern South America , 2012, Mineralogy and Petrology.
[12] J. H. Stout,et al. Stability of sapphirine + quartz in the oxidized rocks of the Wilson Lake terrane, Labrador: calculated equilibria in NCKFMASHTO , 2012 .
[13] Jing-hui Guo,et al. Application of the two-feldspar geothermometer to ultrahigh-temperature (UHT) rocks in the Khondalite belt, North China craton and its implications , 2011 .
[14] Zhihong Wang,et al. FELDSPAR THERMOMETRY OF GRENVILLIAN-AGE UHT MIGMATITES, MOLLENDO–CAMANA BLOCK, SOUTHERN PERU , 2010 .
[15] R. Powell,et al. Influence of ferric iron on the stability of mineral assemblages , 2010 .
[16] K. Savko,et al. Feldspar thermometry of ultrahigh-temperature (≥ 1000°C) metapelites from the voronezh crystalline massif (Kursk-Besedino Granulite Block) , 2009 .
[17] M. Santosh,et al. Ultrahigh-temperature metamorphism and decompression history of sapphirine granulites from Rajapalaiyam, southern India: implications for the formation of hot orogens during Gondwana assembly , 2009, Geological Magazine.
[18] M. Santosh,et al. CO2 windows from mantle to atmosphere: Models on ultrahigh-temperature metamorphism and speculations on the link with melting of snowball Earth , 2008 .
[19] S. Harley. Refining the P–T records of UHT crustal metamorphism , 2008 .
[20] K. Das,et al. Exsolution textures in orthopyroxene in aluminous granulites as indicators of UHT metamorphism: New evidence from the Eastern Ghats Belt, India , 2006 .
[21] T. Hokada,et al. Feldspar in felsic orthogneiss as indicator for UHT crustal processes , 2006 .
[22] M. Santosh,et al. Ultrahigh-temperature metamorphism in the Achankovil Zone: Implications for the correlation of crustal blocks in southern India , 2006 .
[23] D. Kelsey. Ultrahigh-temperature crustal metamorphism , 2006 .
[24] M. Arima,et al. Ultrahigh-Temperature Metamorphism in the Palni Hills, South India: Insights from Feldspar Thermometry and Phase Equilibria , 2006 .
[25] R. Powell,et al. Does ternary feldspar constrain the metamorphic conditions of high‐grade meta‐igneous rocks? Evidence from orthopyroxene granulites, Bohemian Massif , 2005 .
[26] A. Benisek,et al. New developments in two-feldspar thermometry , 2004 .
[27] M. Santosh,et al. First Report of Sapphirine+Quartz Assemblage from Southern India: Implications for Ultrahigh-temperature Metamorphism , 2004 .
[28] S. Harley. Extending our understanding of Ultrahigh temperature crustal metamorphism , 2004 .
[29] T. Miyano,et al. Ultrahigh-temperature metamorphism of the Southern Marginal Zone of the Archean Limpopo Belt, South Africa , 2004 .
[30] P. Thompson,et al. The influence of cordierite on melting and mineral-melt equilibria in ultra-high-temperature metamorphism , 2004, Earth and Environmental Science Transactions of the Royal Society of Edinburgh.
[31] A. Yamaguchi,et al. SHRIMP and electron microprobe chronology of UHT metamorphism in the Napier Complex, East Antarctica: implications for zircon growth at >1,000 °C , 2004 .
[32] P. O'Brien,et al. High‐pressure granulites: formation, recovery of peak conditions and implications for tectonics , 2003 .
[33] James A. D. Connolly,et al. An automated strategy for calculation of phase diagram sections and retrieval of rock properties as a function of physical conditions , 2002 .
[34] T. Hokada. Letter. Feldspar thermometry in ultrahigh-temperature metamorphic rocks: Evidence of crustal metamorphism attaining ~1100 °C in the Archean Napier Complex, East Antarctica , 2001 .
[35] R. Powell,et al. Calculating phase diagrams involving solid solutions via non‐linear equations, with examples using THERMOCALC , 1998 .
[36] R. Berman,et al. A new garnet-orthopyroxene thermometer based on reversed Al2O3 solubility in FeO-Al2O3-SiO2 orthopyroxene , 1997 .
[37] G. Kumar,et al. Dehydration—Melting Phenomena in Leptynitic Gneisses and the Generation of Leucogranites: a Case Study from the Kerala Khondalite Belt, Southern India , 1996 .
[38] M. Guiraud,et al. Corundum-quartz-bearing assemblage in the Ihouhaouene area (In Ouzzal, Algeria) , 1996 .
[39] H. Nekvasil,et al. SOLVCALC: an interactive graphics program package for calculating the ternary feldspar solvus and for two-feldspar geothermometry , 1994 .
[40] J. Schumacher. Empirical ferric iron corrections: necessity, assumptions, and effects on selected geothermobarometers , 1991, Mineralogical Magazine.
[41] M. Fuhrman,et al. Ternary-feldspar modeling and thermometry , 1988 .
[42] R. Powell,et al. Metamorphic evolution of aluminous granulites from Labwor Hills, Uganda , 1987 .
[43] B. Hensen. Theoretical phase relations involving cordierite and garnet revisited: the influence of oxygen fugacity on the stability of sapphirine and spinel in the system Mg-Fe-Al-Si-O , 1986 .
[44] D. Green,et al. Garnet–orthopyroxene barometry for granulites and peridotites , 1982, Nature.
[45] T. Armbruster,et al. Very high CO2 cordierite from Norwegian Lapland: Mineralogy, petrology, and carbon isotopes , 1982 .
[46] E. Klein,et al. Surinamite, a new Mg-Al silicate from the Bakhuis Mountains, western Surinam; I, Description, occurrence, and conditions of formation , 1976 .
[47] E. Verdurmen,et al. Isotopic Ages of the Trans-Amazonian Acidic Magmatism and the Nickerie Metamorphic Episode in the Precambrian Basement of Suriname, South America , 1971 .
[48] Donna L. Whitney,et al. Abbreviations for names of rock-forming minerals , 2010 .
[49] M. Santosh,et al. CO2 flushing: A plate tectonic perspective , 2008 .
[50] R. Berman. winTWQ (version 2.3): a software package for performing internally-consistent thermobarometric calculations , 2007 .
[51] LrNo. l T. Er,et al. Ternary feldspar experiments and thermodynamic models , 2007 .
[52] J. H. Stout,et al. Low-variance sapphirine-bearing assemblages from Wilson Lake, Grenville Province of Labrador , 2004 .
[53] S. Harley. On the occurrence and characterization of ultrahigh-temperature crustal metamorphism , 1998, Geological Society, London, Special Publications.
[54] F. Spear. Metamorphic phase equilibria and pressure-temperature-time paths , 1993 .
[55] B. Hensen,et al. Graphical analysis of P—T—X relations in granulite facies metapelites , 1990 .
[56] R. Powell,et al. Sapphirine and spinel phase relationships in the system FeO-MgO-Al2O3-SiO2-TiO2-O2 in the presence of quartz and hypersthene , 1988 .
[57] J. B. Higgins,et al. Sapphirine I , 1979 .