Mafic High‐Pressure Rocks Are Preferentially Exhumed From Warm Subduction Settings
暂无分享,去创建一个
[1] C. Thieulot,et al. The effect of obliquity on temperature in subduction zones: insights from 3-D numerical modeling , 2018, Solid Earth.
[2] M. Brown,et al. Secular change in metamorphism and the onset of global plate tectonics , 2018 .
[3] J. Hunen,et al. Numerical models of the magmatic processes induced by slab breakoff. , 2017 .
[4] M. Billen,et al. Coupled effects of phase transitions and rheology in 2‐D dynamical models of subduction , 2017 .
[5] G. Abers,et al. The cold and relatively dry nature of mantle forearcs in subduction zones , 2017 .
[6] Kelin Wang,et al. Rheological separation of the megathrust seismogenic zone and episodic tremor and slip , 2017, Nature.
[7] J. Nakajima,et al. Depth variations in seismic velocity in the subducting crust: Evidence for fluid‐related embrittlement for intermediate‐depth earthquakes , 2017 .
[8] A. Levander,et al. Seismic evidence for a cold serpentinized mantle wedge beneath Mount St Helens , 2016, Nature Communications.
[9] D. Rasmussen,et al. Slab melting and magma formation beneath the southern Cascade arc , 2016 .
[10] L. Crispini,et al. Carbonation of subduction-zone serpentinite (high-pressure ophicarbonate; Ligurian Western Alps) and implications for the deep carbon cycling , 2016 .
[11] A. Stepanov,et al. Special Collection: Advances in Ultrahigh-Pressure Metamorphism: Contrasting P-T paths within the Barchi-Kol UHP terrain (Kokchetav Complex): Implications for subduction and exhumation of continental crust , 2016 .
[12] G. Abers,et al. A MATLAB toolbox and Excel workbook for calculating the densities, seismic wave speeds, and major element composition of minerals and rocks at pressure and temperature , 2016 .
[13] T. Pettke,et al. Fluid-related inclusions in Alpine high-pressure peridotite reveal trace element recycling during subduction-zone dehydration of serpentinized mantle (Cima di Gagnone, Swiss Alps) , 2015 .
[14] M. Kohn,et al. The Global Range of Subduction Zone Thermal Structures from Exhumed Blueschists and Eclogites: Rocks Are Hotter than Models , 2015 .
[15] G. Steinle‐Neumann,et al. Thermal effects of variable material properties and metamorphic reactions in a three‐component subducting slab , 2015 .
[16] J. Nakajima,et al. Mantle wedge flow pattern and thermal structure in Northeast Japan: Effects of oblique subduction and 3-D slab geometry , 2015 .
[17] W. R. Buck,et al. Eduction, extension, and exhumation of ultrahigh‐pressure rocks in metamorphic core complexes due to subduction initiation , 2015 .
[18] P. Wallace,et al. Slab melting beneath the Cascade Arc driven by dehydration of altered oceanic peridotite , 2015 .
[19] J. Nakajima,et al. Slab‐derived fluids, fore‐arc hydration, and sub‐arc magmatism beneath Kyushu, Japan , 2015 .
[20] M. Caddick,et al. Pulsed dehydration and garnet growth during subduction revealed by zoned garnet geochronology and thermodynamic modeling, Sifnos, Greece , 2015 .
[21] Cin-Ty A. Lee,et al. Oceanic- and continental-type metamorphic terranes: Occurrence and exhumation mechanisms , 2014 .
[22] H. Noda,et al. A friction to flow constitutive law and its application to a 2‐D modeling of earthquakes , 2014 .
[23] P. Agard,et al. Subduction zone metamorphic pathway for deep carbon cycling: I. Evidence from HP/UHP metasedimentary rocks, Italian Alps , 2014 .
[24] D. Wiens,et al. Reconciling mantle attenuation‐temperature relationships from seismology, petrology, and laboratory measurements , 2014 .
[25] C. Wilson,et al. Fluid flow in subduction zones: The role of solid rheology and compaction pressure , 2014 .
[26] L. Royden,et al. Mantle dynamics in the Mediterranean , 2014 .
[27] Kelin Wang,et al. Strength of stick-slip and creeping subduction megathrusts from heat flow observations , 2014, Science.
[28] F. Spear,et al. Overstepping the garnet isograd: a comparison of QuiG barometry and thermodynamic modeling , 2014, Contributions to Mineralogy and Petrology.
[29] R. Duncan,et al. Geologic history of Siletzia, a large igneous province in the Oregon and Washington Coast Range: Correlation to the geomagnetic polarity time scale and implications for a long-lived Yellowstone hotspot , 2014 .
[30] W. Ernst,et al. Lawsonite blueschists and lawsonite eclogites as proxies for palaeo‐subduction zone processes: a review , 2014 .
[31] P. V. van Keken,et al. Along‐arc variation in the 3‐D thermal structure around the junction between the Japan and Kurile arcs , 2014 .
[32] C. Langmuir,et al. Geophysical and Geochemical Evidence for Deep Temperature Variations Beneath Mid-Ocean Ridges , 2014, Science.
[33] Kelin Wang,et al. Invited review paper: Fault creep caused by subduction of rough seafloor relief , 2014 .
[34] R. Müller,et al. Convergence of tectonic reconstructions and mantle convection models for significant fluctuations in seafloor spreading , 2013 .
[35] J. Nakajima,et al. Seismic attenuation beneath northeastern Japan: Constraints on mantle dynamics and arc magmatism , 2013 .
[36] H. Čížková,et al. Effects of mantle and subduction-interface rheologies on slab stagnation and trench rollback , 2013 .
[37] C. Garrido,et al. Tschermak's substitution in antigorite and consequences for phase relations and water liberation in high-grade serpentinites , 2013 .
[38] P. Agard,et al. True metamorphic isograds or tectonically sliced metamorphic sequence? New high-spatial resolution petrological data for the New Caledonia case study , 2013, Contributions to Mineralogy and Petrology.
[39] J. Nakajima,et al. Seismic evidence for high pore pressures in the oceanic crust: Implications for fluid‐related embrittlement , 2013 .
[40] J. Nakajima,et al. Thermal–petrological controls on the location of earthquakes within subducting plates , 2013 .
[41] B. Hacker. Eclogite formation and the Rheology, Buoyancy, Seismicity, and H2O Content of Oceanic Crust , 2013 .
[42] S. Peacock. Thermal and petrologic structure of subduction zones , 2013 .
[43] Katherine A. Kelley,et al. Why do mafic arc magmas contain ∼4wt% water on average? , 2013 .
[44] P. V. Keken,et al. Three-dimensional thermal structure of subduction zones: effects of obliquity and curvature , 2012 .
[45] J. Nakajima,et al. Thermal structure and intermediate-depth seismicity in the Tohoku-Hokkaido subduction zones , 2012 .
[46] S. Uehara,et al. Slow subduction and buoyant exhumation of the Sanbagawa eclogite , 2012 .
[47] Maria Seton,et al. Global continental and ocean basin reconstructions since 200 Ma , 2012 .
[48] T. Grove,et al. The beginnings of hydrous mantle wedge melting , 2012, Contributions to Mineralogy and Petrology.
[49] D. Ruscitto,et al. Global variations in H2O/Ce: 1. Slab surface temperatures beneath volcanic arcs , 2012 .
[50] S. Mukhopadhyay,et al. How large is the subducted water flux? New constraints on mantle regassing rates , 2012 .
[51] T. Elliott,et al. Lithium and its isotopes as tracers of subduction zone fluids and metasomatic processes: Evidence from the Catalina Schist, California, USA , 2012 .
[52] R. Klemd,et al. Changes in dip of subducted slabs at depth: Petrological and geochronological evidence from HP-UHP rocks (Tianshan, NW-China) , 2011 .
[53] Jiangheng He,et al. Grain-size distribution in the mantle wedge of subduction zones , 2011 .
[54] Hitoshi Hirose,et al. Spatial distribution and focal mechanisms of aftershocks of the 2011 off the Pacific coast of Tohoku Earthquake , 2011 .
[55] T. Gerya,et al. Geodynamic regimes of subduction under an active margin: effects of rheological weakening by fluids and melts , 2011 .
[56] I. Jackson,et al. Grainsize-sensitive viscoelastic relaxation in olivine: Towards a robust laboratory-based model for seismological application , 2010 .
[57] J. Blundy,et al. High-pressure Hydrous Phase Relations of Radiolarian Clay and Implications for the Involvement of Subducted Sediment in Arc Magmatism , 2010 .
[58] K. Fischer,et al. he global range of subduction zone thermal models , 2010 .
[59] Kelin Wang,et al. Common depth of slab‐mantle decoupling: Reconciling diversity and uniformity of subduction zones , 2009 .
[60] T. Plank,et al. Emerging geothermometers for estimating slab surface temperatures , 2009 .
[61] G. Spinelli,et al. Links between fluid circulation, temperature, and metamorphism in subducting slabs , 2009 .
[62] L. Jolivet,et al. The Zermatt‐Saas ophiolite: the largest (60‐km wide) and deepest (c. 70–80 km) continuous slice of oceanic lithosphere detached from a subduction zone? , 2009 .
[63] R. Compagnoni,et al. The P–T path of the ultra‐high pressure Lago Di Cignana and adjoining high‐pressure meta‐ophiolitic units: insights into the evolution of the subducting Tethyan slab , 2009 .
[64] T. Plank,et al. Constraints on the depths and temperatures of basaltic magma generation on Earth and other terrestrial planets using new thermobarometers for mafic magmas , 2009 .
[65] J. Platt,et al. Plate movements, ductile deformation and geochronology of the Sanbagawa belt, SW Japan: tectonic significance of 89–88 Ma Lu–Hf eclogite ages , 2009 .
[66] S. King,et al. Effect of mantle compressibility on the thermal and flow structures of the subduction zones , 2009 .
[67] Richard F. Katz,et al. A community benchmark for subduction zone modeling , 2008 .
[68] W. Strauch,et al. Strong along‐arc variations in attenuation in the mantle wedge beneath Costa Rica and Nicaragua , 2008 .
[69] Kelin Wang,et al. Weakening of the subduction interface and its effects on surface heat flow, slab dehydration, and mantle wedge serpentinization , 2008 .
[70] J. Hermann,et al. Sediment Melts at Sub-arc Depths: an Experimental Study , 2008 .
[71] B. Hacker. H2O subduction beyond arcs , 2008 .
[72] L. Jolivet,et al. Plate acceleration: The obduction trigger? , 2007 .
[73] S. Karato,et al. Stress, strain, and B‐type olivine fabric in the fore‐arc mantle: Sensitivity tests using high‐resolution steady‐state subduction zone models , 2007 .
[74] Paul D. Asimow,et al. Temperatures in ambient mantle and plumes: Constraints from basalts, picrites, and komatiites , 2007 .
[75] B. Hacker. Pressures and Temperatures of Ultrahigh-Pressure Metamorphism: Implications for UHP Tectonics and H2O in Subducting Slabs , 2006 .
[76] L. Jolivet,et al. Transient, synobduction exhumation of Zagros blueschists inferred from P‐T, deformation, time, and kinematic constraints: Implications for Neotethyan wedge dynamics , 2006 .
[77] N. Chatterjee,et al. The influence of H2O on mantle wedge melting , 2006 .
[78] S. Lamb. Shear stresses on megathrusts: Implications for mountain building behind subduction zones , 2006 .
[79] G. Holland,et al. Seawater subduction controls the heavy noble gas composition of the mantle , 2006, Nature.
[80] Ellen M. Syracuse,et al. Global compilation of variations in slab depth beneath arc volcanoes and implications , 2006 .
[81] G. Abers,et al. The thermal structure of subduction zones constrained by seismic imaging: Implications for slab dehydration and wedge flow , 2006 .
[82] B. Reynard,et al. Equation of state of antigorite, stability field of serpentines, and seismicity in subduction zones , 2006 .
[83] T. Gerya,et al. Blueschists and Blue Amphiboles: How much Subduction do they Need? , 2005 .
[84] T. Gerya,et al. The role of viscous heating in Barrovian metamorphism of collisional orogens: thermomechanical models and application to the Lepontine Dome in the Central Alps , 2005 .
[85] P. Wallace. Volatiles in subduction zone magmas: concentrations and fluxes based on melt inclusion and volcanic gas data , 2005 .
[86] Akiko Tanaka,et al. Geothermal gradient and heat flow data in and around Japan (I): Appraisal of heat flow from geothermal gradient data , 2004 .
[87] Kelin Wang,et al. The thermal effects of steady-state slab-driven mantle flow above a subducting plate: the Cascadia subduction zone and backarc , 2004 .
[88] Simon M. Peacock,et al. Serpentinization of the forearc mantle , 2003 .
[89] B. Stöckhert,et al. Exhumation of high‐pressure metamorphic rocks in a subduction channel: A numerical simulation , 2002 .
[90] S. Peacock,et al. High‐resolution models of subduction zones: Implications for mineral dehydration reactions and the transport of water into the deep mantle , 2002 .
[91] Julian P. Lowman,et al. Mantle Convection in the Earth and Planets , 2002 .
[92] R. Hyndman,et al. An inverted continental Moho and serpentinization of the forearc mantle , 2002, Nature.
[93] N. Umino,et al. Spatial distribution of focal mechanisms for interplate and intraplate earthquakes associated with the subducting Pacific plate beneath the northeastern Japan arc: A triple‐planed deep seismic zone , 2001 .
[94] J. Hermann,et al. The importance of serpentinite mylonites for subduction and exhumation of oceanic crust , 2000 .
[95] Marie C. Johnson,et al. Dehydration and melting experiments constrain the fate of subducted sediments , 2000 .
[96] B. Hacker,et al. Into the Forbidden Zone , 2000, Science.
[97] Kelin Wang,et al. Seismic consequences of warm versus cool subduction metamorphism: examples from southwest and northeast japan , 1999, Science.
[98] Kelin Wang,et al. Mechanics of low‐stress forearcs: Nankai and Cascadia , 1999 .
[99] S. Poli,et al. Experimentally based water budgets for dehydrating slabs and consequences for arc magma generation , 1998 .
[100] D. Gebauer,et al. Jurassic formation and Eocene subduction of the Zermatt–Saas-Fee ophiolites: implications for the geodynamic evolution of the Central and Western Alps , 1998 .
[101] C. Scholz. Earthquakes and friction laws , 1998, Nature.
[102] K. Bose,et al. Experimental and theoretical studies of the stabilities of talc, antigorite and phase A at high pressures with applications to subduction processes , 1995 .
[103] Kelin Wang,et al. Case for very low coupling stress on the Cascadia Ssubduction Fault , 1995 .
[104] W. Bryan,et al. The influence of water on the petrogenesis of subductionrelated igneous rocks , 1993, Nature.
[105] Suzanne Hurter,et al. Heat flow from the Earth's interior: Analysis of the global data set , 1993 .
[106] Mark Cloos,et al. Lithospheric buoyancy and collisional orogenesis: Subduction of oceanic plateaus, continental margins, island arcs, spreading ridges, and seamounts , 1993 .
[107] Patrick Wu,et al. Rheology of the Upper Mantle: A Synthesis , 1993, Science.
[108] Larry J. Ruff,et al. Depth of seismic coupling along subduction zones , 1993 .
[109] S. Stein,et al. A model for the global variation in oceanic depth and heat flow with lithospheric age , 1992, Nature.
[110] J. Vidale,et al. Upper-mantle seismic discontinuities and the thermal structure of subduction zones , 1992, Nature.
[111] W. Durham,et al. Mantle Phase Changes and Deep-Earthquake Faulting in Subducting Lithosphere , 1991, Science.
[112] M. Tsenn,et al. Flow properties of continental lithosphere , 1987 .
[113] Y. Tatsumi. Formation of the volcanic front in subduction zones , 1986 .
[114] D. Yuen,et al. Layered convection induced by phase transitions , 1985 .
[115] J. Murphy,et al. Flow mélanges: Numerical modeling and geologic constraints on their origin in the Franciscan subduction complex, California: Discussion and reply , 1983 .
[116] M. Cloos. Flow melanges: Numerical modeling and geologic constraints on their origin in the Franciscan subduction complex, California , 1982 .
[117] D. McKenzie,et al. Convection in a compressible fluid with infinite Prandtl number , 1980, Journal of Fluid Mechanics.
[118] L. Bodri,et al. Numerical investigation of tectonic flow in island-arc areas , 1978 .
[119] E. R. Oxburgh,et al. Compositional and density stratification in oceanic lithosphere-causes and consequences , 1977, Journal of the Geological Society.
[120] J. Davis,et al. Decrease in oceanic crustal thickness since the breakup of Pangaea , 2017 .
[121] G. Bebout,et al. Fluid and mass transfer at subduction interfaces-The field metamorphic record , 2016 .
[122] G. Abers,et al. Subduction factory: 4. Depth-dependent flux of H2O from subducting slabs worldwide , 2011 .
[123] E. Tan,et al. A community benchmark for 2-D Cartesian compressible convection in the Earth's mantle , 2010 .
[124] L. Jolivet,et al. Exhumation of oceanic blueschists and eclogites in subduction zones :Timing and mechanisms , 2009 .
[125] I. Wada. Thermal structure and geodynamics of subduction zones , 2009 .
[126] J. Hermann,et al. An experimental investigation of antigorite dehydration in natural silica-enriched serpentinite , 2009 .
[127] W. Ernst. High-pressure and ultrahigh-pressure metamorphic belts- Subduction, recrystallization, exhumation, and significance for ophiolite study , 2003 .
[128] Simon M. Peacock,et al. Subduction factory 2. Are intermediate‐depth earthquakes in subducting slabs linked to metamorphic dehydration reactions? , 2003 .
[129] Donald L. Turcotte,et al. Mantle Convection in the Earth and Planets: Contents , 2001 .
[130] F. Blanckenburg,et al. Slab breakoff: A model of lithosphere detachment and its test in the magmatism and deformation of collisional orogens , 1995 .
[131] P. E. van Keken,et al. Cooling of the earth in the Archaean: Consequences of pressure-release melting in a hotter mantle , 1994 .
[132] S. Peacock,et al. Partial melting of subducting oceanic crust , 1994 .
[133] P. Molnar,et al. Lengths of intermediate and deep seismic zones and temperatures in downgoing slabs of lithosphere , 1979 .
[134] P. Raviart. Finite element methods and Navier-Stokes equations , 1979 .