Thermal convection in a heterogeneous mantle
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[1] A. Davaille,et al. Simultaneous generation of hotspots and superswells by convection in a heterogeneous planetary mantle , 1999, Nature.
[2] W. J. Morgan,et al. Plate Motions and Deep Mantle Convection , 1972 .
[3] C. Farnetani. Excess temperature of mantle plumes: The role of chemical stratification across D″ , 1997 .
[4] Romanowicz,et al. Three-dimensional structure at the base of the mantle beneath the central pacific , 1998, Science.
[5] I. Jackson. Elasticity, composition and temperature of the Earth’s lower mantle: a reappraisal , 1998 .
[6] R. Larson. Latest pulse of Earth: Evidence for a mid-Cretaceous superplume , 1991 .
[7] R. Larson. Geological consequences of superplumes , 1991 .
[8] C. Bina. Lower mantle mineralogy and the geophysical perspective , 1998 .
[9] P. Olson,et al. Experiments on the interaction of thermal convection and compositional layering at the base of the mantle , 1991 .
[10] H. Schmeling. Numerical models of Rayleigh-Taylor instabilities superimposed upon convection , 1988 .
[11] T. Becker,et al. THERMAL CONSTRAINTS ON THE SURVIVAL OF PRIMITIVE BLOBS IN THE LOWER MANTLE , 1999 .
[12] E. R. Engdahl,et al. Evidence for deep mantle circulation from global tomography , 1997, Nature.
[13] P. Tackley. On the penetration of an endothermic phase transition by upwellings and downwellings , 1995 .
[14] Michael Le Bars,et al. How to anchor hotspots in a convecting mantle , 2002 .
[15] M. Manga,et al. The influence of a chemical boundary layer on the fixity, spacing and lifetime of mantle plumes , 2002, Nature.
[16] R. Hilst,et al. Compositional stratification in the deep mantle , 1999, Science.
[17] U. Christensen. Instability of a hot boundary layer and initiation of thermo-chemical plumes , 1984 .
[18] F. Richter,et al. On some consequences and possible causes of layered mantle convection , 1981 .
[19] B. Wood,et al. The Earth's mantle , 2001, Nature.
[20] F. Busse,et al. A theoretical and experimental study of double-layer convection , 1989, Journal of Fluid Mechanics.
[21] J. Tuzo Wilson. A possible origin of the Hawaiian Islands , 1963 .
[22] R. Carlson,et al. The large-scale structure of convection in the Earth's mantle , 1990, Nature.
[23] A. Forte,et al. Seismic‐geodynamic constraints on three‐dimensional structure, vertical flow, and heat transfer in the mantle , 1997 .
[24] A. Davaille,et al. Stability of thermal convection in two superimposed miscible viscous fluids , 2002, Journal of Fluid Mechanics.
[25] W. J. Morgan,et al. Convection Plumes in the Lower Mantle , 1971, Nature.
[26] C. Allègre. The evolution of mantle mixing , 2002, Philosophical Transactions of the Royal Society of London. Series A: Mathematical, Physical and Engineering Sciences.
[27] U. Christensen,et al. The excess temperature of plumes rising from the core‐mantle boundary , 1996 .
[28] Donald L. Turcotte,et al. Implications of a two-component marble-cake mantle , 1986, Nature.
[29] M. Gurnis,et al. The effect of depth‐dependent viscosity on convective mixing in the mantle and the possible survival of primitive mantle , 1986 .
[30] P. Tackley,et al. Mantle convection and plate tectonics: toward an integrated physical and chemical theory , 2000, Science.
[31] Thorne Lay,et al. The core-mantle boundary region , 1995 .
[32] R. Boehler,et al. Thermal expansivity in the lower mantle , 1992 .
[33] B. Romanowicz,et al. Superplumes from the Core-Mantle Boundary to the Lithosphere: Implications for Heat Flux , 2002, Science.
[34] F. Richter,et al. Stability of a chemically layered mantle , 1974 .
[35] H. Gonnermann,et al. Dynamics and longevity of an initially stratified mantle , 2002 .
[36] D. L. Herrick,et al. Episodic large-scale overturn of two-layer mantles in terrestrial planets , 1994 .
[37] L. Kellogg,et al. Numerical models of a dense layer at the base of the mantle and implications for the geodynamics of D , 2000 .
[38] Ulrich R. Christensen,et al. Mixing by time-dependent convection , 1989 .
[39] N. Sleep. Gradual entrainment of a chemical layer at the base of the mantle by overlying convection , 1988 .
[40] A. Davaille. Two-layer thermal convection in miscible viscous fluids , 1999, Journal of Fluid Mechanics.
[41] A. Hofmann,et al. Mantle geochemistry: the message from oceanic volcanism , 1997, Nature.
[42] P. Shearer,et al. Seismic evidence for small-scale heterogeneity throughout the Earth's mantle , 1997, Nature.
[43] D. Yuen,et al. The interaction of a subducting lithospheric slab with a chemical or phase boundary , 1984 .
[44] David A. Yuen,et al. Numerical simulations of thermal-chemical instabilities at the core–mantle boundary , 1988, Nature.
[45] P. Olson. An experimental approach to thermal convection in a two‐layered mantle , 1984 .
[46] P. Tackley. Strong heterogeneity caused by deep mantle layering , 2002 .
[47] M. Javoy. Chemical earth models , 1999 .
[48] D. L. Anderson,et al. Preliminary reference earth model , 1981 .
[49] David A. Yuen,et al. Extended-Boussinesq thermal–chemical convection with moving heat sources and variable viscosity , 2000 .
[50] A. Hofmann,et al. Segregation of subducted oceanic crust in the convecting mantle , 1994 .
[51] N. Ribe. Spouting and planform selection in the Rayleigh–Taylor instability of miscible viscous fluids , 1998, Journal of Fluid Mechanics.
[52] K. Kurita,et al. The influence of boundary heterogeneity in experimental models of mantle convection , 1999 .
[53] A. Davaille,et al. Large interface deformation in two-layer thermal convection of miscible viscous fluids , 2004, Journal of Fluid Mechanics.
[54] Thorne Lay,et al. The core–mantle boundary layer and deep Earth dynamics , 1998, Nature.
[55] N. Hoffman,et al. The destruction of geochemical heterogeneities by differential fluid motions during mantle convection , 1985 .
[56] M. Rabinowicz,et al. Three‐dimensional infinite Prandtl number convection in one and two layers with implications for the Earth's gravity field , 1988 .
[57] M. Richards,et al. Flood Basalts and Hot-Spot Tracks: Plume Heads and Tails , 1989, Science.