Cider bibliography

From CIDER
(Difference between revisions)
Jump to: navigation, search
Line 5: Line 5:
 
CIDER Bibliography
 
CIDER Bibliography
 
* Akber, S., M. S. T. Bukowinski and J. Matas (2002) [http://www.agu.org/pubs/crossref/2002/2001GL013523.shtml On the structure and compressibility of CaSiO3 perovskite], Geophys. Res. Lett., 29, 10.1029/2001GL013523
 
* Akber, S., M. S. T. Bukowinski and J. Matas (2002) [http://www.agu.org/pubs/crossref/2002/2001GL013523.shtml On the structure and compressibility of CaSiO3 perovskite], Geophys. Res. Lett., 29, 10.1029/2001GL013523
* Albaréde F. 1998. [http://www.sciencedirect.com/science/article/pii/S0009254197001526 Time-dependent models of U-Th-He and K-Ar evolution and the layering of mantle convection], ''Chem. Geol.'', '''145''', 413-29.
+
* Albar\`ede F. 1998. [http://www.sciencedirect.com/science/article/pii/S0009254197001526 Time-dependent models of U-Th-He and K-Ar evolution and the layering of mantle convection], ''Chem. Geol.'', '''145''', 413-29.
* Albaréde, F. and R. D. van der Hilst, New mantle convection model may reconcile conflicting evidence, ''EOS Trans AGU'', '''80''', 535-539, 1999.
+
* Albar\`ede, F. and R. D. van der Hilst, New mantle convection model may reconcile conflicting evidence, ''EOS Trans AGU'', '''80''', 535-539, 1999.
* Allégre C. J. (1997) [http://www.sciencedirect.com/science/article/pii/S0012821X97000721 Limitation on mass exchange between the upper and lower mantle: the evolving convection regime of the Earth], ''Earth Planet. Sci. Lett.'', '''150''', 1-6.
+
* All\`egre C. J. (1997) [http://www.sciencedirect.com/science/article/pii/S0012821X97000721 Limitation on mass exchange between the upper and lower mantle: the evolving convection regime of the Earth], ''Earth Planet. Sci. Lett.'', '''150''', 1-6.
* Allégre, C., A. Hoffman, et al. (1996). "[http://www.agu.org/pubs/crossref/1996/96GL03373.shtml The argon constraints on mantle structure.]", ''Geophys. Res. Lett.'', '''23''', 3555-3557.
+
* All\`egre, C., A. Hoffman, et al. (1996). "[http://www.agu.org/pubs/crossref/1996/96GL03373.shtml The argon constraints on mantle structure.]", ''Geophys. Res. Lett.'', '''23''', 3555-3557.
 
* Alfe, D., M. J. Gillan, et al. (1999). "T[http://www.nature.com/nature/journal/v401/n6752/abs/401462a0.html he melting curve of iron at the pressures of the Earth's core from ab initio calculations]", ''Nature'', '''401''', 462-464.
 
* Alfe, D., M. J. Gillan, et al. (1999). "T[http://www.nature.com/nature/journal/v401/n6752/abs/401462a0.html he melting curve of iron at the pressures of the Earth's core from ab initio calculations]", ''Nature'', '''401''', 462-464.
 
* Alfe, D., G. D. Price, et al. (2000). "[http://www.agu.org/pubs/crossref/2000/2000GL011567.shtml Thermodynamic stability of Fe/O solid solution at inner-core conditions]",  ''Geophys. Re. Lett.'',  '''27''', 2417-2420.
 
* Alfe, D., G. D. Price, et al. (2000). "[http://www.agu.org/pubs/crossref/2000/2000GL011567.shtml Thermodynamic stability of Fe/O solid solution at inner-core conditions]",  ''Geophys. Re. Lett.'',  '''27''', 2417-2420.
Line 20: Line 20:
 
* Bijwaard, H., W. Spakman and E. R. Engdahl (1998) [http://www.agu.org/pubs/crossref/1998/98JB02467.shtml Closing the gap between regional and global travel time tomography], ''J. Geophys. Res.'',  '''103''', 30,055-30,078.
 
* Bijwaard, H., W. Spakman and E. R. Engdahl (1998) [http://www.agu.org/pubs/crossref/1998/98JB02467.shtml Closing the gap between regional and global travel time tomography], ''J. Geophys. Res.'',  '''103''', 30,055-30,078.
 
* Becker, T.W., J.B. Kellogg and R.J. O'Connell (1999) [http://www.sciencedirect.com/science/article/pii/S0012821X99001600 Thermal constraints on the survival of primitive blobs in the lower mantle], ''Earth Planet. Sci. Lett''., '''''171''''', 351-365.
 
* Becker, T.W., J.B. Kellogg and R.J. O'Connell (1999) [http://www.sciencedirect.com/science/article/pii/S0012821X99001600 Thermal constraints on the survival of primitive blobs in the lower mantle], ''Earth Planet. Sci. Lett''., '''''171''''', 351-365.
* Bréger, L. and B. Romanowicz (1998), [http://www.sciencemag.org/content/282/5389/718.abstract Three-Dimensional Structure at the Base of the Mantle Beneath the Central Pacific],  Science,  282, 718-720.
+
=Bréger, L. and B. Romanowicz (1998), [http://www.sciencemag.org/content/282/5389/718.abstract Three-Dimensional Structure at the Base of the Mantle Beneath the Central Pacific],  Science,  282, 718-720.=
 
* Bréger, L., B. Romanowicz, and H. Tkalčić, 1999 [http://www.agu.org/pubs/crossref/1999/1999GL008374.shtml PKP(BC-DF) travel times: New constraints on short scale heterogeneity in the deep earth?], ''Geophys. Res. Lett.'', '''26''', 3169-3172.
 
* Bréger, L., B. Romanowicz, and H. Tkalčić, 1999 [http://www.agu.org/pubs/crossref/1999/1999GL008374.shtml PKP(BC-DF) travel times: New constraints on short scale heterogeneity in the deep earth?], ''Geophys. Res. Lett.'', '''26''', 3169-3172.
 
* Bréger, L., H. Tkalčić and B. Romanowicz (2000) [http://www.sciencedirect.com/science/article/pii/S0012821X99002861 The effect of D" on PKP(AB-DF) travel time residuals and possible implications for inner core structure],  ''Earth Plant. Sci. Lett..'',  '''175''', 133-143.
 
* Bréger, L., H. Tkalčić and B. Romanowicz (2000) [http://www.sciencedirect.com/science/article/pii/S0012821X99002861 The effect of D" on PKP(AB-DF) travel time residuals and possible implications for inner core structure],  ''Earth Plant. Sci. Lett..'',  '''175''', 133-143.
Line 84: Line 84:
 
* Kuang, W. and J. Bloxham (1997) [http://www.nature.com/nature/journal/v389/n6649/abs/389371a0.html An earth-like numerical dynamo model],  ''Nature'',  '''389''': 371-374.
 
* Kuang, W. and J. Bloxham (1997) [http://www.nature.com/nature/journal/v389/n6649/abs/389371a0.html An earth-like numerical dynamo model],  ''Nature'',  '''389''': 371-374.
 
* Kurz MD, Jenkins WJ, Hart SR. (1982) [http://www.nature.com/nature/journal/v297/n5861/abs/297043a0.html Helium isotopic systematics of oceanic islands and mantle heterogeneity],  ''Nature'', '''297''', 43-6.
 
* Kurz MD, Jenkins WJ, Hart SR. (1982) [http://www.nature.com/nature/journal/v297/n5861/abs/297043a0.html Helium isotopic systematics of oceanic islands and mantle heterogeneity],  ''Nature'', '''297''', 43-6.
* Laio, A., S. Bernard, et al. (2000). "Physics of iron at Earth's core conditions." Science, 287, 1027-1030.
+
* Laio, A., S. Bernard, et al. (2000). [http://www.sciencemag.org/content/287/5455/1027.abstract Physics of iron at Earth's core conditions]'''Science''', 287, 1027-1030.
* Lay, T. and D. V. Helmberger (1983) A lower mantle S-wave triplication and the shear velocity structure of D",  Geophys. J. R. astron. Soc., 75, 799-838.
+
* Lay, T. and D. V. Helmberger (1983)[http://onlinelibrary.wiley.com/doi/10.1111/j.1365-246X.1983.tb05010.x/abstract  A lower mantle S-wave triplication and the shear velocity structure of D],  Geophys. J. R. astron. Soc., 75, 799-838.
* Li, X.D. and B. Romanowicz (1996) Global mantle shear velocity model developed using nonlinear asymptotic coupling theory, J. Geophys. Res., 101, 22,245-22,273.
+
* Li, X.D. and B. Romanowicz (1996) [http://www.agu.org/pubs/crossref/1996/96JB01306.shtml Global mantle shear velocity model developed using nonlinear asymptotic coupling theory], J. Geophys. Res., 101, 22,245-22,273.
* Manga M. (1996) Mixing of heterogeneities in the mantle: effect of viscosity differences,  Geophys. Res. Lett.,  23, 403-6.
+
* Manga M. (1996) [http://www.agu.org/pubs/crossref/1996/96GL00242.shtml Mixing of heterogeneities in the mantle: effect of viscosity differences],  Geophys. Res. Lett.,  23, 403-6.
* Masters G., Johnson, S., Laske, G. and Bolton, B. (1996) A shear-velocity model of the mantle,  Philos. Trans. R. Soc. Lond. A,  354, 1,385-1,411.
+
* Masters G., Johnson, S., Laske, G. and Bolton, B. (1996) [http://rsta.royalsocietypublishing.org/content/354/1711/1385 A shear-velocity model of the mantle],  Philos. Trans. R. Soc. Lond. A,  354, 1,385-1,411.
 
* Masters, G., G. Laske, H. Bolton, A .Dziewonski (2000) The relative behavior of shear velocity, bulk sound speed, and compressional velocity in the mantle; implications for chemical and thermal structure  AGU Geophysical Monograph,  117, 63-86.
 
* Masters, G., G. Laske, H. Bolton, A .Dziewonski (2000) The relative behavior of shear velocity, bulk sound speed, and compressional velocity in the mantle; implications for chemical and thermal structure  AGU Geophysical Monograph,  117, 63-86.
* M\'egnin, C. and B. Romanowicz (2000) The 3D shear velocity structure of the mantle from the inversion of body, surface and higher mode waveforms,  Geophys. J. Inter.,  143, 709-728.
+
* M\'egnin, C. and B. Romanowicz (2000)[http://onlinelibrary.wiley.com/doi/10.1046/j.1365-246X.2000.00298.x/abstract  The 3D shear velocity structure of the mantle from the inversion of body, surface and higher mode waveforms],  Geophys. J. Inter.,  143, 709-728.
 
* Merrill, R.T., McElhinny, M.W., and McFadden, P.L., 1996, The Magnetic Field of the Earth: Paleomagnetism, the Core, and the Deep Mantle: San Diego, Academic Press, 531 p.
 
* Merrill, R.T., McElhinny, M.W., and McFadden, P.L., 1996, The Magnetic Field of the Earth: Paleomagnetism, the Core, and the Deep Mantle: San Diego, Academic Press, 531 p.
* Morelli, A., A.M. Dziewonski, and J. H. Woodhouse (1986) Anisotropy of the core inferred from PKIKP travel times,  Geophys. Res. Lett.,  13, 1545-1548.
+
* Morelli, A., A.M. Dziewonski, and J. H. Woodhouse (1986) [http://www.agu.org/pubs/crossref/1986/GL013i013p01545.shtml Anisotropy of the core inferred from PKIKP travel times],  Geophys. Res. Lett.,  13, 1545-1548.
 
* O'Connell, R. et al. (1993) CSEDI Science Plan, A Science Plan for Cooperative studies of the Earth's Deep Interior (prepared by US SEDI Coordinating Committee).
 
* O'Connell, R. et al. (1993) CSEDI Science Plan, A Science Plan for Cooperative studies of the Earth's Deep Interior (prepared by US SEDI Coordinating Committee).
* Panero, W., and Jeanloz, R. (2001a) The effect of sample thickness and insulation layers on the temperature distribution in the laser-heated diamond cell,  Rev. Sci. Instrum.,  72, 1306-1308.
+
* Panero, W., and Jeanloz, R. (2001a) [http://rsi.aip.org/resource/1/rsinak/v72/i2/p1306_s1 The effect of sample thickness and insulation layers on the temperature distribution in the laser-heated diamond cell],  Rev. Sci. Instrum.,  72, 1306-1308.
* Panero, W., and Jeanloz, R. (2001b) Temperature gradients in the laser-heated diamond anvil cell,  J. Geophys. Res.,  106, 6493-6498.
+
* Panero, W., and Jeanloz, R. (2001b) [http://www.agu.org/pubs/crossref/2001/2000JB900423.shtml Temperature gradients in the laser-heated diamond anvil cell],  J. Geophys. Res.,  106, 6493-6498.
* Panero, W. R., and Jeanloz, R. (2002) X-ray diffraction patterns from samples in the laser-heated diamond anvil cell,  J. Appl. Phys., in press.
+
* Panero, W. R., and Jeanloz, R. (2002) [http://jap.aip.org/resource/1/japiau/v91/i5/p2769_s1 X-ray diffraction patterns from samples in the laser-heated diamond anvil cell,] J. Appl. Phys., J. Appl. Phys., '''91''', 2769 (2002); [http://link.aip.org/link/doi/10.1063/1.1435837 http://dx.doi.org/10.1063/1.1435837] .
* Panero, W. R., Benedetti, L. R., and Jeanloz, R. (2002a) Equation of state of stishovite and interpretation of SiO2 shock-compression data, submitted.
+
* Panero, W. R., Benedetti, L. R., and Jeanloz, R. (2002a) [http://www.agu.org/pubs/crossref/2003/2001JB001663.shtml Equation of state of stishovite and interpretation of SiO2 shock-compression data], J. Geophys. Res,  108, 2015, 7 PP., 2003
* Panero, W. R., Benedetti, L. R., and Jeanloz, R. (2002b) Transport of water into the lower mantle: The role of stishovite, submitted.
+
 
* Porcelli D, Wasserburg GJ. (1995) Mass transfer of helium, neon, argon and xenon through a steady-state upper mantle,  Geochim. Cosmochim. Acta ,  59, 4921-37.
+
doi:10.1029/2001JB001663.
* Richards, M.A., W.-S. Yang, J.R. Baumgardner, and H.-P. Bunge (2001) Role of a low-viscosity zone in stabilizing plate tectonics: Implications for comparative terrestrial planetology,  Geophysics, Geochemistry, and Geosystems,  2, U1-U16.
+
* Panero, W. R., Benedetti, L. R., and Jeanloz, R. (2002b) [http://www.agu.org/pubs/crossref/2003/2002JB002053.shtml Transport of water into the lower mantle: The role of stishovite], J. Geophys. Res. 108, 2039, 9 PP., 2003
* Ritsema, J., S. Ni , D. V. Helmberger, and H.P. Crotwell (1998) Evidence for strong shear velocity reductions and velocity gradients in the lower mantle beneath Africa,  Geophys. Res. Lett.,  25, 4245-4248.
+
 
* Ritsema, J. , H. van Heijst and J. Woodhouse (1999) Complex shear wave velocity structure imaged beneath Africa and Iceland,  Science, 286, 1925-1928 .
+
doi:10.1029/2002JB002053.
* Romanowicz, B. and Y.C. Gung (2002) Superplumes from the core-mantle boundary to the lithosphere: implications for heat-flux, Science, 296, 513-516.
+
* Porcelli D, Wasserburg GJ. (1995) [http://www.sciencedirect.com/science/article/pii/0016703795003363 Mass transfer of helium, neon, argon and xenon through a steady-state upper mantle,] Geochim. Cosmochim. Acta ,  59, 4921-37.
* Romanowicz, B. (2003) Global mantle tomography: progress status in the last 10 years,  Annu. Rev. Geoph. Space Phys, 31 (1), 303.
+
* Richards, M.A., W.-S. Yang, J.R. Baumgardner, and H.-P. Bunge (2001) [http://www.agu.org/pubs/crossref/2001/2000GC000115.shtml Role of a low-viscosity zone in stabilizing plate tectonics: Implications for comparative terrestrial planetology],  Geophysics, Geochemistry, and Geosystems,  2, U1-U16.
* Russell, S.A., T. Lay, and E.J. Garnero (1998) Seismic evidence for small-scale dynamics in the lowermost mantle at the root of the Hawaiian hotspot,  Nature, 396, 255-258.
+
* Ritsema, J., S. Ni , D. V. Helmberger, and H.P. Crotwell (1998) [http://www.agu.org/pubs/crossref/1998/1998GL900127.shtml Evidence for strong shear velocity reductions and velocity gradients in the lower mantle beneath Africa],  Geophys. Res. Lett.,  25, 4245-4248.
* Saltzer, R.L., R.D. van der Hilst, and H. Karason (2001) Comparing P and S wave heterogeneity in the mantle,  Geophys. Res. Lett., 28, 1335-1338.
+
* Ritsema, J. , H. van Heijst and J. Woodhouse (1999) [http://www.sciencemag.org/content/286/5446/1925.full Complex shear wave velocity structure imaged beneath Africa and Iceland],  Science, 286, 1925-1928 .
* Silver PG, Carlson RW, Olson P. (1988) Deep slabs, geochemical heterogeneity, and the large-scale structure of mantle convection: Investigation of an enduring paradox,  Ann. Rev. Earth Planet. Sci., 16, 477-541.
+
* Romanowicz, B. and Y.C. Gung (2002) [http://www.sciencemag.org/content/296/5567/513.full Superplumes from the core-mantle boundary to the lithosphere: implications for heat-flux], Science, 296, 513-516.
* Sims, K.W., S.J. Goldstein, J. Blichert-Toft, M.R. Perfit, P. Kelemen, D.J. Fornari, P. Michael, M.T. Murrell, S.R. Hart, D.J. DePaolo, G. Layne, L. Ball, M. Jull and J. Bender, Chemical and isotopic constraints on the generation and transport of magma beneath the East Pacific Rise, Earth Planet.Sci. Lett. (submitted)
+
* Romanowicz, B. (2003) [http://www.annualreviews.org/doi/full/10.1146/annurev.earth.31.091602.113555 Global mantle tomography: progress status in the last 10 years],  Annu. Rev. Geoph. Space Phys, 31 (1), 303.
* Solomatov, V.S., and L.N. Moresi (2000) Scaling of time-dependent stagnant lid convection: Application to small-scale convection on Earth and other terrestrial planets,  J. Geophys. Res.,  105: 21795-21817.
+
* Russell, S.A., T. Lay, and E.J. Garnero (1998) [http://www.nature.com/nature/journal/v396/n6708/abs/396255a0.html Seismic evidence for small-scale dynamics in the lowermost mantle at the root of the Hawaiian hotspot],  Nature, 396, 255-258.
* Song, X.-D. and D.V. Helmberger (1998) Seismic evidence for an inner core transition zone,  Science,  282, 924-927.
+
* Saltzer, R.L., R.D. van der Hilst, and H. Karason (2001) [http://www.agu.org/pubs/crossref/2001/2000GL012339.shtml Comparing P and S wave heterogeneity in the mantle],  Geophys. Res. Lett., 28, 1335-1338.
* Spiegelman M (1993): Physics of Melt Extraction: Theory, Implications and Applications,  Philosophical Transactions of the Royal Society London A , 342 23-41.
+
* Silver PG, Carlson RW, Olson P. (1988) [http://www.annualreviews.org/doi/abs/10.1146/annurev.ea.16.050188.002401 Deep slabs, geochemical heterogeneity, and the large-scale structure of mantle convection: Investigation of an enduring paradox],  Ann. Rev. Earth Planet. Sci., 16, 477-541.
* Spiegelman, M., P.B. Kelemen, and E. Aharonov (2001) Causes and consequences of flow organization during melt transport: The reaction infiltration instability in compactible media,  J. Geophys. Res., 106: 2061-2077.
+
* Sims, K.W., S.J. Goldstein, J. Blichert-Toft, M.R. Perfit, P. Kelemen, D.J. Fornari, P. Michael, M.T. Murrell, S.R. Hart, D.J. DePaolo, G. Layne, L. Ball, M. Jull and J. Bender, [http://www.sciencedirect.com/science/article/pii/S0016703702009092 Chemical and isotopic constraints on the generation and transport of magma beneath the East Pacific Rise], Geochim. Cosmochim. Acta, 66 (2002), pp. 3481–3504
* Staudigel, H; Albarede, F; Blichert-Toft, J; Edmond, J; McDonough, B; Jacobsen, SB Keeling, R; Langmuir, CH; Nielsen, RL; Plank, T; Rudnick, R; Shaw, HF; Shirey, S; Veizer, J; White, W. (1998) Geochemical Earth Reference Model (GERM): description of the initiative,  Chemical Geology,  145, 153-159.
+
* Solomatov, V.S., and L.N. Moresi (2000) [http://www.agu.org/pubs/crossref/2000/2000JB900197.shtml Scaling of time-dependent stagnant lid convection: Application to small-scale convection on Earth and other terrestrial planets,] J. Geophys. Res.,  105: 21795-21817.
* Steinle-Neumann, G., L. Stixrude, R. Cohen, O. Gulseren (2001). "Elasticity of iron at the temperature of the Earth's inner core."  Nature,  413, 57-60.
+
* Song, X.-D. and D.V. Helmberger (1998) [http://www.sciencemag.org/content/282/5390/924.abstract Seismic evidence for an inner core transition zone],  Science,  282, 924-927.
* Stixrude, L. and R. E. Cohen (1995). "High-pressure elasticity of iron and anisotropy of Earth's inner core.",  Science,  267, 1972-1975.
+
* Spiegelman M (1993): [http://www.jstor.org/stable/54179?origin=ads Physics of Melt Extraction: Theory, Implications and Applications],  Philosophical Transactions of the Royal Society London A , 342 23-41.
 +
* Spiegelman, M., P.B. Kelemen, and E. Aharonov (2001) [http://www.agu.org/pubs/crossref/2001/2000JB900240.shtml Causes and consequences of flow organization during melt transport: The reaction infiltration instability in compactible media],  J. Geophys. Res., 106: 2061-2077.
 +
* Staudigel, H; Albarede, F; Blichert-Toft, J; Edmond, J; McDonough, B; Jacobsen, SB Keeling, R; Langmuir, CH; Nielsen, RL; Plank, T; Rudnick, R; Shaw, HF; Shirey, S; Veizer, J; White, W. (1998) [http://www.sciencedirect.com/science/article/pii/S0009254197001411 Geochemical Earth Reference Model (GERM): description of the initiative],  Chemical Geology,  145, 153-159.
 +
* Steinle-Neumann, G., L. Stixrude, R. Cohen, O. Gulseren (2001). "[http://www.nature.com/nature/journal/v413/n6851/full/413057a0.html Elasticity of iron at the temperature of the Earth's inner core]."  Nature,  413, 57-60.
 +
* Stixrude, L. and R. E. Cohen (1995). "[http://www.sciencemag.org/content/267/5206/1972 High-pressure elasticity of iron and anisotropy of Earth's inner core].",  Science,  267, 1972-1975.
 
* Stixrude, L., R. E. Cohen, et al. (1998). Theory of minerals at high pressure. Ultrahigh-Pressure Mineralogy: Physics and Chemistry of the Earth's deep Interior. R. J. Hemley. Washington D. C.,  Mineralogical Society of America,  37, 639-671.
 
* Stixrude, L., R. E. Cohen, et al. (1998). Theory of minerals at high pressure. Ultrahigh-Pressure Mineralogy: Physics and Chemistry of the Earth's deep Interior. R. J. Hemley. Washington D. C.,  Mineralogical Society of America,  37, 639-671.
* Su, W. and A.M. Dziewonski (1997) Simultaneous inversion for 3-D variations in sehar and bulk velocity in the mantle,  Phys. Earth Planet. Inter.,  100, 135-156.
+
* Su, W. and A.M. Dziewonski (1997) [http://www.sciencedirect.com/science/article/pii/S0031920196032360 Simultaneous inversion for 3-D variations in shear and bulk velocity in the mantle],  Phys. Earth Planet. Inter.,  100, 135-156.
* Su, W.-J. , R. L. Woodward and A. M. Dziewonski (1994) Degree 12 model of shear velocity heterogeneity in the mantle, J. Geophys. Res.,  99, 4945-4980.
+
* Su, W.-J. , R. L. Woodward and A. M. Dziewonski (1994) [http://www.agu.org/pubs/crossref/1994/93JB03408.shtml Degree 12 model of shear velocity heterogeneity in the mantle], J. Geophys. Res.,  99, 4945-4980.
* Sumita, I. and P. Olson (1999a) A laboratory model for convection in Earth's core driven by a thermally heterogeneous mantle,  Science,  286: 1547-1549.
+
* Sumita, I. and P. Olson (1999a) A[http://www.sciencemag.org/content/286/5444/1547.short  laboratory model for convection in Earth's core driven by a thermally heterogeneous mantle],  Science,  286: 1547-1549.
* Sumita, I. and P. Olson (1999b) Laboratory experiments on high Rayleigh number thermal convection in a rapidly rotating hemispherical shell,  Phys. Earth Planet. Int.,  117: 153-170.
+
* Sumita, I. and P. Olson (1999b) [http://www.sciencedirect.com/science/article/pii/S0031920199000941 Laboratory experiments on high Rayleigh number thermal convection in a rapidly rotating hemispherical shell],  Phys. Earth Planet. Int.,  117: 153-170.
* Tackley, P.J., D.J. Stevenson, G.A. Glatzmaier, and G. Schubert (1994) Effects of multiple phase transitions in a 3-dimensional spherical model of convection in Earth's mantle,  J. Geophys. Res.,  99, 15887-15901.
+
* Tackley, P.J., D.J. Stevenson, G.A. Glatzmaier, and G. Schubert (1994)[http://www.agu.org/pubs/crossref/1994/94JB00853.shtml  Effects of multiple phase transitions in a 3-dimensional spherical model of convection in Earth's mantle],  J. Geophys. Res.,  99, 15887-15901.
* Tackley, P.J. (2000a) Self-consistent generation of tectonic plates in time-dependent, three-dimensional mantle convection simulations 1. Pseudoplastic yielding.  Geophysics, Geochemistry, Geosystems, 1: 2000GC000043.
+
* Tackley, P.J. (2000a) [http://www.agu.org/pubs/crossref/2000/2000GC000036.shtml Self-consistent generation of tectonic plates in time-dependent, three-dimensional mantle convection simulations ]1. Pseudoplastic yielding.  Geophysics, Geochemistry, Geosystems, 1: 2000GC000043.
* Tackley, P.J. (2000b) Self-consistent generation of tectonic plates in time-dependent, three-dimensional mantle convection simulations 2. Strain weakening and asthenosphere,  Geophysics, Geochemistry, Geosystems, 1: 2000GC000044.
+
* Tackley, P.J. (2000b) [http://www.agu.org/pubs/crossref/2000/2000GC000043.shtml Self-consistent generation of tectonic plates in time-dependent, three-dimensional mantle convection simulations] 2. Strain weakening and asthenosphere,  Geophysics, Geochemistry, Geosystems, 1: 2000GC000044.
* Tanaka, S. and H. Hamaguchi, Degree one heterogeneity and hemispherical variation of anisotropy in the inner core from PKP(BC)-PKP(DF) times,  J. Geophys. Res.,  102, 2925-2938, 1997.
+
* Tanaka, S. and H. Hamaguchi, [http://www.agu.org/pubs/crossref/1997/96JB03187.shtml Degree one heterogeneity and hemispherical variation of anisotropy in the inner core from PKP(BC)-PKP(DF) times],  J. Geophys. Res.,  102, 2925-2938, 1997.
* Tauxe, L., 1998, Paleomagnetic Principles and Practice: Dordrecht, Kluwer Academic Publishers, 299 p.
+
* Tauxe, L., 1998, [http://www.springer.com/earth+sciences+and+geography/geophysics/book/978-0-7923-5258-7 Paleomagnetic Principles and Practice]: Dordrecht, Kluwer Academic Publishers, 299 p.
* Trompert, R. and U. Hansen (1998) Mantle convection simulations with rheologies that generate plate-like behaviour,  Nature,  395: 686-689.
+
* Trompert, R. and U. Hansen (1998) [http://www.nature.com/nature/journal/v395/n6703/abs/395686a0.html Mantle convection simulations with rheologies that generate plate-like behaviou]r,  Nature,  395: 686-689.
* van der Hilst, R., S. Widiyantoro and E. Engdahl (1997) Evidence for deep mantle circulation from global tomography,  Nature,  386, 578-584.
+
* van der Hilst, R., S. Widiyantoro and E. Engdahl (1997)[http://www.nature.com/nature/journal/v386/n6625/abs/386578a0.html  Evidence for deep mantle circulation from global tomography],  Nature,  386, 578-584.
* Van Keken, P.E., S.D. King, H. Schmeling, U.R. Christensen (1997) A comparison of methods for the modeling of thermochemical convection,  J. Geophys. Res.,  102: 22477-22495.
+
* Van Keken, P.E., S.D. King, H. Schmeling, U.R. Christensen (1997) [http://www.agu.org/pubs/crossref/1997/97JB01353.shtml A comparison of methods for the modeling of thermochemical convection],  J. Geophys. Res.,  102: 22477-22495.
* Van Keken PE, Ballentine CJ, Porcelli D. (2001) A dynamical investigation of the heat and helium imbalance,  Earth Planet. Sci. Lett.,  188 421-34.
+
* Van Keken PE, Ballentine CJ, Porcelli D. (2001) [http://www.sciencedirect.com/science/article/pii/S0012821X01003430 A dynamical investigation of the heat and helium imbalance],  Earth Planet. Sci. Lett.,  188 421-34.
* Van Keken, P.E., Hauri, E.H. and Ballentine, C.J. (2002) Mantle Mixing: the Generation, Preservation and Destruction of Chemical HeterogeneityAnnual Reviews of Earth and Planetary Science, 30, in press.
+
* Van Keken, P.E., Hauri, E.H. and Ballentine, C.J. (2002) [http://www.annualreviews.org/doi/abs/10.1146/annurev.earth.30.091201.141236 Mantle Mixing: the Generation, Preservation and Destruction of Chemical Heterogeneit]yAnnu. Rev. Earth Planet. Sci., 30, 493-525, DOI: 10.1146<nowiki>/annurev.ea</nowiki>rth.30.091201.141236
* White WM and Hofmann AW. (1982) Sr and Nd isotope geochemistry of oceanic basalts and mantle evolution,  Nature, 296, 821-5.
+
 
* Wolf G.H. and M. S. T. Bukowinski (1988) Variational stabilization of ionic charge densities in the electron-gas theory of crystals: Applications to MgO and CaO,  Phys. Chem. Mineral.,  15, 209-220.
+
 
* Woodhouse, J.H. and A.M. Dziewonski (1984) Mapping the upper mantle: three-dimensional modeling of Earth structure by inversion of seismic waveforms,  J. Geophys. Res.,  89, 5953-86.
+
 
* Woodhouse, J.H., D. Giardini, and X.-D. Li (1986) Evidence for inner core anisotropy from splitting in free oscillation data,  Geophys. Res. Lett.,  13, 1549-1552.
+
* White WM and Hofmann AW. (1982) [http://www.nature.com/nature/journal/v296/n5860/abs/296821a0.html Sr and Nd isotope geochemistry of oceanic basalts and mantle evolution],  Nature, 296, 821-5.
* Woodhouse, J.H., and A.M. Dziewonski (1989) Seismic modeling of the Earth's large-scale three dimensional structure,  Philos. Trans. R. Soc. Lond. A,  328, 291-308.
+
* Wolf G.H. and M. S. T. Bukowinski (1988) [http://www.springerlink.com/content/rh8n337128541277/ Variational stabilization of ionic charge densities in the electron-gas theory of crystals: Applications to MgO and CaO],  Phys. Chem. Mineral.,  15, 209-220.
* Wysession, M. E. (1996) Large-scale structure at the core-mantle boundary from diffracted waves,  Nature,  382, 244-248.
+
* Woodhouse, J.H. and A.M. Dziewonski (1984) [http://www.agu.org/pubs/crossref/1984/JB089iB07p05953.shtml Mapping the upper mantle: three-dimensional modeling of Earth structure by inversion of seismic waveforms],  J. Geophys. Res.,  89, 5953-86.
* Wysession, M. E. (1999) Lateral variations in compressional/shear velocities at the base of the mantle,  Science,  284, 120-124.
+
* Woodhouse, J.H., D. Giardini, and X.-D. Li (1986) [http://www.agu.org/pubs/crossref/1986/GL013i013p01549.shtml Evidence for inner core anisotropy from splitting in free oscillation data],  Geophys. Res. Lett.,  13, 1549-1552.
* Zhong, S., M.T. Zuber, L. Moresi, and M. Gurnis (2000) Role of temperature-dependent viscosity and surface plates in spherical shell models of mantle convection,  J. Geophys. Res.,  105: 11,063-11,082.
+
* Woodhouse, J.H., and A.M. Dziewonski (1989) [http://rsta.royalsocietypublishing.org/content/328/1599/291 Seismic modeling of the Earth's large-scale three dimensional structure],  Philos. Trans. R. Soc. Lond. A,  328, 291-308.
* Zindler A, Hart S. (1986) Chemical Geodynamics,  Annu. Rev. Earth Planet. Sci., 14, 493-571.
+
* Wysession, M. E. (1996) [http://www.nature.com/nature/journal/v382/n6588/abs/382244a0.html Large-scale structure at the core-mantle boundary from diffracted waves],  Nature,  382, 244-248.
 +
* Wysession, M. E. (1999) [http://www.sciencemag.org/content/284/5411/120.abstract Lateral variations in compressional/shear velocities at the base of the mantle],  Science,  284, 120-124.
 +
* Zhong, S., M.T. Zuber, L. Moresi, and M. Gurnis (2000) [http://www.agu.org/pubs/crossref/2000/2000JB900003.shtml Role of temperature-dependent viscosity and surface plates in spherical shell models of mantle convection],  J. Geophys. Res.,  105: 11,063-11,082.
 +
* Zindler A, Hart S. (1986) [http://www.annualreviews.org/doi/abs/10.1146/annurev.ea.14.050186.002425 Chemical Geodynamics],  Annu. Rev. Earth Planet. Sci., 14, 493-571.
  
  

Revision as of 17:19, 16 July 2012


We are starting the compilation of a bibliography pertaining to the Deep Earth Interior. We welcome your additions and comments. Email us. CIDER Bibliography

Bréger, L. and B. Romanowicz (1998), Three-Dimensional Structure at the Base of the Mantle Beneath the Central Pacific, Science, 282, 718-720.

doi:10.1029/2001JB001663.

doi:10.1029/2002JB002053.




Please send your comments and feedback to us [ mailto:earth@seismo.berkeley.edu ].

Return to CIDER Overview

This page was last update on 22:42, 4 March 2012 (PST).

Personal tools
Message Board
Current Program:
Upcoming Program: