SUBMARIN

Subducția neregularităților batimetrice ale plăcilor oceanice (munți submarini și zone de fractură) și impactul asupra marginilor de placă active


CONCEPT ..::.. BIBLIOGRAFIE

• Manea M., Manea V., Ferrari L., Kostoglodov V., Bandy W. L., (2005) Tectonic evolution of the Tehuantepec Ridge, Earth and Planetary Science Letters, Volume 238, Issues 1–2, 2005, Pages 64-77, ISSN 0012-821X, https://doi.org/10.1016/j.epsl.2005.06.060.

• Sdrolias, M., and Müller, D., 2006. Controls on backarc basin formation: Geochemistry Geophysics Geosystems. 7. doi:10.1029/ 2005GC001090

• Gerya, T. V. and D. A. Yuen. Robust characteristics method for modelling multiphase visco- elasto-plastic thermo-mechanical problems. Physics of the Earth and Planetary Interiors 163(1-4): 83-105, (2007).

• Fuchs, L., Schmeling, H. and Koyi, H., Numerical models of salt diapir formation by down‐building: the role of sedimentation rate, viscosity contrast, initial amplitude and wavelength. Geophysical Journal International, 186: 390-400, (2011).

• Fernandez, N., J.P. Kaus, B., Fold interaction and wavelength selection in 3D models of multilayer detachment folding, Tectonophysics, Volume 632, Pages 199-217, ISSN 0040-1951, (2014).

• Fernandez, N., J.P. Kaus, B., Pattern formation in 3-D numerical models of down-built diapirs initiated by a Rayleigh–Taylor instability, Geophysical Journal International 202 (2), 1253-1270, (2015).

• N. Fernandez, MR Hudec, CAL Jackson, TP Dooley, OB Duffy, The competition for salt and kinematic interactions between minibasins during density-driven subsidence: observations from numerical models. Petroleum Geoscience 26 (1), 3-15, (2020).

• Crameri, F., Tackley, P. J., Meilick, I., Gerya, T. V., & Kaus, B. J. P. A free plate surface and weak oceanic crust produce single‐sided subduction on Earth. Geophysical Research Letters, 39(3), L03306 (2012).

• Gerya, T., Introduction to numerical geodynamic modelling. Cambridge University Press. 2nd Edition. (2019).

• Schmeling, H., A. Y. Babeyko, A. Enns, C. Faccenna, F. Funiciello, T. Gerya, G. J. Golabek, S. Grigull, B. J. P. Kaus, G. Morra, S. M. Schmalholz and J. van Hunen. A benchmark comparison of spontaneous subduction models-Towards a free surface. Physics of the Earth and Planetary Interiors 171(1-4): 198-223, (2008).

• Gerya, T. V. and D. A. Yuen. Characteristics-based marker-in-cell method with conservative finite-differences schemes for modeling geological flows with strongly variable transport properties. Physics of the Earth and Planetary Interiors 140(4): 293-318, (2003).

• German, C., and Seyfried, W., 2014. Hydrothermal processes. In Turekian, H. (ed.), Treatise on Geochemistry, 2nd edn. Amsterdam: Elsevier.

• Sclater, J.G., L. Royden, F. Horvath, B.C. Burchfiel, S. Semken, and L. Stegena, The formation of the intra-Carpathian basins as determined from subsidence data, Earth Planet.Sci. Lett., 51, 139-162, 1980.

• Stein, C. A., and Stein, S. (1994), Constraints on hydrothermal heat flux through the oceanic lithosphere from global heat flow, J. Geophys. Res., 99( B2), 3081– 3095.

• P.T. Harris, M. Macmillan-Lawler, J. Rupp, E.K. Baker, Geomorphology of the oceans, Marine Geology, Volume 352, 2014, Pages 4-24, ISSN 0025-3227.

• Wessel, P. (2001), Global distribution of seamounts inferred from gridded Geosat/ERS-1 altimetry, J. Geophys. Res., 106( B9), 19431– 19441.

• Mottl, M.J. 2003. Partitioning of energy and mass fluxes between mid-ocean ridge axes and flanks at high and low temperature. Pp. 271–¬286 in Energy and Mass Transfer in Submarine Hydrothermal Systems. P. Halbach, V. Tunnicliffe, and J. Hein, eds, Dahlem University Press, Berlin, Germany.

• Schultz, A., and Elderfield, H., 1997, Controls of the physics and chemistry of seafloor hydrothermal circulation: Royal Society of London Philosophical Transactions, ser. A, v. 355, p. 387–425.

• Villinger, H. W., Pichler, T., Kaul, N., Stephan, S., Pälike, H., and Stephan, F. (2017), Formation of hydrothermal pits and the role of seamounts in the Guatemala Basin (Equatorial East Pacific) from heat flow, seismic, and core studies, Geochem. Geophys. Geosyst., 18, 369– 383.

• Lister, C.R.B., 1972, On the thermal balance of a mid-ocean ridge: Royal Astronomical Society Geophysical Journal, v. 26, p. 515–535.

• Fisher, A.T., E.E. Davis, M. Hutnak, V. Spiess, L. Zűhlsdorff, A. Cherkaoui, L. Christiansen, K.M. Edwards, R. Macdonald, H. Villinger, and others. 2003a. Hydrothermal recharge and discharge across 50 km guided by seamounts on a young ridge flank. Nature 421:618–621.

• Fisher, A.T., C.A. Stein, R.N. Harris, K. Wang, E.A. Silver, M. Pfender, M. Hutnak, A. Cherkaoui, R. Bodzin, and H. Villinger. 2003b. Abrupt thermal transition reveals hydrothermal boundary and role of seamounts within the Cocos Plate. Geophysical Research Letters 30(11).

• Harris, R.N., Von Herzen, R.P., McNutt, M.K., Garven, G., and Jordahl, K., 2000a, Submarine hydrogeology of the Hawaiian archipelagic apron: 1. Heat flow patterns north of Oahu and Maro Reef: Journal of Geophysical Research, v. 105, p. 21,353–21,369.

• Harris, R.N., Garven, G., Georgen, J., McNutt, M.K., and Von Herzen, R.P., 2000b, Submarine hydrogeology of the Hawaiian archipelagic apron: 2. Numerical simulations of coupled heat transport and fluid flow: Journal of Geophysical Research, v. 105, p. 21,371–21,385.

• D.M. Winslow, A.T. Fisher Sustainability and dynamics of outcrop-to-outcrop hydrothermal circulation. Nat. Commun (2015), 10.1038/ncomms8567.

• Kawada, Y., Nobukazu, S., Tetsuro, U., 2011. The role of seamounts in the transport of heat and fluids: Relations among seamount size, circulation patterns, and crustal heat flow, Earth and Planetary Science Letters, Volume 306, Issues 1–2, Pages 55-65, ISSN 0012-821X.

• Kelley, D.S., Karson, J.A., Blackman, D.K., Frűh-Green, G., Butterfield, D.A., Lilley, M.D., Olson, E.J., Schrenk, M.O., Roe, K.K., Lebon, G.T., and Rivizzigno, P., 2001, An off-axis hydrothermal vent field near the MidAtlantic Ridge at 308N: Nature, v. 412, p. 145–149.

• Amante, C., Eakins, B. W., 2009. ETOPO1 1 Arc-Minute Global Relief Model: Procedures, Data Sources and Analysis (US Department of Commerce, National Oceanic and Atmospheric Administration, National Environmental Satellite, Data, and Information Service, National Geophysical Data Center, Marine Geology and Geophysics Division MarkO.).

• Anderson, B. W., Coogan, L. A., Gillis, K. M., 2012. The role of outcrop-to-outcrop fluid flow in off-axis oceanic hydrothermal systems under abyssal sedimentation conditions, Journal of Geophysical Research, 117, B05103.

• Guo, Z., Rüpke, L.,Tao, C., 2020. HydrothermalFoam v1.0: a 3-D hydrothermal transport model for natural submarine hydrothermal systems, Geosciences Model Development, 13, 6547–6565.

• Sewell, E., G., 2018. Solving partial differential equation applications with PDE2D, John Wiley and Sons.

• Bear, J., 1988. Dynamics of Fluids in Porous Media. Dover Pub., New York.

• Fontaine, F.J., Wilcock, W.S.D., 2007. Two-dimensional models of open-top hydrothermal convection at high Rayleigh and Nusselt numbers: implications for mid-ocean ridges.

• Kawada, Y., Yoshida, S., 2010. Formation of a hydrothermal reservoir due to anhydrite precipitation in an arc volcano hydrothermal system. Journal of Geophysical Research. 115.