- 1 hour 53 minutes05 - Imagerie sismique de la terre profonde
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2019-2020
Imagerie sismique de la terre profonde
26 November 2019, 4:52 pm - 2 hours 1 minute04 - Imagerie sismique de la terre profonde
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2019-2020
Imagerie sismique de la terre profonde
19 November 2019, 6:34 pm - 1 hour 45 minutes03 - Imagerie sismique de la terre profonde
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2019-2020
Imagerie sismique de la terre profonde
12 November 2019, 9:05 am - 1 hour 59 minutes02 - Imagerie sismique de la terre profonde
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2019-2020
Imagerie sismique de la terre profonde
5 November 2019, 5:15 pm - 2 hours 45 seconds01 - Imagerie sismique de la terre profonde
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2019-2020
Imagerie sismique de la terre profonde
29 October 2019, 5:09 pm - 1 hour 34 minutes04 - Les séismes profonds
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2018-2019
Les séismes profonds
Bibliographie Cours no 3 - Séismes de profondeur intermédiaire et déshydratation de la croûte et de la lithosphère
Brudzinski, M. R., C. H. Thurber, B. R. Hacker and E. R. Engdahl (2007) Global Prevalence of Double Benioff Zones, Science, 316, 1472-1474.
Faccenda, M. (2014) Water in the slab: a trilogy, Tectonophys. 614, 1-30.
Garth, T. and A. Riebrock (2017) Constraining the hydration of the subducting Nazca plate beneath northern Chile using subduction zone guided waves, Earth Planet. Sci. lett, 474, 237-247.
Hacker, B., R., S. M. Peacock, G. A. Abers and S. D. Holloway (2003) Subduction factory. 2. Are intermediate-depth earthquakes in subducting slabs linked to metamorphic dehydration reactions? J. Geophys. Res., 108, B1, 2030.
Kawakatsu, H. (1985) Double seismic zones in Tonga, Nature, 316, 53-55
Kawakatsu, H. and S. Watada (2008) Seismic Evidence for Deep-Water Transportation in the Mantle, Science, 316, 1468-1471.
Kita, S., T. Okada, A. Hasegawa, J. Nakjima, T. Matsuzawa (2010) Existence of interplane earthquakes and neutral stress boundary between the upper and lower planes of the double seismic zone beneath Tohoku and Hokkaido in northeastern Japan, Tectonoph. 496, 68-92.
Kirby, S., E. R. Engdahl, R. Denlinger (1996) Intermediate-Depth Intraslab Earthquakes and Arc Volcanismas physical expression of mantle metamorphism in subducting slabs (Overview), in "SUbduction Top to Bottom", AGU Monograph Series, edited by G. B. Bebout et al., AGU, Washington, D.C.
Naif, S., K. Key, S. Constable, and R. L. Evans (2015) Water-rih bending faults at the Middle AMerica Trench, G-Cubed, 16, 2582-2597.
Ranero, C. R., J. P. Morgan, K. McINtosh and C. Reichert (2003) Bending-related faulting and mantle serpentinization at the Middle America Trench, Nature 425, 367-373.
Peacock, S. M. (2001) Are the lower planes of double seismic zones caused by serpentine dehydration in subducting oceanic mantle? Geology, 29, 299-302.
Reynard, B. (2013) Serpentine in active subduction zones, Lithos, 178, 171-185.
Rondenay, S., G. A. Abers and P. E. van Keken (2008) Seismic imaging of subduction zone metamorphism, Geology, 36, 275-278.
Shillington, D. J., A. Becel., M. R. Nedimovic, H. Kuehn et al. (2015) Link between plate fabric, hydration and subduction zone seismicity in Alaska, Nat. Geosc., 8, 961- 964
12 November 2018, 12:53 pm - 1 hour 32 minutes03 - Les séismes profonds
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2018-2019
Les séismes profonds
Bibliographie Cours no 3 - Séismes de profondeur intermédiaire et déshydratation de la croûte et de la lithosphère
Brudzinski, M. R., C. H. Thurber, B. R. Hacker and E. R. Engdahl (2007) Global Prevalence of Double Benioff Zones, Science, 316, 1472-1474.
Faccenda, M. (2014) Water in the slab: a trilogy, Tectonophys. 614, 1-30.
Garth, T. and A. Riebrock (2017) Constraining the hydration of the subducting Nazca plate beneath northern Chile using subduction zone guided waves, Earth Planet. Sci. lett, 474, 237-247.
Hacker, B., R., S. M. Peacock, G. A. Abers and S. D. Holloway (2003) Subduction factory. 2. Are intermediate-depth earthquakes in subducting slabs linked to metamorphic dehydration reactions? J. Geophys. Res., 108, B1, 2030.
Kawakatsu, H. (1985) Double seismic zones in Tonga, Nature, 316, 53-55
Kawakatsu, H. and S. Watada (2008) Seismic Evidence for Deep-Water Transportation in the Mantle, Science, 316, 1468-1471.
Kita, S., T. Okada, A. Hasegawa, J. Nakjima, T. Matsuzawa (2010) Existence of interplane earthquakes and neutral stress boundary between the upper and lower planes of the double seismic zone beneath Tohoku and Hokkaido in northeastern Japan, Tectonoph. 496, 68-92.
Kirby, S., E. R. Engdahl, R. Denlinger (1996) Intermediate-Depth Intraslab Earthquakes and Arc Volcanismas physical expression of mantle metamorphism in subducting slabs (Overview), in "SUbduction Top to Bottom", AGU Monograph Series, edited by G. B. Bebout et al., AGU, Washington, D.C.
Naif, S., K. Key, S. Constable, and R. L. Evans (2015) Water-rih bending faults at the Middle AMerica Trench, G-Cubed, 16, 2582-2597.
Ranero, C. R., J. P. Morgan, K. McINtosh and C. Reichert (2003) Bending-related faulting and mantle serpentinization at the Middle America Trench, Nature 425, 367-373.
Peacock, S. M. (2001) Are the lower planes of double seismic zones caused by serpentine dehydration in subducting oceanic mantle? Geology, 29, 299-302.
Reynard, B. (2013) Serpentine in active subduction zones, Lithos, 178, 171-185.
Rondenay, S., G. A. Abers and P. E. van Keken (2008) Seismic imaging of subduction zone metamorphism, Geology, 36, 275-278.
Shillington, D. J., A. Becel., M. R. Nedimovic, H. Kuehn et al. (2015) Link between plate fabric, hydration and subduction zone seismicity in Alaska, Nat. Geosc., 8, 961- 964
5 November 2018, 12:53 pm - 1 hour 30 minutes02 - Les séismes profonds
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2018-2019
Les séismes profonds
Bibliographie Cours no 2- Processus physiques proposés et caractéristiques de la sismicité intermédiaire et profonde
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Scholz, C. (2002) The mechanics of earthquakes and Faulting, Cambridge U. Press, pp 471.
29 October 2018, 12:48 pm - 1 hour 31 minutes01 - Les séismes profonds
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2018-2019
Les séismes profonds
Bibliographie Cours no 1- Introduction
Frohlich, C. (2006) Deep earthquakes, Cambridge U. Press, Cambridge ISBN 978-0-521-82869-7 Houston, H. (2015) Deep earthquakes, Treatise on Geophysics, G. Schubert, Ed., vol 4, chapter 13, Elsevier pubs.
22 October 2018, 11:44 am - 1 hour 40 minutes06 - Les Grands Tremblements de Terre
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2017-2018
Les Grands Tremblements de Terre
Les Grands Séismes : Observation et Modélisation -6- Répliques, glissements lents et autres phénomènes autour des grands séismes
Bibliographie:
"Les grands séismes: observation et modélisation"
Prof. B. Romanowicz, Chaire de Physique de l'Intérieur de la Terre
Bibliographie Cours no 6
Asano, Y. T. Saito, Y. Ito et al. (2011) Spatial distribution and focal mechanisms of aftershocks of the 2011 off the Pacific coast of Tohoku Earthquake, Earth Planet. Scpace, 63, 669-673.
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Hu, Y., R. Bürgmann, N. Uchida et al. (2016) Stress-driven relaxation of heterogeneous upper mantle and time-dependent afterslip following the 2011 Tohoku earthquake, J. Geophys. Res., 121, 385-411.
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Koper, K., A. Hutko, T. Lay, C. J. Ammon and H. Kanamori(2011) Frequency- dependent rupture process of the 2011 Mw 9.0 Tohoku Earthquake: Comparison of short-period P wave backprojection images and broadband seismic rupture models, Earth Sci. Space, 63, 599-602.
Lay, T., H. Kanamori et al. (2012) Depth-varying rupture properties of subduction zone megathrust faults, J. Geophys. Res., 117, B04311.
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20 November 2017, 4:21 pm - 1 hour 36 minutes05 - Les Grands Tremblements de Terre
Barbara Romanowicz
Physique de l'intérieur de la terre
Année 2017-2018
Les Grands Tremblements de Terre
Les Grands Séismes : Observation et Modélisation -5- Imagerie de la source sismique (fin) : Le séisme de Fukushima (Tohoku) de 2011. Mw 9.0
Bibliographie:
"Les grands séismes: observation et modélisation"
Barbara Romanowicz, Chaire de Physique de l'Intérieur de la Terre Bibliographie Cours no5
Fujii, Y. and K. Satake (2007) Tsunami Source of the 2004 Sumatra–Andaman Earthquake Inferred from Tide Gauge and Satellite Data, Bull. Seism. Soc. Amer., 97, S192-S207.
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