Références bibliographiques
176
sediment
thickness.
Estuar.
Coast.
Shelf
Sci.
234,
106636.
https://doi.org/10.1016/j.ecss.2020.106636
Dolan, R., Davis, R.E., 1992. An intensity scale for Atlantic Coast Northeast Storms. J. Coast.
Res. URL https://www.jstor.org/stable/4298040.
Dolan, R., Hayden, B., Bosserman, K., Lisle, L., 1987. Frequency and Magnitude Data on
Coastal Storms. J. Coast. Res. 3.
Dolan, R., Hayden, B.P., May, P., et May, S., 1980. The reliability of shoreline change
measurements from aerial photographs. Shore and Beach.
Dolan, R., Lins, H., Hayden, B., 1988. Mid-Atlantic Coastal Storms. J. Coast. Res. 4.
Domzig, A., 2006. Déformation active et récente, et structuration tectono-sédimentaire de la
marge sous-marine algérienne.
Doodson, A.T., 1924. Meteorological Perturbations of Sea-Level and Tides. Geophys. J. Int. 1,
124–147. https://doi.org/10.1111/j.1365-246X.1924.tb05363.x
Doronzo, D.M., Dellino, P., 2013. Hydraulics of subaqueous ash flows as deduced from their
deposits: 2. Water entrainment, sedimentation, and deposition, with implications on
pyroclastic density current deposit emplacement. J. Volcanol. Geotherm. Res. 258, 176–
186. https://doi.org/10.1016/j.jvolgeores.2013.04.013
Dorsch, W., Newland, T., Tassone, D., Tymons, S., Walker, D., 2008. A statistical approach to
modelling the temporal patterns of ocean storms. J. Coast. Res. 24, 1430–1438.
https://doi.org/10.2112/07-0847.1
Drazen, D.A., Melville, W.K., Lenain, L., 2008. Inertial scaling of dissipation in unsteady
breaking
waves.
J.
Fluid
Mech.
611,
307–332.
https://doi.org/10.1017/S0022112008002826
Dubarbier, B., 2014. Modélisation numérique de l evolution des profils de plages sableuses
dominées par l’action de la houle.
Dubarbier, B., Castelle, B., Ruessink, G., Marieu, V., 2017. Mechanisms controlling the
complete accretionary beach state sequence. Geophys. Res. Lett. 44, 5645–5654.
https://doi.org/10.1002/2017GL073094
EGIS EAU, IAU-IDF, B., 2013. Etude sur la vulnérabilité et l’adaptation de la Wilaya d’Alger
au changement climatique et aux risques naturels.
Elgar, S., Guza, R.T., 1985. Shoaling gravity waves: Comparisons between field observations,
linear theory, and a nonlinear model. J. Fluid Mech. 158, 47–70.
https://doi.org/10.1017/S0022112085002543
Emmett, W.W., 1980. A field calibration of the sediment-trapping characteristics of the HelleySmith bed-load sampler. Prof. Pap. 1139. https://doi.org/10.3133/PP1139
Engelund, F., Fredsoe, J., 1976. A sediment transport model for straight alluvial channels.
Hydrol. Res. 7, 293–306. https://doi.org/10.2166/nh.1976.0019
Ernst, J.A., Matson, M., 1983. a Mediterranean Tropical Storm? Weather 38, 332–337.
https://doi.org/10.1002/j.1477-8696.1983.tb04818.x
Fan, D., Guo, Y., Wang, P., Shi, J.Z., 2006. Cross-Shore Variations in Morphodynamic
Processes of an Open-Coast Mudflat in the Changjiang Delta, China: With an Emphasis
on
Storm
Impacts.
Cont.
Shelf
Res.
26,
517.
https://doi.org/https://doi.org/10.1016/j.csr.2005.12.011
Faranda, D., Coppola, E., 2022. The “Medicanes” (Mediterranean Hurricanes) and climate
change – Xaida. Xaida. URL https://xaida.eu/medicanes-and-climate-change/
Faye, I.B.N., 2010. Dynamique du trait de côte sur les littoraux sableux de la Mauritanie à la
Guinée-Bissau (Afrique de l’Ouest) : Approches régionale et locale par photointerprétation, traitement d’images et analyse de cartes anciennes. Volume 1.URL
https://scanr.enseignementsup-recherche.gouv.fr/publication/these2010BRES1001.
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