Références bibliographiques
179
Héquette, A., 2001. Courants et transports sédimentaires dans la zone littorale : le rôle des
courants orbitaux et de downwelling / Currents and sediment transport in the coastal zone:
the role of orbital and downwelling currents. Géomorphologie Reli. Process. Environ. 7,
5–16. https://doi.org/10.3406/morfo.2001.1082
Himmelstoss, E.A., 2009. DSAS 4.0—Installation Instructions and User Guide.. URL
https://www.scirp.org/(S(351jmbntvnsjt1aadkposzje))/reference/ReferencesPapers.aspx?
ReferenceID=1362997.
Hinkel, J., Nicholls, R.J., Tol, R.S.J., Wang, Z.B., Hamilton, J.M., Boot, G., Vafeidis, A.T.,
McFadden, L., Ganopolski, A., Klein, R.J.T., 2013. A global analysis of erosion of sandy
beaches and sea-level rise: An application of DIVA. Glob. Planet. Change 111, 150–158.
https://doi.org/10.1016/J.GLOPLACHA.2013.09.002
Hoefel, F., Elgar, S., 2003. Wave-induced sediment transport and sandbar migration. Science
(80-. ). 299, 1885–1887. https://doi.org/10.1126/science.1081448
Hoegh-Guldberg, O., Jacob, D., Taylor, M., Bindi, M., Brown, S., Camilloni, I., Diedhiou, A.,
Djalante, R., Ebi, K.L., Engelbrecht, F., Guiot, J., Hijioka, Y., Mehrotra, S., Payne, A.,
Seneviratne, S.I., Thomas, A., Warren, R., Zhou, G., 2018. Global Warming of 1.5°C. An
IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial
levels and related global greenhouse gas emission pathways, in the context of
strengthening the global response to the threat of climate change,. IPCC.
Hofland, B., 2005. Rock & roll: Turbulence-induced damage to granular bed protections.
Commun. Hydraul. Geotech. Eng.
Holthuijsen, L.H., 2007. Waves in oceanic and coastal waters. Waves Ocean. Coast. Waters.
https://doi.org/10.1017/CBO9780511618536
Horikawa, K., 1988. Nearshore dynamics and coastal processes : theory, measurement, and
predictive models. University of Tokyo Press, [Tokyo] :
Horta, J., Oliveira, S., Moura, D., Ferreira, Ó., 2018. Nearshore hydrodynamics at pocket
beaches with contrasting wave exposure in southern Portugal. Estuar. Coast. Shelf Sci.
204, 40–55. https://doi.org/10.1016/j.ecss.2018.02.018
Houser, C., 2009. Synchronization of transport and supply in beach-dune interaction. Prog.
Phys. Geogr. 33, 733–746. https://doi.org/10.1177/0309133309350120
Hu, P., Li, W., He, Z., Pähtz, T., Yue, Z., 2015. Well-balanced and flexible morphological
modeling of swash hydrodynamics and sediment transport. Coast. Eng. 96, 27–37.
https://doi.org/10.1016/J.COASTALENG.2014.10.010
Hu, P., Tan, L., He, Z., 2020a. Numerical Investigation on the Adaptation of Dam-Break FlowInduced Bed Load Transport to the Capacity Regime over a Sloping Bed. J. Coast. Res.
36, 1237–1246. https://doi.org/10.2112/JCOASTRES-D-19-00120.1
Hu, P., Xie, J., Li, W., He, Z., Marsooli, R., Wu, W., 2020b. A RANS numerical study of
experimental swash flows and its bed shear stress estimation. Appl. Ocean Res. 100,
102145. https://doi.org/10.1016/J.APOR.2020.102145
Hubbell, D.W., Stevens, H.H., Skinner, J.V., Beverage, J.P., 1985. New approach to calibrating
bed load samplers. J. Hydraul. Eng. 111, 677–694. https://doi.org/10.1061/(ASCE)07339429(1985)111:4(677)
Huguet, J., 2019. Dynamique Hydrosédimentaire en milieu portuaire : Application au port de
plaisance de la Rochelle.
Huynh-Thanh, S., Temperville, A., 1991. Numerical model of the rough turbulent boundary
layer in combined wave and current interaction. Proc. Coast. Eng. Conf. 1, 853–866.
https://doi.org/10.1061/9780872627765.067
Ilich, K., Bishopp, S., Li, F., Bicknell, C., 2009. Erosive capacity of storms on a typical sandy
beach, cross-shore sediment transport modelling. Proc. 5th West. Aust. state. URL
179
Héquette, A., 2001. Courants et transports sédimentaires dans la zone littorale : le rôle des
courants orbitaux et de downwelling / Currents and sediment transport in the coastal zone:
the role of orbital and downwelling currents. Géomorphologie Reli. Process. Environ. 7,
5–16. https://doi.org/10.3406/morfo.2001.1082
Himmelstoss, E.A., 2009. DSAS 4.0—Installation Instructions and User Guide.. URL
https://www.scirp.org/(S(351jmbntvnsjt1aadkposzje))/reference/ReferencesPapers.aspx?
ReferenceID=1362997.
Hinkel, J., Nicholls, R.J., Tol, R.S.J., Wang, Z.B., Hamilton, J.M., Boot, G., Vafeidis, A.T.,
McFadden, L., Ganopolski, A., Klein, R.J.T., 2013. A global analysis of erosion of sandy
beaches and sea-level rise: An application of DIVA. Glob. Planet. Change 111, 150–158.
https://doi.org/10.1016/J.GLOPLACHA.2013.09.002
Hoefel, F., Elgar, S., 2003. Wave-induced sediment transport and sandbar migration. Science
(80-. ). 299, 1885–1887. https://doi.org/10.1126/science.1081448
Hoegh-Guldberg, O., Jacob, D., Taylor, M., Bindi, M., Brown, S., Camilloni, I., Diedhiou, A.,
Djalante, R., Ebi, K.L., Engelbrecht, F., Guiot, J., Hijioka, Y., Mehrotra, S., Payne, A.,
Seneviratne, S.I., Thomas, A., Warren, R., Zhou, G., 2018. Global Warming of 1.5°C. An
IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial
levels and related global greenhouse gas emission pathways, in the context of
strengthening the global response to the threat of climate change,. IPCC.
Hofland, B., 2005. Rock & roll: Turbulence-induced damage to granular bed protections.
Commun. Hydraul. Geotech. Eng.
Holthuijsen, L.H., 2007. Waves in oceanic and coastal waters. Waves Ocean. Coast. Waters.
https://doi.org/10.1017/CBO9780511618536
Horikawa, K., 1988. Nearshore dynamics and coastal processes : theory, measurement, and
predictive models. University of Tokyo Press, [Tokyo] :
Horta, J., Oliveira, S., Moura, D., Ferreira, Ó., 2018. Nearshore hydrodynamics at pocket
beaches with contrasting wave exposure in southern Portugal. Estuar. Coast. Shelf Sci.
204, 40–55. https://doi.org/10.1016/j.ecss.2018.02.018
Houser, C., 2009. Synchronization of transport and supply in beach-dune interaction. Prog.
Phys. Geogr. 33, 733–746. https://doi.org/10.1177/0309133309350120
Hu, P., Li, W., He, Z., Pähtz, T., Yue, Z., 2015. Well-balanced and flexible morphological
modeling of swash hydrodynamics and sediment transport. Coast. Eng. 96, 27–37.
https://doi.org/10.1016/J.COASTALENG.2014.10.010
Hu, P., Tan, L., He, Z., 2020a. Numerical Investigation on the Adaptation of Dam-Break FlowInduced Bed Load Transport to the Capacity Regime over a Sloping Bed. J. Coast. Res.
36, 1237–1246. https://doi.org/10.2112/JCOASTRES-D-19-00120.1
Hu, P., Xie, J., Li, W., He, Z., Marsooli, R., Wu, W., 2020b. A RANS numerical study of
experimental swash flows and its bed shear stress estimation. Appl. Ocean Res. 100,
102145. https://doi.org/10.1016/J.APOR.2020.102145
Hubbell, D.W., Stevens, H.H., Skinner, J.V., Beverage, J.P., 1985. New approach to calibrating
bed load samplers. J. Hydraul. Eng. 111, 677–694. https://doi.org/10.1061/(ASCE)07339429(1985)111:4(677)
Huguet, J., 2019. Dynamique Hydrosédimentaire en milieu portuaire : Application au port de
plaisance de la Rochelle.
Huynh-Thanh, S., Temperville, A., 1991. Numerical model of the rough turbulent boundary
layer in combined wave and current interaction. Proc. Coast. Eng. Conf. 1, 853–866.
https://doi.org/10.1061/9780872627765.067
Ilich, K., Bishopp, S., Li, F., Bicknell, C., 2009. Erosive capacity of storms on a typical sandy
beach, cross-shore sediment transport modelling. Proc. 5th West. Aust. state. URL
