Accès gratuit
Numéro
Rev. Fr. Geotech.
Numéro 178, 2024
RFG Digues 2024
Numéro d'article 7
Nombre de pages 8
DOI https://doi.org/10.1051/geotech/2024010
Publié en ligne 26 mars 2024
  • van Beek VM. 2015. Backward erosion piping: initiation and progression. Dissertation. Delft: Technische Universiteit Delft. [Google Scholar]
  • Bonelli S, ed. 2012. Erosion of geomaterials. London/New York: Wiley-ISTE, 371 p. [Google Scholar]
  • Bonelli S, ed. 2013. Erosion in geomechanics applied to dams and levees. London/New York: Wiley-ISTE, 388 p. [Google Scholar]
  • Carozza JM, Puig C. Changes in watercourse routes according to historical and geomorphological sources in the Roussillon plain since the 12th century: theoretical approach and first results. In : Ropiot V, Puig C, Mazière F, eds. The coastal plains in the north-western Mediterranean, Crossed perspectives of history, archeology and geography, from Protohistory to the Middle Ages. Montagnac: Éditions monique mergoil, 2012, pp. 297–312. [Google Scholar]
  • Carozza JM, Puig C, Odiot T, Passarrius O, Valette P. 2013. On the construction of the Lower Salanque Plain (Roussillon, France) during the second part of the Holocene and its implications on the distribution of archaeological sites. Quaternaire 2: 129–139. [CrossRef] [Google Scholar]
  • Chavez Olalla J, Winkels TG, Ngan-Tillard DJM, Heimovaara TJ. 2022. Geophysical tomography as a tool to estimate the geometry of soil layers: relevance for the reliability assessment of dikes. GEORISK 16(4): 678–698. [Google Scholar]
  • Danka J, Zhang LM. 2015. Dike failure mechanisms and breaching parameters. J. Geotech. Geoenviron Eng − ASCE 141(9). https://doi.org/10.1061/(ASCE)GT.1943-5606.0001335. [Google Scholar]
  • DeHaan H, Stamper J, Walters B. 2012. Mississippi River and tributaries system 2011 post-flood report. Vicksburg: USACE, Mississippi Valley Division. [Google Scholar]
  • Dezert T, Fargier Y, Palma Lopes S, Cote P. 2019. Geophysical and geotechnical methods for fluvial levee investigation: A review. Eng Geology 260: 18. [Google Scholar]
  • Garcia Martinez MF, Tonni L, Marchi M, Tozzi S, Gottardi G. 2020. Numerical tool for prediction of sand boil reactivations near river embankments. J Geotech Geoenviron Eng 146(12): 06020023. [CrossRef] [Google Scholar]
  • Garner SJ, Fannin RJ. 2010. Understanding internal erosion: A decade of research following a sinkhole event. Hydro Dams Int 17(3): 93–98. [Google Scholar]
  • Girolami L, Bonelli S, Valois R, Chaouch N, Burgat J. 2023. On internal erosion of the pervious foundation of flood protection dikes. Water 15(3747). https://doi.org/10.3390/w15213747. [CrossRef] [Google Scholar]
  • Glynn E, Quinn M, Kuszmaul J. 2012. Predicting piping potential along Middle Mississippi River Levees. Paris: 6th international conference on scour and erosion, pp. 1473–1480. [Google Scholar]
  • Gutierrez F. 2016. Sinkhole Hazards. Oxford research encyclopedia of natural hazard science. Oxford: Oxford Univ. Press, pp. 1–92. [Google Scholar]
  • Holzer TL, Clark MM. 1993. Sand boils without earthquakes. Geology 21(10): 873–876. [CrossRef] [Google Scholar]
  • Karim MZ, Tucker-Kulesza SE, Rutherford CJ, Bernhardt-Barry M. 2019. Geophysical engineering to identify seepage channels in the hager slough levee. Proceedings of the Geo-Congress 2019. Geotechnical Special Publications GSP 311. Philadelphia: Geo-Congress 2019. [Google Scholar]
  • Labaune C, Tesson M, Gensous B, Parize O, Imbert P, Delhaye-Prat V. 2010. Detailed architecture of a compound incised valley system and correlation with forced regressive wedges: Example of Late Quaternary Têt and Agly rivers, western Gulf of Lions, Mediterranean Sea, France. Sedimentary Geology 223(3-4): 360–379. [CrossRef] [Google Scholar]
  • Richards KS, Reddy KR. 2007. Critical appraisal of piping phenomena in earth dams. Bull Eng Geol Environ 66(4): 381–402. [CrossRef] [Google Scholar]
  • Robbins BA, van Beek VM. 2015. Backward erosion piping: A historical review and discussion of influential factors. New Orleans (USA): ASDSO Dam Safety, pp. 1–20. [Google Scholar]
  • Semmens SN, Zhou W. 2019. Evaluation of environmental predictors for sand boil formation: Rhine-Meuse Delta, Netherlands. Environmental Earth Sciences 78(457). https://doi.org/10.1007/s12665-019-8464-0. [CrossRef] [Google Scholar]
  • Tesson M, Labaune C, Gensous B. 2005. Small rivers contribution to the Quaternary evolution of a Mediterranean littoral system: The western gulf of Lion, France. Marine Geology 222(223): 313–334. [CrossRef] [Google Scholar]
  • Tourment R, Benahmed N, Nicaise S, Meriaux P, Salmi A, Rougé M. 2018. Lessons learned on the damaged on the levees of the Agly River, analysis of the sand-boils phenomena, Q. 103 R.21. Proceedings of the 26th ICOLD Congress. Vienna: ICOLD Congress. [Google Scholar]
  • Van MA, Rosenbrand E, Tourment R, Smith P, Zwanenburg C. 2022. Failure paths for levees, International Society of Soil mechanics and Geotechnical Engineering (ISSMGE) − Technical Committee TC201 ‘Geotechnical aspects of dikes and levees’. London: ISSMGE [Google Scholar]
  • Wolff TF. 2002. Performance of levee underseepage controls: A critical review. Rep. No. ERDC/GSL TR-02-19. Washington (DC): USACE. [Google Scholar]
  • Yin ZY, Yang J, Laouafa F, Hicher PY. 2023. A framework for coupled hydro-mechanical continuous modelling of gap-graded granular soils subjected to suffusion. Eur J Environ Civ Eng. doi: 10.1080/19648189.2020.1795724. [Google Scholar]
  • Zwanenburg C, López-Acosta NP, Tourment R, Tarantino A, Pozzato A, Pinto A. 2017. Lessons learned from dike failures in recent decades. Int J Geoeng Case Histories 4(2): 203–229. [Google Scholar]

Les statistiques affichées correspondent au cumul d'une part des vues des résumés de l'article et d'autre part des vues et téléchargements de l'article plein-texte (PDF, Full-HTML, ePub... selon les formats disponibles) sur la platefome Vision4Press.

Les statistiques sont disponibles avec un délai de 48 à 96 heures et sont mises à jour quotidiennement en semaine.

Le chargement des statistiques peut être long.