Uneingeschränkter Zugang

Use of Electrical Resistivity Tomography for Joint Geophysical and Geotechnical Landslide Characterization: A Case Study


Zitieren

Achour, Y., Boumezbeur, A., Hadji, R., Chouabbi, A., Cavaleiro, V., & Bendaoud, E. (2017). Landslide susceptibility mapping using analytic hierarchy process and information value methods along a highway road section in Constantine, Algeria. Arab J Geosci, 10(194). https://doi.org/10.1007/s12517-017-2980-6. Search in Google Scholar

Bounemeur, N., Benzaid, R., Kherrouba, H. et al. (2022). Landslides in Mila town (northeast Algeria): causes and consequences. Arab J Geosci, 15(753). https://doi.org/10.1007/s12517-022-09959-7. Search in Google Scholar

Lapenna, V., Lorenzo, P., Perrone, A., Piscitelli, S., Rizzo, E., & Sdao, F. (2005). 2D electrical resistivity imaging of some complex landslides in Lucanian Apennine chain, southern Italy. Geophysics, 70, B11–B18. Search in Google Scholar

Perrone, A., Lappena, V., & Piscitelli, S. (2014). Electrical resistivity technique for landslide investigation: A review. Earth Science Reviews, 135, pp. 65-82. Search in Google Scholar

Husainy, S. N., Bery, A. A., Abir, I. A., Lestari, W., & Akingboye, A. S. (2023). Landslide susceptibilitymapping of Penang Island, Malaysia, using remotesensing and multi-geophysical methods. Earth SciencesResearch Journal, 27(2), pp. 93-107. https://doi.org/10.15446/esrj.v27n2.107274 Search in Google Scholar

Kherrouba, H., Lamara, M., & Benzaid, R. (2022). Geological and Geophysical Characterization Using Electrical Resistivity Imaging of Certain Landslides at Djimla region (Jijel, Northeast Algeria). In: Advances in Geophysics, Tectonics and Petroleum Geosciences. CAJG 2019. Advances in Science, Technology & Innovation. Springer, Cham. https://doi.org/10.1007/978-3-030-73026-0_70. Search in Google Scholar

Hack, R., Havenith, H.B., Jongmans, D., Abdrakmatov, K., Trefois, P., Delvaux, D., & Torgoev, A. (2000). Geophysics for slope stability. Surveys in Geophys, 21, pp. 423-448. Search in Google Scholar

Jongmans, D., & Garambois, S. (2007). Geophysical investigation of landslides: A review. Bulletin de la Société Géologique de France. 178, pp. 101-112. Search in Google Scholar

Grandjean, G., Bitri, A., Pennetier, C., Meric, O., & Malet, J.P. (2006). Caractérisation de la structure interne et de l’état hydrique de glissements argilo-marneux par tomographie géophysique : l’exemple du terrain de Super-Sauze (Alpes du Sud,France).C.R.Acad.Sci, 338, pp. 587-595. https://doi.org/10.1016/j.crte.2006.03.013. Search in Google Scholar

Kherrouba, H. (2008). Etude géologique et géotechnique des zones instables de la région de Texenna-Djimla, wilaya de Jijel, (Algérie). Mém de Magister. UnivJijel. Algérie. Search in Google Scholar

Meziani, B., Machane, D., Bendaoud, D., CheikhLounis, G., Oubaiche, E., Chabane, S., Bensalem, R., & Moulouel, H. (2017). Geotechnical and geophysical characterization of the Bouira-Algiers Highway (AinTurck, Algeria) landslide. Arab J Geosci, 10(117). https://doi.org/10.1007/s12517-017-2926-z. Search in Google Scholar

Bouillin, J.P. (1979). La transversale de Collo et d’El Milia (Petite Kabylie) une région clef pour l’interprétation de la tectonique alpine de la chaîne littorale d’Algérie. ThèseDoct. Univ. P.M.C, Paris, France. Search in Google Scholar

Djellit, H. (1987). Evolution tectono-métamorphique du socle Kabyle et polarité demise en place des nappes de flyschs en Petite Kabylie occidentale (Algérie). Thèse Doct. Univ d’Orsay Paris. Search in Google Scholar

Durand Delga, M. (1955). Étude géologique de l’Ouest de la Chaine numidique. Bull. Serv.Carte Géol. Alger.2 (24). Search in Google Scholar

Maameri, R., & Tebboub, M. (2019). Apport de l’imagerie géophysique à l’étude des glissements de terrain. Pénétrante autoroutière 77-région de Tamentout -Jijel (Nord-Est Algérien). Mém de Master. UnivJijel. Search in Google Scholar

RPOA (2008). Règles parasismiques applicables au domaine des ouvrages d’art, Document Technique Règlementaire (DTR), Ministère des Travaux Publics, Algérie. Search in Google Scholar

Rizzani De Eccher (2016). Rapports de l’étude géotechnique, Annexe B, Campagne de reconnaissance d’EXE, p187; Annexe D, Essai in situ et enlaboratoire, Rapport géotechnique, pp18. Terrassement; Source: Agence Nationale des Autoroutes (ANA), Jijel, 2019. Search in Google Scholar

Friedel, S., Thielen, A., & Springman, S.M. (2006). Investigation of a slope endangered by rainfall-induced landslides using 3D resistivity tomography and geotechnical testing. J Appl Geophys 60, pp. 100-114. https://doi.org/10.1016/j.jappgeo.2006.01.001. Search in Google Scholar

Lebourg, T., Binet, S., Tric, E., Jomard, H., & El Bedoui, S. (2005). Geophysical survey to estimate the 3D sliding surface and the 4D evolution of the water pressure on part of a deep-seated landslide. Terra Nova 17, 399–406. https://doi.org/10.1111/j.1365-3121.2005.00623.x. Search in Google Scholar

Mezerreg, NEH, Kessasra, F., Bouftouha, Y., Bouabdallah, H., Bollot, N., Baghdad, A., & Bougdal, R. (2019). Integrated geotechnical and geophysical investigations in a landslide site at Jijel, Algeria. J Afr Earth Sci, 160. 103633. https://doi.org/10.1016/j.jafrearsci.2019.103633. Search in Google Scholar

Wilkinson, P.B., Loke, M.H., Meldrum, P.I., Chambers, J.E., Kuras, O., Gunn, D.A., & Ogilvy, R.D. (2012). Practical aspects of applied optimized survey design for electrical resistivity tomography. Geophys. J. Int, 189, pp. 428-440. Search in Google Scholar

Kherrouba, H., Lamara, M., & Benzaid, R. (2019). Contribution of electrical tomography to the study of lanslides in Texenna region (Northeast Algeria). In Sundararajan N et al. (eds.), On Significant Applications of Geophysical Methods, Advances in Science, Technology & Innovation. https://doi.org/10.1007/978-3-030-01656-2_11. Search in Google Scholar

Mita, M., Glazer, M., Kaczmarzyk, R., Dąbrowski, M., & Mita, K. (2018). Case study of electrical resistivity tomography measurements used in landslides investigation, Southern Poland. Contemp Trends Geosci, 7(1). pp.110–126. https://doi.org/10.2478/ctg-2018-0007. Search in Google Scholar

Pasierb, B., Grodecki, M. & Gwóźdź, R. (2019). Geophysical and geotechnical approach to a landslide stability assessment: a case study. ActaGeophys, 67, pp. 1823–1834. 2019. https://doi.org/10.1007/s11600-019-00338-7. Search in Google Scholar

Rapport de l’étude géophysique des glissements de terrain de Tamentout. Bureau d’engineering, études et équipements en géosciences “GeoExplo”, (2018). Alger. Source: Agence Nationale des Autoroutes (ANA). Search in Google Scholar

Bellanova, J., Giuseppe, G., Giocoli, A., Luongo, R., Macchiato, M., Perron, A., Uhlemann, S., & Piscitelli S. (2018). Electrical resistivity imaging for the characterization of the Montaguto landslide (southern Italy). Eng.Geol 243:272-281. https://doi.org/10.1016/j.enggeo.2018.07.014. Search in Google Scholar

Gueguen, P., Garambois, S., Cravoisier, S., & Jongmans, D. (2004). Geotechnical, geophysical, and seismological methods for surface sedimentary layers analysis. 13th World Conference on Earthquake Engineering Vancouver, B.C., Canada, Paper No. 1777. Search in Google Scholar

Ehrmann, F. (1946). Carte Géologique Tamesguida au 1/50000. Bulletin du Service de la carte géologique de l’Algérie. Search in Google Scholar

eISSN:
1338-7278
Sprache:
Englisch
Zeitrahmen der Veröffentlichung:
2 Hefte pro Jahr
Fachgebiete der Zeitschrift:
Technik, Einführungen und Gesamtdarstellungen, andere