Numerical Modeling for Slope Stability Analysis: A Case Study of the Landslide on RN12 at PK 119+000, Adekar, Béjaïa, Algeria.
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Numerical Modeling for Slope Stability Analysis: A Case Study of the Landslide on RN12 at PK 119+000, Adekar, Béjaïa, Algeria.
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Abstract
One of the biggest geotechnical risks is landslides, particularly in areas with mountains and seismic activity. Soil reinforcement refers to a variety of methods intended to enhance the mechanical or physical characteristics of the ground by adding inclusions that function in tension, compression, or bending, in light of the technical and financial constraints of conventional retaining wall systems. Among these methods, soil nailing has become a cutting-edge, practical, and flexible stabilization technique. Investigating landslide-induced slope failures and suggesting site-specific soil improvement strategies that increase safety and reduce displacements are the goals of this study. Because landslides occur frequently in the area, a slope along a road in the commune of Adekar, in the Béjaïa province (Algeria), was chosen as the case study site for this investigation. Two-dimensional finite element analysis (FEA) was used to evaluate the slope's stability. This case study provides encouraging insights for the sound design of retaining structures and validates the efficacy of the GTS NX numerical modeling approach in forecasting the behavior of slopes reinforced with soil nails. Overall, this study shows that using soil nailing reinforcement techniques in conjunction with numerical modeling is a viable and effective stabilization method, especially in areas with high rainfall or seismic activity.
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References
[1] Li, H., & Samsudin, N. A., “A systematic review of landslide research in urban planning worldwide”. Natural Hazards, (2024), 1-21. https://doi.org/10.1007/s11069-024-07064-4
[2] Fang, Z., Wang, Y., van Westen, C., & Lombardo, L., “Landslide hazard spatiotemporal prediction based on data-driven models: Estimating where, when and how large landslide may be”. International Journal of Applied Earth Observation and Geoinformation, 126, (2024), 103631. https://doi.org/10.1016/j.jag.2023.103631
[3] Baziz, F., Bahloul, O., & Baziz, N., “The Impact of Construction Activities on the Stability of Highway Slopes”. Engineering, Technology & Applied Science Research, 15(1), (2025),19115-19120. https://doi.org/10.48084/etasr.9185
[4] Qin, H., Yin, X., Tang, H., & Cheng, X., “Reliability analysis and geometric optimization method of cut slope in spatially variable soils with rotated anisotropy”. Engineering Failure Analysis, 158, (2024), 108019. https://doi.org/10.1016/j.engfailanal.2024.108019
[5] Bourdim, S. M. E. A., Chekroun, L. E. H., Benanane, A., & Bourdim, A., “Treatment of a landslide by using piles system, case study of the East-West Highway of Algeria”. In International Congress and Exhibition" Sustainable Civil Infrastructures: Innovative Infrastructure Geotechnology" 16-24, (2017, July), Cham: Springer International Publishing. https://doi.org/10.1007/978-3-319-63543-9_2
[6] Wang, Z., Butt, J. A., Huang, S., Medic, T., & Wieser, A., “Dense 3D Displacement Estimation for Landslide Monitoring via Fusion of TLS Point Clouds and Embedded RGB Images”. arXiv preprint arXiv, (2025), 2506.16265. https://doi.org/10.48550/arXiv.2506.16265
[7] Albanwan, H., Qin, R., & Liu, J. K., “Remote sensing-based 3d assessment of landslides: A review of the data, methods, and applications”. Remote Sensing, 16(3), (2024), 455. https://doi.org/10.3390/rs16030455
[8] Hallal, N., Hamidatou, M., Hamai, L., Aguemoune, S., & Lamali, A., “Landslides triggered by the August 2020 Mw 5.0 Mila, Algeria, earthquake: spatial distribution and susceptibility mapping”. Euro-Mediterranean Journal for Environmental Integration, 9(3), (2024), 1063-1085. https://doi.org/10.1007/s41207-024-00471-w
[9] Zolqadr, E., Yasrobi, S. S., & Norouz Olyaei, M., “Analysis of soil nail walls performance-Case study”. Geomechanics and Geoengineering, 11(1), (2016), 1-12. https://doi.org/10.1080/17486025.2015.1006263
[10] Kumar, S., & Roy, L. B., “Investigating the slope stability and factor of safety properties of soil reinforced with natural jute fibers under different rainfall conditions”. Engineering, Technology & Applied Science Research, 13(1), (2023), 9919-9925. https://doi.org/10.48084/etasr.5481
[11] Indratmoko, S., & Koestoer, R. H., “Landslide characteristics triggering evacuations: A comparative study of community responses and disaster management approaches”. Calamity: A Journal of Disaster Technology and Engineering, 2(2), (2025), 100-115. https://doi.org/10.61511/calamity.v2i2.2025.1437
[12] Rahardjo, H., Ong, T. H., Rezaur, R. B., & Leong, E. C., “Factors controlling instability of homogeneous soil slopes under rainfall”. Journal of geotechnical and geoenvironmental engineering, 133(12), (2007), 1532-1543. https://doi.org/10.1061/(ASCE)1090-0241(2007)133:12(1532)
[13] Sharma, M., Samanta, M., & Sarkar, S., “Soil nailing: an effective slope stabilization technique”. In Landslides: Theory, practice and modelling, (2018),173-199. https://doi.org/10.1007/978-3-319-77377-3_9
[14] Bathini, D. J., & Krishna, V. R., “Performance of soil nailing for slope stabilization-a review”. In IOP conference series: earth and environmental science, Vol. 982, (2022), 012047.https://doi.10.1088/1755-1315/982/1/012047
[15] Marwane, H., Mohamed, E. H., Mohammed, M., Bensaid, M., Kamal, B., Mohammed, A., & Morabit, A., “Soil nailing for slope stabilization: an overview”. Interactions, 246(1), (2025), 1-23. https://doi.org/10.1007/s10751-024-02234-z
[16] Srivastava, S., Sharma, A. K., & Nayak, S., “A Comparative Analysis of Slope Stability based on Advanced Machine Learning Methods”. In Real-World Applications of AI Innovation, (2025), 277-306. https://doi.10.4018/979-8-3693-4252-7.ch014
[17] Abdalhusein, M. M., Al-Badran, Y. M., Abd Hacheem, Z., Almahmodi, R. H., Mahmood, M. S., & AlMihna, S. M. N., “The Effect of Soil Nailing Inclination for Improvement of Gypsum Sand Soil in Different Slopes”. Operational Research in Engineering Sciences: Theory and Applications, 7(3). (2024), https://oresta.org/menu-script/index.php/oresta/article/view/796
[18] Benayoun, F., Boumezerane, D., Bekkouche, S. R., & Ismail, F., “Optimization of geometric parameters of soil nailing using response surface methodology”. Arabian Journal of Geosciences, 14(19), (2021), 1965. https://doi.org/10.1007/s12517-021-08280-z
[19] Imani Kalehsar, R., Khodaei, M., Dehghan, A. N., & Najafi, N., “Numerical modeling of effect of surcharge load on the stability of nailed soil slopes”. Modeling Earth Systems and Environment, 8(1), (2022), 499-510. https://doi.org/10.1007/s40808-021-01087-7
[20] Zhang, J., Luo, C., Wu, C., Lu, M., & Wu, D., “System reliability analysis of soil-nailed slopes”. Engineering Failure Analysis, (2025), 109613. https://doi.org/10.1016/j.engfailanal.2025.109613
[21] Elahi, T. E., Islam, M. A., & Islam, M. S., “Parametric assessment of soil nailing on the stability of slopes using numerical approach”. Geotechnics, 2(3), (2022), 615-634. https://doi.org/10.3390/geotechnics2030030
[22] Ghutke, V. S., Mandal, A., & Patel, A., “Seismic Loading and reinforcement effects on the dynamic behavior of soil slopes”. Komunikácie, 27(1), (2025). https://doi.10.26552/com.C.2025.008
[23] Jaiswal, S., & Chauhan, V. B., “Influence of secondary reinforcement layers to enhance the stability of steep soil slope under earthquake loading”. Arabian Journal of Geosciences, 15(11), (2022), 1095. https://doi.org/10.1007/s12517-022-10366-1
[24] Maleki, M., Mohammad Nezhad, H., & Mir Mohammad Hosseini, S. M., “A numerical study of site effect and dynamic response of staged excavation supported by soil nail walls”. Scientific Reports, 15(1), (2025), 20521. https://doi.org/10.1038/s41598-025-05510-2
[25] Derghoum, R., & Meksaouine, M., “Numerical study for optimal design of soil nailed embankment slopes”. International Journal of Geo-Engineering, 12(1), (2021), 15. https://doi.org/10.1186/s40703-021-00144-5
[26] Cheriet, F., Hani, M., Ladjal, H. A. E., & Ben aziz, B., “A numerical simulation of slope stability with nailing and shotcreting techniques on natural ground”. Modeling Earth Systems and Environment, 10(4), (2024), 5399-5407. https://doi.org/10.1007/s40808-024-02069-1
[27] Han, G., Zhang, Y., Zhang, J., & Zhang, H., “Numerical Analysis and Optimization of Displacement of Enclosure Structure Based on MIDAS Finite Element Simulation Software”. Buildings, 15(9), (2025), 1462. https://doi.org/10.3390/buildings15091462
[28] Banerjee, L., Chawla, S., & Dash, S. K., “Application of geocell reinforced coal mine overburden waste as subballast in railway tracks on weak subgrade”. Construction and Building Materials, 265, (2020), 120774. https://doi.org/10.1016/j.conbuildmat.2020.120774
[29] Leprêtre, R., & de Lamotte, D. F., “Regional Synthesis and Progress on the Geological Research in North Africa”. In The Geology of North Africa, (2024), 1-19. https://doi.org/10.1007/978-3-031-48299-1_1
[30] Benhamouche, A., Nedjari, A., Bouhadad, Y., Machane, D., Oubaiche, E., & Sidi Said, N., “Field evidence of seismites in Quaternary deposits of the Jijel (Eastern Algeria) coastal region”. Journal of seismology, 18(2), (2014), 289-299. https://doi.org/10.1007/s10950-013-9384-1
[31] Quinif, Y., “Contribution à l'étude des cavités karstiques du Djurdjura (Algérie). Description morpho-hydrogéologique et cadre évolutif”. International Journal of Speleology, 10(2), (1978), 1. http://dx.doi.org/10.5038/1827-806X.10.2.1
[32] Chabbi, a., Chouabbi, a., chermiti, a., youssef, m. B., kouadria, t., & ghanmi, m., “ La mise en evidence d’une nappe de charriage en structure imbriquee: cas de la nappe tellienne d’ouled driss, soukahras, algerie”. Courrier du savoir, 21, (2016).
[33] Arab, M., Rabineau, M., Déverchère, J., Bracene, R., Belhai, D., Roure, F., ... & Sage, F., “Tectonostratigraphic evolution of the eastern Algerian margin and basin from seismic data and onshore-offshore correlation”. Marine and Petroleum Geology, 77, (2016). 1355-1375. https://doi.org/10.1016/j.marpetgeo.2016.08.021
[34] Kessasra, F., Benabes, D., Seraoui, S., Chetibi, N. E. H., Mesbah, M., Khaled-Khodja, S., & Foughalia, A., “Groundwater flow and chloride transport modeling of the alluvial aquifer of lower Soummam Valley, Béjaia, North-East of Algeria”. Journal of African Earth Sciences, 173, (2021), 104023. https://doi.org/10.1016/j.jafrearsci.2020.104023
[35] Kessasra, F., Mesbah, M., Khemissa, Z., Bouab, N., Khaled-Khodja, S., & Lamari, H., “Combined hydrogeological and nitrate modelling to manage water resources of the Middle Soummam Aquifer, Northeast of Algeria”. Arabian Journal of Geosciences, 10(16), (2017), 368. https://doi.org/10.1007/s12517-017-3160-4
[36] Ghodbane, M., Benaabidate, L., Boudoukha, A., Gaagai, A., Adjissi, O., Chaib, W., & Aouissi, H. A., “Analysis of groundwater quality in the lower Soummam Valley, North-East of Algeria”. Journal of Water and Land Development, (2022),1-12. https://doi.10.24425/jwld.2022.141549
[37] Benabbes, D., Kessasra, F., Foughalia, A., Kerouaz, M., Abdellouch, E. A., & Khemissa, Z., “Coupled hydrogeological modeling and nitrate transport modeling to assess vulnerability pollution in an anthropized watershed, case study of the lower Soummam valley (Bejaia Northeast ofAlgeria) ”, (2022). https://doi.org/10.21203/rs.3.rs-1936780/v1
[38] Iftikhar, A. A., & Artati, H. K., “Finite element modelling of soil nailing inclination effect on slope stability: Cibeureum slope case study”. Teknisia, 29(1), (2024), 14-23. https://doi.org/10.20885/teknisia.vol29.iss1.art2
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