Iranian Water Research Journal

Iranian Water Research Journal

Numerical Analysis of the nailing impact on confidence in the earth dam seepage, rapid discharge, and earthquake

Document Type : Original Article

Authors
1 civil eng. group. azarbaijan shahid madani university
2 Department of Civil and Environmental Engineering, Amirkabir University of Technology, Tehran, Iran
3 ، دانشکده عمران، دانشگاه آزاد اسلامی تبریز، تبریز، ایران
Abstract
Introduction
Earth dams are among the oldest engineering structures built by human civilization. The stability of their slopes, particularly under various conditions, such as rapid drawdown, is important. In this study, one of the most critical parameters in the design of earth dams, slope stability, has been investigated. Rapid drawdown is the main factor contributing to the instability of upstream slopes in earth dams. This research presents an innovative method to improve the safety factor and enhance the slope stability of old and operational earth dams. For this purpose, numerical modeling was carried out using GeoStudio/W software. The Alavian earth dam was modeled numerically in this software. The safety factor of the upstream slope was evaluated before and after the nailing under different conditions. The results indicate a significant increase in slope stability after nailing. The safety factor increased by 18.554% under static conditions after construction, by 17.746% under steady seepage conditions, and by 22.164% under rapid drawdown conditions.

Materials and Methods:
To obtain realistic results, the cross-section of the Alavian earth dam, located in East Azerbaijan Province, on the slopes of Mount Sahand, approximately 120 kilometers southwest of Tabriz and 3.5 kilometers north of Maragheh, was used. The Alavian dam was selected due to the relatively comprehensive studies previously conducted on it and the availability of its mechanical and strength parameters. The analyses in this study were carried out using the GeoStudio software package. The Seep/W module of this package is used for analyzing soil seepage, while the Slope/W module is employed for slope stability analysis and determining the factor of safety (FOS) of dam slopes. To evaluate the stability of sloped surfaces and calculate the factor of safety in slope design, the Slope/W component of the software was used, applying the limit equilibrium method based on the Morgenstern–Price approach. It is important to note that the finite element method is not used in this part of the analysis. In the modeling conducted in this study, only one parameter was altered at each stage to eliminate the influence of other factors on the results. These are different conditions that were studied in this paper:
- Examination of the upstream slope stability under static conditions at the end of construction with and without nailing.
- Examination of the upstream slope stability under static conditions after steady seepage with and without nailing.
- Examination of the upstream slope stability under static conditions after steady seepage with and without nailing during rapid drawdown.
- Examination of the upstream slope stability under dynamic conditions at the end of construction with and without nailing.



Results and Discussion:

Some of the flow lines are located above the zero-pressure water level, which is because the Seep/W software does not precisely draw the flow net but only provides a path composed of connected vectors. In this study, the output of the Seep/W software was used as the input for the Slope/W software, and the flow lines and seepage discharge were not examined. Results of the static stability factor of safety for the upstream slope at the end of construction indicate that in the static model after construction, without considering seepage, the dam’s factor of safety is 1.757. By adding nailing to the same model, the factor of safety increases to 2.083. In the presence of seepage, due to seepage forces and reservoir loading, the upstream safety factor generally increases. The results indicate that in the static model with steady seepage, the dam’s factor of safety is 1.775. By adding nailing to the same model, the factor of safety increases to 2.090. The results indicate that in the static model under rapid drawdown conditions, the dam’s factor of safety is 0.961. By adding nailing to the same model, the factor of safety increases to 1.174. Under rapid drawdown conditions, it was observed that the dam’s factor of safety reached a critical level. However, after adding nailing and reevaluating the results, it was found that the factor of safety increased significantly.

Conclusion:
Results showed that under static conditions after construction and during steady seepage, the safety factors of the dam slopes were automatically calculated using the Morgenstern–Price method. Analysis of the calculated values showed that after the establishment of steady seepage, the downstream safety factor decreased due to seepage pressure, while the upstream safety factor increased as a result of reservoir loading. In addition, the percentage increase in the dam’s stability factor under all three examined conditions was substantial. This improvement was particularly remarkable in the rapid drawdown condition, where the safety factor increased by more than 22%, effectively removing the dam from the critical state. The increase in the safety factor under all three analyzed conditions was considerable, resulting in an 18.554% increase under static conditions after construction, a 17.746% increase under steady seepage conditions, and a 22.164% increase under rapid drawdown conditions.
Keywords
Subjects

1.    Abramson, L.W., Lee, T.S., Sharma, S. and Boyce, G.M., 2002. Slope Stability and Stabilization Methods. John Wiley and Sons, New York, USA.
 
2.    Asadi, E., Beirami, N., Salami, E. and Ghahremanzadeh, A.R., 2025. Numerical Analysis of the Optimized Cross-Section of Roller-Compacted Concrete Dams Using the Finite Element Method. Journal of Hydraulics and Water Science. [In Persian].
https://doi.org/10.22034/hws.2025.66495.1018
 
3.    Asadi, E., Beirami, N., Salami, E. and Ghahremanzadeh, A.R., 2023. Numerical Analysis of the Optimal Cross-Section with Various Shapes in Roller-Compacted Concrete Dams by Comparing Stress and Strain by ABAQUS Software. Journal of Iranian Water Engineering Research, 3(3). [In Persian].
https://doi.org/10.22034/ijwer.2025.517500.1077
 
4.    Baghali, S. and Manafpour, M., 2013. Evaluation of Seepage Flow through the Foundation and Body of the Sattarkhan Earth Dam Using Numerical Analysis and Instrumentation Data. Proceedings of the 7th National Congress on Civil Engineering, Zahedan, Iran. [In Persian]. https://civilica.com/doc/217334
 
5.    Bolouri Bazaz, J. and Mobinizad, M., 2010. Evaluation of the Behavior of an Earth Dam During Construction Using the Finite Element Method and Comparison with Real Data Obtained from Precise Instrumentation. Iranian Water Research Journal, 4(1), pp. 1-10. [In Persian]. https://iwrj.sku.ac.ir/article_10808.html
 
6.    Daneshfaraz, R., Sadeghfam, S., Adami, R. and Abbaszadeh, H., 2023. Numerical Analysis of Seepage in Steady and Transient Flow State by the Radial Basis Function Method. Numerical Methods in Civil Engineering, 8(1), pp. 58-68.
https://doi.org/10.61186/NMCE.2023.561
 
7.    Duncan, J.M., Wright, S.G. and Brandon, T.L., 2014. Soil Strength and Slope Stability. John Wiley and Sons, Hoboken, New Jersey, USA.
 
8.    East Azerbaijan Regional Water Company, n.d. Internal Reports and Data Files. Tabriz, Iran. azarwater.ir
 
9.    Elias, V. and Juran, I., 1991. Soil Nailing for Stabilization of Highway Slopes and Excavations. Federal Highway Administration (FHWA), U.S. Department of Transportation.
 
10. FHWA, 2003. Soil Nail Walls – Reference Manual. Federal Highway Administration, U.S. Department of Transportation, Report No. FHWA-NHI-03-017.
 
11. Hedayatifar, B., Rahimi, L. and Tamanai, H., 2014. Seepage Analysis in Sahand Dam and Comparison of Results with Instrumentation Data. Proceedings of the First National Conference on Soil Mechanics and Foundation Engineering, Tehran, Iran. [In Persian]. https://civilica.com/doc/332795
 
12. Heitland, J. and Donaghy, H., 2021. Seepage and Stability Modeling Guidance for Embankment Dams. Dam Safety Program, Aecom.
 
13. ICOLD (International Commission on Large Dams), 2011. Dam Safety Guidelines. International Commission on Large Dams (ICOLD). https://www.icold-cigb.org/
 
14. Imani, O., Merufinia, E. and Siosemarde, M., 2014. The Impact of Horizontal Drainage on Persistent Leakage of Non-Homogeneous Soil Dam Body. Journal of Civil Engineering and Urbanism, 4(4), pp. 435-439.
 
15. Imani, O. and Negahdar, R., 2013. The Effect of Inclined Drain Length on the Seepage Discharge of a Core Earth Dam. Proceedings of the National Conference on Applied Civil Engineering and Modern Achievements, Karaj, Iran. [In Persian].  https://civilica.com/doc/255494
 
16. Kramer, S.L., 1996. Geotechnical Earthquake Engineering. Prentice Hall, Upper Saddle River, New Jersey, USA.
 
17. Lazarte, C.A., Robinson, H., Gómez, J.E., Baxter, A., Cadden, A. and Berg, R., 2015. Soil Nail Walls: Reference Manual. Federal Highway Administration (FHWA), U.S. Department of Transportation, Geotechnical Engineering Circular No. 7 (GEC 7), FHWA-NHI-14-007.
 
18. Li, X., Zhou, W. and Tang, H., 2023. Application of Soil Nailing for Slope Stabilization under Complex Loading Conditions. Engineering Geology, 318, 107012.
https://doi.org/10.1016/j.enggeo.2023.107012
 
19. Malekpour, A., Hosseinzadeh, D.A., Farsadizadeh, D. and Sadr, K.J., 2011. Effect of Horizontal Drain on the Stability of Homogeneous Earth Dam under Rapid Drawdown Conditions. Journal of Water and Soil Knowledge, 22(2), pp. 107-119. [In Persian]. https://civilica.com/doc/1616078
 
20. Ramayanti, A., Faris, F. and Hardiyatmo, H.C., 2024. Effect of Parametric Soil Nailing under Seismic Behavior. Inersia, 20(2).
https://doi.org/10.21831/inersia.v20i2.74144
 
21. Roushangar, K., Aboueshagh, F.A. and Abbaszadeh, H., 2023. Numerical Investigation of the Influence of the Combined Seepage Reduction Scenarios on the Hydraulic Performance of the Alborz Dam Body. Iranian Journal of Soil and Water Research, 54(10), pp. 1467-1483. [In Persian]. https://doi.org/10.22059/ijswr.2023.365336.669573
 
22. Roushangar, K., Amanzadeh, F., Abbaszadeh, H. and Abraham, J., 2025. Investigating Seepage Flow Characteristics with Different Sealing Elements (Case Study: Lafour Dam). Arabian Journal of Geosciences.
https://doi.org/10.1007/s12517-025-12219-z
 
23. Saeedpanah, I. and Aghazadeh Garehbagh, B., 2018. Upstream Slope Stability Analysis of Earth Dams under Rapid Reservoir Drawdown (Case Study: Shahr Chay Dam). Iranian Water Research Journal, 11(26), pp. 37-47. [In Persian]. https://iwrj.sku.ac.ir/article_10553.html
 
24. Tabrizchi, M., Hassanzadeh, Y., Aalami, M.T. and Abbaszadeh, H., 2024. Investigation of Flow Parameters in a Chute Spillway Using FLOW-3D Software. Iranian Journal of Soil and Water Research, 56(2), pp. 411-431. [In Persian].
https://doi.org/10.22059/ijswr.2024.385048.669829
 
25. USACE, 2003. Slope Stability. U.S. Army Corps of Engineers, Engineer Manual EM 1110-2-1902.
 
26. Yang, T., Zou, J.F. and Pan, Q.J., 2020. Three-Dimensional Seismic Stability of Slopes Reinforced by Soil Nails. Computers and Geotechnics, 127, 103768.
https://doi.org/10.1016/j.compgeo.2020.103768
 
27. Zomorodian, S.M.A. and Abodollahzadeh, S.M., 2012. Effect of Horizontal Drains on Upstream Slope Stability During Rapid Drawdown Condition. Journal of Civil and Environmental Engineering, 2(1), pp. 29-34. [In Persian].
 

  • Receive Date 21 December 2025
  • Revise Date 09 February 2026
  • Accept Date 15 February 2026
  • Publish Date 21 March 2026