Numerical Simulation of Deep Mixed Columns Beneath the Heavy-Haul Railway Embankment
Keywords:
Deep Mixed Columns, Heavy-Haul Railway, Moving load, Numerical modellingAbstract
One approach used to modify loose sand settlement under railway embankment involves deep mixed columns (DMCs). The geometrical properties of DMCs, such as the length, diameter, and spacing between adjacent columns, affect the distribution of load, failure mechanism, and ultimate resistance of a foundation constructed above soil reinforcement by this method. Numerical analysis is used as an alternative to laboratory modelling to minimize the cost and simplify the creation of complex DMC geometries in the lab. In this research, 3D Plaxis models are used to examine the influence of DMCs constructed under the embankment of a heavy-haul railway. The model used in this study has been calibrated and adjusted based on historical data from experimental tests on silty sand with low relative density. The study results offer details on how the bearing capacity of loose soil below train embankments is affected by the length and spacing of columns under static and dynamic loads.Downloads
References
Bouassida, M., Fattah, M. Y., and Mezni, N. (2022). Bearing capacity of foundation on soil reinforced by deep mixing columns. Geomechanics and Geoengineering, 17(1), 309-320.
Hessouh, J. J., Eslami, J., Beaucour, A. L., Noumowe, A., Mathieu, F., and Gotteland, P. (2023). Physical and mechanical characterisation of deep soil mixing (DSM) materials: Laboratory vs construction site. Construction and Building Materials, 368, 130436.
Al-Qaisi, M. S., and Al-Waily, M. J. M. (2022). Experimental Study of Soft Clay Soil Improvement by Deep Mixing Method. Mathematical Modelling of Engineering Problems, 9(1), 224-232.
Esmaeili, M., Gharouni-Nik, M., and Khajehei, H. (2014). Evaluation of deep soil mixing efficiency in stabilizing loose sandy soils using laboratory tests. Geotechnical Testing Journal, 37(5), 817-827.
Saberian, M., Moradi, M., Vali, R., and Li, J. (2018). Stabilized marine and desert sands with deep mixing of cement and sodium bentonite. Geomechanics and engineering, 14(6), 553-562.
Esmaeili, M., and Khajehei, H. (2016). Mechanical behavior of embankments overlying on loose subgrade stabilized by deep mixed columns. Journal of Rock Mechanics and Geotechnical Engineering, 8(5), 651-659.
Bolton, M., Noonan, J., and Oh, E. (2016). Effect of soil cement column spacing and area replacement ratio on embankment bearing capacity: A Queensland case study. GEOMATE Journal, 11(26), 2589-2594.
Dehghanbanadaki, A., Motamedi, S., and Ahmad, K. (2020). FEM-based modelling of stabilized fibrous peat by end-bearing cement deep mixing columns. Geomechanics and Engineering, 20(1), 75-86.
Hasan, H. A., Hacheem, Z. A., Almurshedi, A. D., and Khabbaz, H. (2023). The influence of styrene butadiene latex on sandy soil reinforced by soil mixed columns under raft foundation. Mathematical Modelling of Engineering Problems, 10(3), 733-739.
Do, T., Gunnvard, P., Mattsson, H., and Laue, J. (2021, April). Railway embankment behaviour due to increased axle loads-A numerical studyIn IOP Conference Series: Earth and Environmental Science, 710(1), 012040.
Hadi, M. A., and Alzabeebee, S. (2023). Development of a finite element model to study the settlement of ballasted railway tracks subjected to two adjacent moving trains. Transportation Infrastructure Geotechnology, 10(5), 733-748.
Likitlersuang, S., Pholkainuwatra, P., Chompoorat, T., and Keawsawasvong, S. (2018). Numerical modelling of railway embankments for high-speed train constructed on soft soil. Journal of GeoEngineering, 13(3), 149-159.
Farouk, A., and Shahien, M. M. (2013). Ground improvement using soil–cement columns: Experimental investigation. Alexandria Engineering Journal, 52(4), 733-740.
Chalabii, J., Movahedi Rad, M., and Hosseini, S. (2023). Optimal shape design of concrete sleepers under lateral loading using DEM. Buildings, 13(7), 1574.
Shahraki, M., Sadaghiani, M. R. S., Witt, K. J., and Meier, T. (2014). 3d modelling of train induced moving loads on an embankment. Plaxis Bulletin, 36(2014), 10-15.
Dižo, J., Blatnický, M., and Pavlík, A. (2018). Process of modelling the freight wagon multibody system and analysing its dynamic properties by means of simulation computations. MATEC Web of Conferences, 235, 00027.
Pintão, B., Mosleh, A., Vale, C., Montenegro, P., and Costa, P. (2022). Development and validation of a weigh-in-motion methodology for railway tracks. Sensors, 22(5), 1976.
Bosso, N., Magelli, M., and Zampieri, N. (2023). Dynamical effects of the increase of the axle load on European freight railway vehicles. Applied Sciences, 13(3), 1318.
Bolton, M., Noonan, J., and Oh, E. (2016). Effect of soil cement column spacing and area replacement ratio on embankment bearing capacity: A Queensland case study. GEOMATE Journal, 11(26), 2589-2594.
Lazorenko, G., Kasprzhitskii, A., Khakiev, Z., and Yavna, V. (2019). Dynamic behavior and stability of soil foundation in heavy haul railway tracks: A review. Construction and Building Materials, 205, 111-136.
Downloads
Published
Issue
Section
License
Copyright (c) 2025 Universitas Pendidikan Indonesia

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.