Contribution of Acacia mangium Root Systems to Slope Stability Improvement
Downloads
This study explores the bioengineering potential of Acacia mangium root systems in enhancing the shear strength of lateritic soil under both saturated and unsaturated conditions. Seedlings were cultivated in cylindrical containers for 12 months to monitor root growth and investigate its relationship with key geotechnical parameters. Root development was classified into three distinct phases: root acceleration (months 1–3), stem acceleration (months 4–8), and growth phase (months 9–12). A significant dry root biomass increase was observed, exhibiting a strong linear correlation with peak shear strength. Laboratory shear tests indicated that unreinforced soil in saturated conditions had a cohesion of 1.90 kPa and an internal friction angle of 27.64°. In contrast, cohesion increased to 3.55 kPa in unsaturated conditions and the internal friction angle to 38.94°. In comparison, root-reinforced soils demonstrated substantially improved shear strength. Under unsaturated conditions, cohesion and internal friction angle reached 9.92 kPa and 41.58°, respectively, while in saturated conditions, values increased to 6.12 kPa and 31.29°. Slope stability analysis using Slope/W software revealed that the unreinforced slope had a Factor of Safety (FS) of 1.043, indicating marginal stability. However, with A. mangium root reinforcement, the FS increased to 1.518, exceeding the commonly accepted safety threshold of 1.5. These results highlight the effectiveness of A. mangium root systems in improving slope stability through mechanical reinforcement, increased soil cohesion, and redistribution of shear stresses within the soil matrix.
Downloads
[1] Lambe, W. T. & Whitman, R. V. (1969) Soil Mechanics. John Wiley and Sons, Hoboken, United States.
[2] Terzaghi, K. (2007). Theoretical Soil Mechanics. John Wiley & Sons, Hoboken, United States. doi:10.1002/9780470172766.
[3] Fredlund, D. G., Rahardjo, H., & Fredlund, M. D. (2012). Unsaturated Soil Mechanics in Engineering Practice. John Wiley & Sons, Hoboken, United States. doi:10.1002/9781118280492.
[4] Vanapalli, S. K., Fredlund, D. G., Pufahl, D. E., & Clifton, A. W. (1996). Model for the prediction of shear strength with respect to soil suction. Canadian Geotechnical Journal, 33(3), 379–392. doi:10.1139/t96-060.
[5] Çavdar, P. S. (2025). Investigation of flood and soil liquefaction risks for disaster risk reduction in the construction of water reservoirs. Ain Shams Engineering Journal, 16(10), 103662. doi:10.1016/j.asej.2025.103662.
[6] Awais, M., Chen, Y., Zhang, W., Zaigham Abbas Naqvi, S. M., Zhang, H., Raghavan, V., Hu, J., & Tlili, I. (2025). Experimental validation of an automated soil leachate monitoring system for agricultural Non-Point source pollution and nutrient run-off to water bodies. Ain Shams Engineering Journal, 16(11), 103713. doi:10.1016/j.asej.2025.103713.
[7] Wu, T. H., McKinnell, W. P., & Swanston, D. N. (1979). Strength of Tree Roots and Landslides on Price of Wales Island, Alaska. Canadian Geotechnical Journal, 16(1), 19–33. doi:10.1139/t79-003.
[8] Voottipruex, P., Bergado, D. T., Mairaeng, W., Chucheepsakul, S., & Modmoltin, C. (2008). Soil reinforcement with combination roots system: A case study of vetiver grass and Acacia Mangium Willd. Lowland Technology International, 10(2), 56–67.
[9] Docker, B. B., & Hubble, T. C. T. (2008). Quantifying root-reinforcement of riverbank soils by four Australian tree species. Geomorphology, 100(3–4), 401–418. doi:10.1016/j.geomorph.2008.01.009.
[10] Endo, T., & Tsuruta, T. (1969). Effects of tree roots upon the shearing strengths of soils. Annual Report of the Hokkaido Branch, Tokyo Forest Experiment Station, Tokyo, Japan.
[11] Ni, J. J., Leung, A. K., Ng, C. W. W., & Shao, W. (2018). Modelling hydro-mechanical reinforcements of plants to slope stability. Computers and Geotechnics, 95, 99–109. doi:10.1016/j.compgeo.2017.09.001.
[12] Gómez, A. V. (2025). A Theoretical Pore Network Model for the Soil–Water Characteristic Curve and Hysteresis in Unsaturated Soils. Civil Engineering Journal (Iran), 11(2), 763–778. doi:10.28991/CEJ-2025-011-02-021.
[13] Wang, C., Li, S. yang, He, X. jia, Chen, Q., Zhang, H., & Liu, X. yu. (2021). Improved prediction of water retention characteristic based on soil gradation and clay fraction. Geoderma, 404, 115293. doi:10.1016/j.geoderma.2021.115293.
[14] Lalicata, L. M., D’Alessio, G., & Casini, F. (2025). An insight into the stability of unsaturated embankments with different suction profiles. Transportation Geotechnics, 52. doi:10.1016/j.trgeo.2025.101582.
[15] Kanjanakul, C., Mahannopkul, K., & Chub-Uppakarn, T. (2025). Assessment of Bearing Capacity and Its Implication on Design Chart for Shallow Foundation on Slope. Transportation Infrastructure Geotechnology, 12(1), 45. doi:10.1007/s40515-024-00499-z.
[16] Wu, X., Ren, J., & Vanapalli, S. K. (2020). The Influence of Temperature and Water Content on the Behavior of Soils. International Journal of GEOMATE, 18(70), 106–115. doi:10.21660/2020.70.9439.
[17] Meng, S., Zhang, T., Zhao, G., & Hou, S. (2025). Time-varying mechanisms of hydraulic properties of root-soil composites under plant root decay. Journal of Hydrology, 658, 133192. doi:10.1016/j.jhydrol.2025.133192.
[18] Levan, C., Buimanh, H., Oluwasanmi Tope, B.-O., Xu, X., Nguyenminh, T., Lak, C., Nebiyou, L., Wang, J., & Buivan, T. (2020). Biomass and carbon storage in an age-sequence of Acacia mangium plantation forests in Southeastern region, Vietnam. Forest Systems, 29(2), e009. doi:10.5424/fs/2020292-16685.
[19] United Nations. (2025). Transforming Our World: The 2030 Agenda for Sustainable Development. Department of Economic and Social Affairs Sustainable Development, New York, United Nations.
[20] Seddon, N., Chausson, A., Berry, P., Girardin, C. A. J., Smith, A., & Turner, B. (2020). Understanding the value and limits of nature-based solutions to climate change and other global challenges. Philosophical Transactions of the Royal Society B: Biological Sciences, 375(1794), 20190120. doi:10.1098/rstb.2019.0120.
[21] Chazdon, R., & Brancalion, P. (2019). Restoring forests as a means to many ends. Science, 364(6448), 24–25. doi:10.1126/science.aax9539.
[22] Keesstra, S., Mol, G., de Leeuw, J., Okx, J., Molenaar, C., de Cleen, M., & Visser, S. (2018). Soil-related sustainable development goals: Four concepts to make land degradation neutrality and restoration work. Land, 7(4), 133. doi:10.3390/land7040133.
[23] Kadhim, J., Waheed, M. Q., Hussein, H. A., & Al-Wakel, S. F. A. (2024). Experimental Study on the Effect of Flow Velocity and Slope on Stream Bank Stability (Part I). Civil Engineering Journal (Iran), 10(8), 2631–2644. doi:10.28991/CEJ-2024-010-08-013.
[24] Kadhim, J., Waheed, M. Q., Hussein, H. A., & Al-Wakel, S. F. A. (2024). Experimental Study on the Effect of Flow Velocity and Slope on Stream Bank Stability (Part II). Civil Engineering Journal (Iran), 10(10), 3307–3321. doi:10.28991/CEJ-2024-010-10-012.
[25] Combalicer, M. S., Lee, D. K., Woo, S. Y., Park, P. S., Lee, K. W., Tolentino, E. L., Combalicer, E. A., Lee, Y. K., & Park, Y. D. (2011). Aboveground biomass and productivity of nitrogen-fixing tree species in the Philippines. Scientific Research and Essays, 6(27), 5820–5836. doi:10.5897/SRE11.1633.
[26] Phan, T. N., Kraithong, P., Likitlersuang, C., & Likitlersuang, S. (2024). A Comprehensive Study on Young Roots of Acacia mangium Willd. Species for Soil Bioengineering. Land Degradation & Development, 35(17), 5124–5136. doi:10.1002/ldr.5284.
[27] Dong, T. L., Forrester, D. I., Beadle, C., Doyle, R., Hoang, N. H., Giap, N. X., & Worledge, D. (2016). Effects of light availability on crown structure, biomass production, light absorption and light-use efficiency of Hopea odorata planted within gaps in Acacia hybrid plantations. Plant Ecology and Diversity, 9(5–6), 535–548. doi:10.1080/17550874.2016.1262471.
[28] Böhm, W. (1979). Methods of Studying Root Systems. Ecological Studies. Springer, Berlin, Germany. doi:10.1007/978-3-642-67282-8.
[29] Majdi, H. (1996). Root sampling methods - Applications and limitations of the minirhizotron technique. Plant and Soil, 185(2), 255–258. doi:10.1007/BF02257530.
[30] Phan, T. N., Leung, A. K., Nguyen, T. S., Kamchoom, V., & Likitlersuang, S. (2025). Modelling root decomposition effects on root reinforcement and slope stability. Computers and Geotechnics, 179. doi:10.1016/j.compgeo.2024.107024.
[31] Lal, R. (1998). Biotechnical and Soil Bioengineering Slope Stabilization: A Practical Guide for Erosion Control. Soil Science, 163(1), 83–85. doi:10.1097/00010694-199801000-00012.
[32] Johnson, M. G., Tingey, D. T., Phillips, D. L., & Storm, M. J. (2001). Advancing fine root research with minirhizotrons. Environmental and Experimental Botany, 45(3), 263–289. doi:10.1016/S0098-8472(01)00077-6.
[33] Steele, D. P., MacNeil, D., Barker, D., & McMahon, W. (2004). The use of live willow poles for stabilising highway slopes. TRL REPORT TRL 619, Transport Research Laboratory, Washington, United States.
[34] Rewald, B., & Ephrath, J. E. (2013). Minirhizotron techniques. CRC Press, Boca Raton, Unite States. doi:10.1201/b14550-53.
[35] Jotisankasa, A., Sirirattanachat, T., Rattana-areekul, C., Mahannopkul, K., & Sopharat, J. (2015). Engineering Characterization of Vetiver System for Shallow Slope Stabilization. The 6th International Conference on Vetiver (ICV-6), 5-8 May, Danang, Vietnam.
[36] Mahannopkul, K., & Jotisankasa, A. (2019). Influences of root concentration and suction on Chrysopogon zizanioides reinforcement of soil. Soils and Foundations, 59(2), 500–516. doi:10.1016/j.sandf.2018.12.014.
[37] Schwarz, M., Lehmann, P., & Or, D. (2010). Quantifying lateral root reinforcement in steep slopes - from a bundle of roots to tree stands. Earth Surface Processes and Landforms, 35(3), 354–367. doi:10.1002/esp.1927.
[38] Nilaweera, N. S. (1994). Shear Strength of Vegetated Soil. Ph.D. Thesis, Queensland, Australia.
[39] Ferreira, O. J. M., Holanda, F. S. R., Pedrotti, A., Vidal Santos, L. D., & Silva-Mann, R. (2022). Root System of Jatropha curcas Provides Resistance and Strength to the Soil. Communications in Soil Science and Plant Analysis, 53(22), 2955–2967. doi:10.1080/00103624.2022.2099554.
[40] Holanda, F. S. R., Santos, L. D. V., Pedrotti, A., de Araújo Filho, R. N., Sartor, L. R., Santos-Sobrinho, V. R. A., de Jesus, R. J. S., de Oliveira Silva, P. A., & Andrade, K. M. A. (2022). Evaluation of the root system of Vetiver grass (Chrysopogon zizanioides L. Roberty) using different sampling methods. Environmental Systems Research, 11(1), 16. doi:10.1186/s40068-022-00262-8.
[41] Fan, C. C., & Su, C. F. (2008). Role of roots in the shear strength of root-reinforced soils with high moisture content. Ecological Engineering, 33(2), 157–166. doi:10.1016/j.ecoleng.2008.02.013.
[42] Fan, C. C., & Chen, Y. W. (2010). The effect of root architecture on the shearing resistance of root-permeated soils. Ecological Engineering, 36(6), 813–826. doi:10.1016/j.ecoleng.2010.03.003.
[43] Abdullah, M. N., Osman, N., & Ali, F. H. (2011). Soil-root shear strength properties of some slope plants. Sains Malaysiana, 40(10), 1065–1073.
[44] Ghestem, M., Sidle, R. C., & Stokes, A. (2011). The influence of plant root systems on subsurface flow: Implications for slope stability. BioScience, 61(11), 869–879. doi:10.1525/bio.2011.61.11.6.
[45] Eab, K. H., Likitlersuang, S., & Takahashi, A. (2015). Laboratory and modelling investigation of root-reinforced system for slope stabilisation. Soils and Foundations, 55(5), 1270–1281. doi:10.1016/j.sandf.2015.09.025.
[46] Gonzalez-Ollauri, A., & Mickovski, S. B. (2017). Plant-soil reinforcement response under different soil hydrological regimes. Geoderma, 285, 141–150. doi:10.1016/j.geoderma.2016.10.002.
[47] Berli, M., & Or, D. (2005). Unsaturated Soil Mechanics. Vadose Zone Journal, 4(2), 451–451. doi:10.2136/vzj2005.0002br.
[48] He, W., Ishikawa, T., & Nguyen, B. T. (2023). Effect evaluation of grass roots on mechanical properties of unsaturated coarse-grained soil. Transportation Geotechnics, 38. doi:10.1016/j.trgeo.2022.100912.
[49] Tian, W., Peiffer, H., Malengier, B., Liu, G., & Cheng, L. (2023). Modified Equation of Shear Strength with Respect to Saturation. Applied Sciences (Switzerland), 13(7), 4305. doi:10.3390/app13074305.
[50] Yang, C., Wu, J., Li, P., Wang, Y., & Yang, N. (2023). Evaluation of soil–water characteristic curves for different textural soils using fractal analysis. Water, 15(4), 772. doi:10.3390/w15040772.
[51] Kocaman, K., Ozocak, A., Edil, T. B., Bol, E., Sert, S., Onturk, K., & Ozsagir, M. (2022). Evaluation of soil-water characteristic curve and pore-size distribution of fine-grained soils. Water, 14(21), 3445. doi:10.3390/w14213445.
[52] Wang, X., Liu, S., Lan, H., Sun, W., Ren, X., & Li, Z. (2025). Research of unsaturated strength characteristics for root–soil composite under different water content conditions. Scientific Reports, 15(1), 22516. doi:10.1038/s41598-025-06444-5.
[53] Munirwan, R. P., Milasafarah, S., Sungkar, M., Gunawan, H., Jaya, R. P., Taib, A. M., Yuliana, Y., & Kamchoom, V. (2025). Effectiveness of elephant grass roots in improving soil shear strength for slope reinforcement. Results in Engineering, 27, 106369. doi:10.1016/j.rineng.2025.106369.
[54] Maffra, C., Sousa, R., Sutili, F., & Pinheiro, R. (2019). The Effect of Roots on the Shear Strength of Texturally Distinct Soils. Floresta e Ambiente, 26(3). doi:10.1590/2179-8087.101817.
[55] Cao, Y., Su, X., Zhou, Z., Liu, J., Chen, M., Wang, N., Zhu, B., Wang, P., & Liu, F. (2025). Effects of root traits on shear performance of root-soil complex and soil reinforcement in the Loess Plateau. Soil and Tillage Research, 252. doi:10.1016/j.still.2025.106625.
[56] Jotisankasa, A., & Mairaing, W. (2010). Suction-Monitored Direct Shear Testing of Residual Soils from Landslide-Prone Areas. Journal of Geotechnical and Geoenvironmental Engineering, 136(3), 533–537. doi:10.1061/(asce)gt.1943-5606.0000225.
[57] Pallewattha, M., Indraratna, B., Heitor, A., & Rujikiatkamjorn, C. (2019). Shear strength of a vegetated soil incorporating both root reinforcement and suction. Transportation Geotechnics, 18, 72–82. doi:10.1016/j.trgeo.2018.11.005.
[58] Gonzalez-Ollauri, A., & Mickovski, S. B. (2017). Hydrological effect of vegetation against rainfall-induced landslides. Journal of Hydrology, 549, 374–387. doi:10.1016/j.jhydrol.2017.04.014.
[59] Feng, S., Liu, H. W., & Ng, C. W. W. (2020). Analytical analysis of the mechanical and hydrological effects of vegetation on shallow slope stability. Computers and Geotechnics, 118. doi:10.1016/j.compgeo.2019.103335.
[60] Bordoloi, S., & Ng, C. W. W. (2020). The effects of vegetation traits and their stability functions in bio-engineered slopes: A perspective review. Engineering Geology, 275. doi:10.1016/j.enggeo.2020.105742.
[61] Fata, Y. A., Hendrayanto, Erizal, & Tarigan, S. D. (2025). Modeling of Hydrological and Mechanical Effect of Vegetation on Landslide. International Journal of Conservation Science, 16(2), 1013–1034. doi:10.36868/IJCS.2025.02.17.
[62] Yang, Y., Chen, L., Li, N., & Zhang, Q. (2016). Effect of root moisture content and diameter on root tensile properties. PLoS ONE, 11(3), 0151791. doi:10.1371/journal.pone.0151791.
[63] Lann, T., Bao, H., Lan, H., Zheng, H., Yan, C., & Peng, J. (2024). Hydro-mechanical effects of vegetation on slope stability: A review. Science of the Total Environment, 926, 171691. doi:10.1016/j.scitotenv.2024.171691.
[64] Gong, C., Ni, D., Liu, Y., Li, Y., Huang, Q., Tian, Y., & Zhang, H. (2024). Herbaceous Vegetation in Slope Stabilization: A Comparative Review of Mechanisms, Advantages, and Practical Applications. Sustainability (Switzerland), 16(17), 7620. doi:10.3390/su16177620.
[65] Dalir, P., Naghdi, R., Jafari, S., & Tsioras, P. A. (2025). Comparative Assessment of Woody Species for Runoff and Soil Erosion Control on Forest Road Slopes in Harvested Sites of the Hyrcanian Forests, Northern Iran. Forests, 16(6), 1013. doi:10.3390/f16061013.
[66] Keybondori, S., Abdi, E., Deljouei, A., Cislaghi, A., Shakeri, Z., & Etemad, V. (2025). Soil-bioengineering to stabilize gravel roadside slopes in the steep Hyrcanian Forests of Northern Iran. Ecological Engineering, 214, 107569. doi:10.1016/j.ecoleng.2025.107569.
[67] Waheed, A., Qiao, X., Muhammad, M., Yiremaikebayi, Y., Yingying, X., Xu, H., Aili, A., & Wahab, A. (2025). Plant root-mediated carbon sequestration and nutrient cycling in grassland ecosystems under land use and climate change. Agriculture, Ecosystems and Environment, 393. doi:10.1016/j.agee.2025.109865.
[68] Aslam, B., Maqsoom, A., Salah Alaloul, W., Ali Musarat, M., Jabbar, T., & Zafar, A. (2021). Soil erosion susceptibility mapping using a GIS-based multi-criteria decision approach: Case of district Chitral, Pakistan. Ain Shams Engineering Journal, 12(2), 1637–1649. doi:10.1016/j.asej.2020.09.015.
- Authors retain all copyrights. It is noticeable that authors will not be forced to sign any copyright transfer agreements.
- This work (including HTML and PDF Files) is licensed under a Creative Commons Attribution 4.0 International License.![]()















