Evaluation of Sabkha Soil Bearing Capacity by Plate Load Test in Al Muthanna Province

Main Article Content

Mohammad Fadhil Abbas
Haider M. Makkiyah

Abstract

For projects such as airports and road paving, an appropriate foundation must be developed in Sabkha soil, which requires a trustworthy assessment of soil-bearing capacity. When heavy traffic is expected to result in substantial wheel loads throughout pavement construction and maintenance, the plate load test helps solve these issues with subgrade and sub-base layer design. This work aims to investigate and assess the geotechnical behavior regarding soil strata from one area in southern Iraq: Sabkha. Conversely, a comparison is made between subgrade response modulus and soil-bearing capacity determined by field plate load tests and traditional laboratory investigations. The data demonstrated that the values related to Ks in the consolidation test rose as a ratio of pre-consolidation pressure of 45% and dramatically dropped with an increase in applied stress that is vertically applied below pre-consolidation stress. Furthermore, PLT data demonstrated that when pressure was applied, the modulus of the subgrade reaction did not follow a regular pattern. At the beginning of the loaded stage, after the pre-consolidation stress, Ks values at testing points 2 and 3 were high. After that, Ks abruptly decreased, particularly when the applied pressure surpassed the pre-consolidation stress before being constant again. A detailed discussion is given on the effects of stress distribution and test conditions on the elasticity stress curve's shape and the subgrade reaction modulus.

Article Details

How to Cite
“Evaluation of Sabkha Soil Bearing Capacity by Plate Load Test in Al Muthanna Province” (2024) Journal of Engineering, 30(05), pp. 38–51. doi:10.31026/j.eng.2024.05.03.
Section
Articles

How to Cite

“Evaluation of Sabkha Soil Bearing Capacity by Plate Load Test in Al Muthanna Province” (2024) Journal of Engineering, 30(05), pp. 38–51. doi:10.31026/j.eng.2024.05.03.

Publication Dates

Received

2023-05-19

Accepted

2023-10-04

Published Online First

2024-05-01

References

Abbas, H.A., 2019. Numerical model of stone column in sabkha soil. Int. Res. J. Innov. Eng. Technol. IRJIET, 3(9), pp. 8-11.

Acharyya, R., and Dey, A., 2021. Assessment of bearing capacity and failure mechanism of single and interfering strip footings on sloping ground. International Journal of Geotechnical Engineering, 15(7), pp. 822-833. Doi:10.1080/19386362.2018.1540099

Acharyya, R., 2019. Finite element investigation and ANN-based prediction of the bearing capacity of strip footings resting on sloping ground. International Journal of Geo-Engineering, 10(1), P. 5. Doi:10.1186/s40703-019-0100-z

Ahmad, A.A., JassimAl-Obaidi, Q.A., and Al-Shamcy, A.A.J., 2009. Evaluation of bearing capacity from field and laboratory tests. Engineering and Technology Journal, 27(3), pp. 445-453.

Aiban, S., Al-Ahmadi, H., Asi, I., Siddique, Z., and Al-Amoudi, O.S.B., 2006. Effect of geotextile and cement on the performance of sabkha subgrade. Building and Environment, 41(6), pp. 807-820. Doi:10.1016/j.buildenv.2005.03.006

Akagwu, P., and Aboshio, A., 2016. Failure modes and bearing capacity estimation for strip foundations in C-ɸ soils: a numerical study. World Academy of Science, Engineering and Technology International Journal of Civil and Environmental Engineering, 10(9), pp. 1228-1232. waset.org/1307-6892/10005793

Al-Amoudi, O.S.B., Asi, I.M., and EI-Naggar, Z.R., 1995. Stabilization of an arid, saline sabkha soil using additives. Quarterly Journal of Engineering Geology, 28(4), pp. 369-379. Doi:10.1144/GSL.QJEGH.1995.028.P4.06

Albusoda, B.S., and Hussein, R.S., 2013. Bearing capacity of eccentrically loaded square foundation on compacted reinforced dune sand over gypseous soil. Journal of Earth Sciences and Geotechnical Engineering, 3(4), pp. 47-62.

Alencar, A., Galindo, R., and Melentijevic, S., 2021. Influence of the groundwater level on the bearing capacity of shallow foundations on the rock mass. Bulletin of Engineering Geology and the Environment, 80, pp. 6769-6779. Doi:10.1007/s10064-021-02368-2

Al-Homidy, A.A., Dahim, M.H., and Abd El Aal, A.K., 2017. Improvement of geotechnical properties of sabkha soil utilizing cement kiln dust. Journal of Rock Mechanics and Geotechnical Engineering, 9(4), pp. 749-760. Doi:10.1016/j.jrmge.2016.11.012

Al-Obaidi, A.A.H., and Mohammed, S.M., 2017. Estimate of bearing capacity of gypseous soils from field data. Diyala Journal of Engineering Sciences, pp. 1-20.

Al-Obaidi, Q., Al-Shamoosi, A., and Ahmed, A., 2017, July. Evaluation of soil bearing capacity by plate load test. In Proceedings of 10th International Conference on the Bearing Capacity of Roads, Railways and Airfields, Taylor & Francis Group, London (pp. 767-772).

Alwalan, M.F., 2018. Interaction of closely spaced shallow foundations on sands and clays: a review. International Journal of Advanced Engineering Research and Science, 5(9), pp. 101-110.

Baah-Frempong, E., and Shukla, S.K., 2018. Stability analysis and design charts for a sandy soil slope supporting an embedded strip footing. International Journal of Geo-Engineering, 9(1), p.13. Doi:10.1186/s40703-018-0082-2

Benmebarek, S., Benmoussa, S., Belounar, L., and Benmebarek, N., 2012. Bearing capacity of shallow foundation on two clay layers by numerical approach. Geotechnical and Geological Engineering, 30, pp. 907-923. Doi:10.1007/s10706-012-9513-6

Chen, Q., and Abu-Farsakh, M., 2015. Ultimate bearing capacity analysis of strip footings on reinforced soil foundation. Soils and Foundations, 55(1), pp. 74-85. Doi:10.1016/j.sandf.2014.12.006

Chheng, C., and Likitlersuang, S., 2018. Underground excavation behaviour in Bangkok using three-dimensional finite element method. Computers and Geotechnics, 95, pp. 68-81. Doi:10.1016/j.compgeo.2017.09.016

Das, B.M., and Sivakugan, N., 2018. Principles of foundation engineering. Cengage learning.

Das, B.M., 2006. Particle-Size Distribution Curve. Principles of Geotechnical Engineering. 6th. Stamford: Connecticut Cengage Learning, 2, pp. 37-43.

Farid, M., and Mase, L.Z., 2020. Implementation of seismic hazard mitigation on the basis of ground shear strain indicator for spatial plan of Bengkulu City, Indonesia. GEOMATE Journal, 18(69), pp. 199-207. Doi:10.21660/2020.69.24759

JahanGer, Z.K., Ahmed, A.A., and JahanGer, Q.K., 2010. Effect of plate load test curve shape on modulus of subgrade reaction of compacted subbase soil, In Pro. Second Ann. Sci. Conf. Coll. Eng., University of Babylon, Iraqi J. Mech. Mat. Eng., E, pp. 1-12.

Karkush, M.O., Al-Shakarchi, Y.J., and Al-Jorany, A.N., 2008. Theoretical modeling and experimental investigation of the leaching behavior of salty soils. Conference on Construction and Building Technology. 123, P.138.

Keawsawasvong, S., and Likitlersuang, S., 2021. Undrained stability of active trapdoors in two-layered clays. Underground Space, 6(4), pp. 446-454. Doi:10.1016/j.undsp.2020.07.002

Keawsawasvong, S., Thongchom, C., and Likitlersuang, S., 2021. Bearing capacity of strip footing on Hoek-Brown rock mass subjected to eccentric and inclined loading. Transportation Infrastructure Geotechnology, 8, pp. 189-202. Doi:10.1007/s40515-020-00133-8

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), pp. 149-159. Doi:10.6310/jog.201809_13(3).6

Mase, L.Z., 2020. Seismic hazard vulnerability of Bengkulu City, Indonesia, based on deterministic seismic hazard analysis. Geotechnical and Geological Engineering, 38(5), pp. 5433-5455. Doi:10.1007/s10706-020-01375-6

Mase, L.Z., Amri, K., Farid, M., Rahmat, F., Fikri, M.N., Saputra, J., and Likitlersuang, S., 2022. Effect of water level fluctuation on riverbank stability at the estuary area of MuaroKualo Segment, MuaraBangkahulu River in Bengkulu, Indonesia. Engineering Journal, 26(3), pp. 1-16. Doi:10.4186/ej.2022.26.3.1

Mase, L.Z., Refrizon, Rosiana and Anggraini, P.W., 2021. Local site investigation and ground response analysis on downstream area of MuaraBangkahulu River, Bengkulu City, Indonesia. Indian Geotechnical Journal, pp. 1-15. Doi:10.1007/s40098-020-00480-w

Mohamedzein, Y.E.A., and Al-Rawas, A.A., 2011. Cement-stabilization of sabkha soils from Al-Auzayba, Sultanate of Oman. Geotechnical and Geological Engineering, 29, pp. 999-1008. Doi:10.1007/s10706-011-9432-y

Nguyen, T.S., and Likitlersuang, S., 2021. Influence of the spatial variability of soil shear strength on deep excavation: A case study of a Bangkok underground MRT station. International Journal of Geomechanics, 21(2), P. 04020248.

Pender, M.J., Wotherspoon, L.M., Ingham, J.M., and Carr, A.J., 2005. Approaches to design of shallow foundations for low-rise framed structures. In 2005 NZSEE Conference Proceedings, Paper (No. 40).

Petchkaew, P., Keawsawasvong, S., Tanapalungkorn, W., and Likitlersuang, S., 2023. 3D stability analysis of unsupported rectangular excavation under pseudo-static seismic body force. Geomechanics and Geoengineering, 18(3), pp. 175-192. Doi:10.1080/17486025.2021.2019321

Ray, R., Kumar, D., Samui, P., Roy, L.B., Goh, A.T.C., and Zhang, W., 2021. Application of soft computing techniques for shallow foundation reliability in geotechnical engineering. Geoscience Frontiers, 12(1), pp. 375-383. Doi:10.1016/j.gsf.2020.05.003

Sethy, B.P., Patra, C.R., Das, B.M., and Sobhan, K., 2020. Behavior of circular foundation on sand layer of limited thickness subjected to eccentrically inclined load. Soils and Foundations, 60(1), pp. 13-27. Doi:10.1016/j.sandf.2019.12.005

Yahia-Cherif, H., Mabrouki, A., Benmeddour, D., and Mellas, M., 2017. Bearing capacity of embedded strip footings on cohesionless soil under vertical and horizontal loads. Geotechnical and Geological Engineering, 35, pp. 547-558. Doi:10.1007/s10706-016-0124-5

Similar Articles

You may also start an advanced similarity search for this article.