Abstract
Excessive settlement of clayey soils and low-bearing capacity leading to damage and collapse of the structure induce problems in infrastructure construction. Various ground improvement methods are used to solve this problem. The purpose of these methods, in which the cement mixture is included, is to increase the soil bearing capacity and to reduce the soil settlement.
In this study, total plastic and consolidation settlement analysis of sandy-clay soil model mixed with cement by different percentages (5%, 10%, 15%) are made. The physical and mechanical properties of the improved clay-cement soil are obtained based on the results available in the literature and in the laboratories of Istanbul Aydın University. A Finite Element program was used to perform static analysis. Static analysis of the soil was carried out under different loads (50, 100, 150, 200 kPa). The results showed that fort he plastic analysis, the 15% cement treated soil had 25% total deformation less than the untreated soil. Considering the same soil profile, for consolidation analysis, the decrease was observed to be 28% at the end of 7 days.
Publisher
Orclever Science and Research Group
Reference14 articles.
1. Nelson, J. D., Chao, K. C., Overton, D. D., & Nelson, E. J. (2015). Foundation Engineering for Expansive Soils (1st ed.). Wiley.
2. Kalantari, B. (2012). Foundations on expansive soils: a review. Research Journal of Applied Sciences, Engineering and Technology, 4(18), 3231-3237.
3. Al-Busoda, B. S., & Al-Taie, A. J. (2010). Statistical estimation of the compressibity of Baghdad cohesive soil. Journal of Engineering, 16(4), 5863-5876.
4. Al-Jeznawi, D., Sanchez, M., Al-Taie, A. J., & Zielinski, M. (2019). Experimental studies on curling development of artificial soils. Journal of Rock Mechanics and Geotechnical Engineering, 11(6), 1264-1273.
5. Arulrajah, A., Piratheepan, J., Disfani, M. M., & Bo, M. W. (2012). Geotechnical and geoenvironmental properties of recycled construction and demolition materials in pavement subbase applications. Journal of Materials in Civil Engineering, 25(8), 1077-1088.