Open Access
Issue
E3S Web Conf.
Volume 427, 2023
International Conference on Geotechnical Engineering and Energetic-Iraq (ICGEE 2023)
Article Number 01024
Number of page(s) 12
Section Development in Geotechnical Engineering
DOI https://doi.org/10.1051/e3sconf/202342701024
Published online 13 September 2023
  1. Schaefer V.R., Mitchell J.K., Berg R.R., Filz G.M., Douglas S.C. Ground improvement in the 21st century: a comprehensive web-based information system. In Geotechnical Engineering State of the Art and Practice: Keynote Lectures from GeoCongress. 2012. [Google Scholar]
  2. Guler E., Secilen G.G. Jet grouting technique and strength properties of jet grout columns. In Journal of Physics: Conference Series. 2021 Jun 1;1928(1):012006. [CrossRef] [Google Scholar]
  3. Sedighi P., Schweiger H.F., Wehr W.J. Effect of jet-grout columns on the seismic response of layered soil deposits. ASCE International Journal of Geomechanics. 2017 Mar 1; 17(3). [CrossRef] [Google Scholar]
  4. Karkush M.O., Jabbar A. Improvement of soft soil using linear distributed floating stone columns under foundation subjected to static and cyclic loading. Civil Engineering Journal. 2019 Mar 19;5(3):702–711. [CrossRef] [Google Scholar]
  5. Karkush M., Jabbar A. Behavior of floating stone columns and development of porewater pressure under cyclic loading. Transportation Infrastructure Geotechnology. 2022 Apr;9(2):236–249. [CrossRef] [Google Scholar]
  6. Karkush M.O., Mohsin A.H., Saleh H.M., Noman B.J. Numerical analysis of piles group surrounded by grouting under seismic load. In Geotechnical Engineering and Sustainable Construction: Sustainable Geotechnical Engineering 2022 Mar 20 (pp. 379–389). Singapore: Springer Singapore. [CrossRef] [Google Scholar]
  7. Danot C., Derache N. Grout injection in the laboratory. In International Symposium on Earth Reinforcement. 2007. [Google Scholar]
  8. Akin M., Akin M., Çiftçi A., Bayram B.B. The effect of jet grouting on the cyclic stress ratio (CSR) for the mitigation of liquefaction. Ejoir. 2015;1(1):10–20. [Google Scholar]
  9. Njock P.G., Chen J., Modoni G., Arulrajah A., Kim Y.H. A review of jet grouting practice and development. Arabian Journal of Geosciences. 2018 Aug;11(16):1–31. [CrossRef] [Google Scholar]
  10. Njock P.G., Shen J.S., Modoni G., Arulrajah A. Recent advances in horizontal jet grouting (HJG): an overview. Arabian journal for Science and Engineering. 2018 Apr.; 43(4):1543–1560. [CrossRef] [Google Scholar]
  11. Toraldo C., Modoni G., Ochmanski M., Croce P. The characteristic strength of jet-grouted material. Geotechnique. 2018-Mar; 68(3):262–279. [CrossRef] [Google Scholar]
  12. Nikbakhtan B. Development of Thermal-Insulating Soilcrete using Laboratory Jet Grouting Setup. 2015. [Google Scholar]
  13. Guyer J.P. An Introduction to Chemicals for Grouting of Soils. Guyer Partners. 2017. [Google Scholar]
  14. Kazemian S., Huat B.B., Arun P., Barghchi M. A review of stabilization of soft soils by injection of chemical grouting. Australian Journal of Basic and Applied Sciences. 2010; 4(12). [Google Scholar]
  15. Kazemian S., Huat B.B. Assessment of stabilization methods for soft soils by admixtures. In 2010 international conference on science and social research (CSSR 2010). 2010 Dec 5. [Google Scholar]
  16. Karol R.H. Chemical grouting and soil stabilization. CRC Press; 2003 Apr. 18. [CrossRef] [Google Scholar]
  17. Raveendran K.G., Rameshkumar V., Saravanan M., Kanmani P., Sudhakar S. Performance of silica fume on strength and durability of concrete. International Journal of Innovative Research in Science, Engineering and Technology. 2015; 4. [Google Scholar]
  18. Karkush M.O., Ali H.A., Ahmed B.A. Improvement of unconfined compressive strength of soft clay by grouting gel and silica fume. In Proceedings of China-Europe Conference on Geotechnical Engineering: Volume 1 2018 (pp. 546–550). Springer International Publishing. [CrossRef] [Google Scholar]
  19. Bhalla N., Sharma S., Sharma S., Siddique R. Monitoring early-age setting of silica fume concrete using wave propagation techniques. Construction and Building Materials. 2018 Feb 20;162(1):802–815. [CrossRef] [Google Scholar]
  20. Olgun M., Kanat A., Senkaya A., Erkan I.H. Investigating the properties of jet grouting columns with fine- grained cement and silica fume. Construction and Building Materials. 2021 Jan 18;267(1):120637. [CrossRef] [Google Scholar]
  21. Holland T.C. Silica fume user’s manual. Federal Highway Administration. 2005. [Google Scholar]
  22. Lee C., Nam H., Lee W., Choo H., Ku T. Estimating UCS of cement-grouted sand using characteristics of sand and UCS of pure grout. Geomech. Eng. 2019 Nov. 20; 19(4):343–352. [Google Scholar]
  23. Bruce M.E., Berg R.R., Filz G.M., Terashi M., Yang D.S., Collin J.G., Geotechnica S. Federal highway administration design manual: Deep mixing for embankment and foundation support. United States. Federal Highway Administation. Offices of Research and Development. 2013. [Google Scholar]
  24. Hossain M.D., Ansary M.A. Development of a portable traveling pluviator device and its performance to prepare uniform sand specimens. Innovative Infrastructure Solutions. 2018 Dec;3(1):1–2. [CrossRef] [Google Scholar]
  25. Lambe T.W., Whitman R.V. Soil mechanics. John Wiley and Sons; 1991 Jan 15. [Google Scholar]
  26. Karkush M.O., Abdulkareem M.S. Deep remediation and improvement of soil contaminated with residues oil using lime piles. International Journal of Environmental Science and Technology. 2019 Nov;16:7197–7206. [CrossRef] [Google Scholar]
  27. Karkush M.O., AbdulKareem M.S., Dekhn H. Effect of deep remediation and improvement on bearing capacity and settlement of piled raft foundation subjected to static and cyclic vertical loading. Geomechanics and Geoengineering. 2022 Nov 2;17(6):1801–1811. [CrossRef] [Google Scholar]
  28. Santhosh Kumar T.G. A study on the engineering behaviour of grouted loose sandy soils. Doctor thesis, Cochin University of Science and Technology, India. 2010. [Google Scholar]
  29. Sivakugan N., Das B.M., Lovisa J., Patra C.R. Determination of c and cp of rocks from indirect tensile strength and uniaxial compression tests. International Journal of Geotechnical Engineering. 2014 Jan 1;8(1):59–65. [CrossRef] [Google Scholar]
  30. Christensen Jr D.W., Bonaquist R. Use of strength tests for evaluating the rut resistance of asphalt concrete. Journal of the Association of Asphalt Paving Technologists. 2002. [Google Scholar]
  31. Piratheepan J., Gnanendran C.T., Arulrajah A. Determination of c and cp from IDT and unconfined compression testing and numerical analysis. Journal of materials in civil engineering. 2012 Sep 1;24(9):1153–1164. [CrossRef] [Google Scholar]
  32. Lavanya G., Jegan J. Evaluation of relationship between split tensile strength and compressive strength for geopolymer concrete of varying grades and molarity. Int. J. Appl. Eng. Res. 2015; 10(15). [Google Scholar]
  33. Yan K., Xu H., Shen G., Liu P. Prediction of splitting tensile strength from cylinder compressive strength of concrete by support vector machine. Advances in Materials Science and Engineering. 2013 Jan 1. [Google Scholar]
  34. Kramadibrata S., Wattimena R.K., Sulistianto B., Simangunsong G.M., Prassetyo S.H. Failure criteria development using triaxial test multistage and conventional. In Proc. of International Symposium on Earth Science and Technology. 2008. [Google Scholar]
  35. Al-Kinani A.M., Ahmed M.D. Field study of the effect of jet grouting parameters on strength based on tensile and unconfined compressive strength. In IOP Conference Series: Materials Science and Engineering. 2020 Feb 1; 737(1): 012083 [CrossRef] [Google Scholar]
  36. ASTM D2166. Standard test method for unconfined compressive strength of cohesive soil. In Annual Book of ASTM Standards. Philadelphia (PA): ASTM. 2016. [Google Scholar]
  37. ACI Committee 363. State-of-the-Art Report on High-Strength Concrete (ACI 363R-92). American Concrete Institute, Farmington Hills, Mich. 1992. [Google Scholar]
  38. ACI Committee 318. Building Code Requirements for Structural Concrete (ACI 318-99) and Commentary (318R-99). American Concrete Institute, Farmington Hills, Mich. 1999. [Google Scholar]
  39. Ahmad S.H., Shah S.P. Structural properties of high strength concrete and its implications for precast prestressed concrete. PCI Journal. 1985 Nov 1;30(6):92–119. [CrossRef] [Google Scholar]
  40. Gardner N.J., Sau P.L., Cheung M.S. Strength development and durability of concretes cast and cured at 0 C. Materials Journal. 1988 Nov 1;85(6):529–536. [Google Scholar]
  41. Gardner N.J. Effect of Temperature on the Early-age Properties of Type I., Type I.I., and Type III/fly ash concretes with temperature. Materials Journal. 1990 Jan 1;87(1):68–78. [Google Scholar]
  42. Arioglu N., Girgin Z.C., Arioglu E. Evaluation of ratio between splitting tensile strength and compressive strength for concretes up to 120 MPa and its application in strength criterion. ACI materials journal. 2006 Jan;103(1):18–24. [Google Scholar]

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