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Research Article

Compressive strength characteristics of hybrid fiber-reinforced cemented soil

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Article: 2104843 | Received 05 Jan 2022, Accepted 18 Jul 2022, Published online: 05 Aug 2022

References

  • Almajed, A., Srirama, D., and Moghal, A. A. B, 2021. Response surface method analysis of chemically stabilized fiber-reinforced soil. Materials, 14 (6), 1535.
  • Anderton, G.L., et al., 2008. Joint rapid airfield construction (JRAC) 2007 technology demonstration (No. ERDC/GSL-TR-08-17). US Army Engineer Research and Development Center, Geotechnical and Structures Lab, 2008, Vicksburg, USA.
  • Anderton, G.L., et al., 2021. Joint Rapid Airfield Construction (JRAC) Program 2004 Demonstration Project-Fort Bragg, North Carolina (No. ERDC/GSL-TR-21-8). US Army Engineer Research and Development Center, Geotechnical and Structures Lab, 2008, Vicksburg, USA.
  • Anggraini, V., et al., 2017. Three point bending flexural strength of cement treated tropical marine soil reinforced by lime treated natural fiber. Measurement, 111, 158–166.
  • ASTM International, 2021. Standard specification for Portland cement. Designation: C150/C150M-21. West Conshohocken, P A: American Society for Testing and Materials.
  • Ateş, A, 2016. Mechanical properties of sandy soils reinforced with cement and randomly distributed glass fibers (GRC). Composites Part B: Engineering, 96, 295–304.
  • Bao, X.H., et al., 2021. Experimental investigation on mechanical properties of clay soil reinforced with carbon fiber. Construction and Building Materials, 280, 122517.
  • Consoli, N.C., et al., 2003. Plate load test on fiber-reinforced soil. Journal of Geotechnical and Geoenvironmental Engineering, 129 (10), 951–955.
  • Consoli, N.C., et al., 2004. Effect of material properties on the behaviour of sand-cement-fibre composites. Proceedings of the Institution of Civil Engineers-Ground Improvement, 8 (2), 77–90.
  • Consoli, N.C., et al., 2009. Fiber reinforcement effects on sand considering a wide cementation range. Geotextiles and Geomembranes, 27 (3), 196–203.
  • Consoli, N.C., Consoli, B.S., and Festugato, L, 2013. A practical methodology for the determination of failure envelopes of fiber-reinforced cemented sands. Geotextiles and Geomembranes, 41, 50–54.
  • Correia, N.S., et al., 2021. Shear strength behavior of clayey soil reinforced with polypropylene fibers under drained and undrained conditions. Geotextiles and Geomembranes, 49 (5), 1419–1426.
  • Diambra, A., et al., 2010. Fibre reinforced sands: experiments and modelling. Geotextiles and Geomembranes, 28 (3), 238–250.
  • Diambra, A., and Ibraim, E, 2014. Modelling of fibre–cohesive soil mixtures. Acta Geotechnica, 9, 1029–1043.
  • Estabragh, A.R., Soltani, A., and Javadi, A. A, 2016. Models for predicting the seepage velocity and seepage force in a fiber reinforced silty soil. Computers and Geotechnics, 75, 174–181.
  • Festugato, L., et al., 2017. Fibre-reinforced cemented soils compressive and tensile strength assessment as a function of filament length. Geotextiles and Geomembranes, 45 (1), 77–82.
  • Festugato, L., et al., 2018. Modelling tensile/compressive strength ratio of fibre reinforced cemented soils. Geotextiles and Geomembranes, 46 (2), 155–165.
  • Freilich, B.J., Li, C., and Zornberg, J.G, 2010. Effective shear strength of fiber-reinforced clays. In 9th international conference on geosynthetics, Brazil, 1997-2000.
  • Ghavami, K., Toledo, F.R.D., and Barbosa, N.P, 1999. Behaviour of composite soil reinforced with natural fibres. Cement and Concrete Composites, 21 (1), 39–48.
  • Hadi, S.S., et al., 2021. Freeze–thaw durability of cement-stabilized soil reinforced with polypropylene/basalt fibers. Journal of Materials in Civil Engineering, 33 (9), 04021232.
  • He, S.X., et al., 2021. Effect of fiber dispersion, content and aspect ratio on tensile strength of PP fiber reinforced soil. Journal of Materials Research and Technology, 15, 1613–1621.
  • Hejazi, S.M, et al., 2012. A simple review of soil reinforcement by using natural and synthetic fibers. Construction and Building Materials, 30, 100–116.
  • Hejazi, S.M, et al., 2013. Shear modeling of fiber reinforced soil composite on the base of fiber pull-out test. Fibers and Polymers, 14 (2), 277–284.
  • Hejazi, S.M., et al., 2015. Shear modeling of polypropylene-fiber-reinforced soil composite using electrical conductivity contour technique. Journal of Industrial Textiles, 45 (1), 133–151.
  • Hu, C., et al., 2021. Performance of polypropylene fiber-reinforced solidified soil. Advances in Civil Engineering, doi:10.1155/2021/8859358.
  • Ibraim, E., et al., 2012. Assessment of laboratory sample preparation for fibre reinforced sands. Geotextiles and Geomembranes, 34, 69–79.
  • Jaiswal, S., Ananya, S., and Vinay, B.C, 2022. An overview of fiber-reinforced cemented soil for enhancing the mechanical properties of the soil. Advances in Geo-Science and Geo-Structures, 154, 189–197.
  • Jalali, J., and Noorzad, R, 2021. Discrete fiber reinforcement efficiency in the mechanical properties and wet-dry performance of fat clay treated with industrial sewage sludge ash. Construction and Building Materials, 284, 122739.
  • Kafodya, I., and Okonta, F, 2018. Effects of natural fiber inclusions and pre-compression on the strength properties of lime-fly ash stabilised soil. Construction and Building Materials, 170, 737–746.
  • Khajeh, A., Chenari, J.R., and Payan, M, 2020. A simple review of cemented non-conventional materials: soil composites. Geotechnical and Geological Engineering, 38 (2), 1019–1040.
  • Lenoir, T., Preteseille, M., and Ricordel, S, 2016. Contribution of the fiber reinforcement on the fatigue behavior of two cement-modified soils. International Journal of Fatigue, 93, 71–81.
  • Letelier, G.A., et al., 2019. Experimental mechanical-damage assessment of earthen mixes reinforced with micro polypropylene fibers. Construction and Building Materials, 198, 762–776.
  • Liang, N., et al., 2020. A study of impact response and its numerical study of hybrid polypropylene fiber-reinforced concrete with different sizes. Advances in Materials Science and Engineering, 2020 (4), 1–15.
  • Liang, N., et al., 2022. Corrosion resistance of multiscale polypropylene fiber-reinforced concrete under sulfate attack. Case Studies in Construction Materials, 16, 1–17.
  • Lirer, S., Flora, A., and Consoli, N. C, 2011. On the strength of fibre-reinforced soils. Soils and Foundations, 51 (4), 601–609.
  • Ministry of Transport of the People's Republic of China, 2009. Test methods of materials stabilized with inorganic binders for highway engineering. Designation: JTG E51-2009, Beijing.
  • Ministry of Transport of the People's Republic of China, 2020. Test methods of soils for highway engineering. designation: JTG 3430-2020, Beijing.
  • Ruan, B., et al., 2021. Mechanical properties and microstructure of polypropylene fiber reinforced cement mortar soil. KSCE Journal of Civil Engineering, 25 (6), 1985–1997.
  • Rushing, T.W., and Howard, I.L, 2015. Prediction of soil deformation beneath temporary airfield matting systems based on full-scale testing. Journal of Terramechanics, 58, 1–9.
  • Santoni, R.L., Tingle, J.S., and Webster, S.L, 2001. Engineering properties of sand-fiber mixtures for road construction. Journal of Geotechnical and Geoenvironmental Engineering, 127 (3), 258–268.
  • Shen, Y.S., et al., 2021. An experimental investigation on strength characteristics of fiber-reinforced clayey soil treated with lime or cement. Construction and Building Materials, 294, 123537.
  • Soltani, A., Deng, A., and Taheri, A, 2018. Swell–compression characteristics of a fiber–reinforced expansive soil. Geotextiles and Geomembranes, 46 (2), 183–189.
  • Sujatha, E.R., et al., 2021. Mechanical properties of glass fibre reinforced soil and its application as subgrade reinforcement. Road Materials and Pavement Design, 22 (10), 2384–2395.
  • Tang, C.S., et al., 2012. Desiccation cracking behavior of polypropylene fiber–reinforced clayey soil. Canadian Geotechnical Journal, 49 (9), 1088–1101.
  • Tang, C.S., et al., 2016a. Tensile strength of fiber-reinforced soil. Journal of Materials in Civil Engineering, 28 (7), 04016031.
  • Tang, C.S., et al., 2016b. Investigation on the interfacial mechanical behavior of wave-shaped fiber reinforced soil by pullout test. Geotextiles and Geomembranes, 44 (6), 872–883.
  • Tang, C.S., Shi, B., and Zhao, L.Z, 2010. Interfacial shear strength of fiber reinforced soil. Geotextiles and Geomembranes, 28 (1), 54–62.
  • Tasnim, S., Rahman, M.E., and Ahmadi, R.B, 2018. Mechanical performance of modified cement paste made with micro-fine POFA in ammonium nitrate environment. Construction and Building Materials, 162, 534–542.
  • Tingle, J.S., and Grogan, W.P, 1999. Behavior of unsurfaced airfields supporting operations of C-17 aircraft. Journal of Transportation Engineering, 125 (1), 75–84.
  • Wang, H.S., et al., 2020. Mechanical behavior of fiber-reinforced, chemically stabilized dredged sludge. Bulletin of Engineering Geology and the Environment, 79 (2), 629–643.
  • Wang, S.N., et al., 2021. Experimental study on mechanical properties of fiber-reinforced and geopolymer-stabilized clay soil. Construction and Building Materials, 272, 121914.
  • Xu, J., et al., 2021. Triaxial shear behavior of basalt fiber-reinforced loess based on digital image technology. KSCE Journal of Civil Engineering, 25, 3714–3726.
  • Yan, C.G., et al., 2021. Effect of dry-wet cycles and freeze-thaw cycles on the antierosion ability of fiber-reinforced loess. Advances in Materials Science and Engineering, doi:10.1155/2021/8834598.
  • Yang, B.H., et al., 2017. Strength characteristics of modified polypropylene fiber and cement-reinforced loess. Journal of Central South University, 24, 560–568.
  • Yang, X., et al., 2021. An experimental study of shear resistance for multisize polypropylene fiber concrete beams. International Journal of Concrete Structures and Materials, 15 (1), 1–11.
  • Yao, X., et al., 2021. Mechanical properties and microstructure of PVA fiber reinforced cemented soil. KSCE Journal of Civil Engineering, 25 (2), 482–491.
  • Yi, X.W., et al., 2015. Compressive behaviour of fibre-reinforced cemented paste backfill. Geotextiles and Geomembranes, 43 (3), 207–215.
  • Zaimoglu, A.S, 2010. Freezing–thawing behavior of fine-grained soils reinforced with polypropylene fibers. Cold Regions Science and Technology, 60 (1), 63–65.
  • Zhang, J., et al., 2018b. Anti-slip and wear resistance performance of three novel coatings as surface course of airstrip. International Journal of Pavement Engineering, 19 (4), 370–378.
  • Zhang, J., et al., 2020. Application and research status of concrete canvas and its application prospect in emergency engineering. Journal of Engineered Fibers and Fabrics, 15 (12), 1–11.
  • Zhang, J., et al., 2022. Integrity and crack resistance of hybrid polypropylene fiber reinforced cemented soil. Journal of Engineered Fibers and Fabrics, 17, 1–16.
  • Zhang, J., Weng, X.Z., and Liu, J.Z, 2018a. Strength and water stability of a fiber-reinforced cemented loess. Journal of Engineered Fibers and Fabrics, 13 (1), 72–83.
  • Zhao, H, et al., 2013. Physicochemical characterization of cement stabilized highly expansive soil. In: Geo-Congress 2013: stability and performance of slopes and embankments III, San Diego, California, United States, March 3-7, 2091–2100, American Society of Civil Engineers, Edited by Christopher Meehan, Daniel Pradel, Miguel A. Pando, and Joseph F. Labuz.
  • Zhao, Y., et al., 2021. Dynamic behavior of natural sand soils and fiber reinforced soils in heavy-haul railway embankment under multistage cyclic loading. Transportation Geotechnics, 28, 100507.
  • Zhu, H.H., et al., 2014. Modeling the pullout behavior of short fiber in reinforced soil. Geotextiles and Geomembranes, 42 (4), 329–338.

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