Improving Construction Engineering Properties of Soils Stabilized by a Cement Binder with Techno-Genic Products

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Abstract:

The article considers the method of stabilizing roadbed soils by introducing metallurgical waste in the structure of the composite binder. It was established during the analysis and experimental research that construction engineering properties are improved as a result of the method. The article provides the obtained results of laboratory tests. The optimum amount of ground blast furnace slag as a component to replace part of Portland cement in a soil cement mix is determined. The dependence of strength gain on the hardening time at different proportions of the composite binder is given. The efficiency of the considered method of soil hardening is estimated.

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Solid State Phenomena (Volume 299)

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26-31

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January 2020

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© 2020 Trans Tech Publications Ltd. All Rights Reserved

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[1] S.I. Dubina, G.I. Sobko, A.T. Maximov, Pavement without sand and crushed stone. The use of innovation technologies in constructingautomobile roads from stabilized soil, Moscow, Avtomobilnye Dorogi journal, 11 (2008).

Google Scholar

[2] M.V. Tarasova, V.S. Prokopets, Technological support of road soil cementquality, Construction materials. 1 (2012) 46-48.

Google Scholar

[3] G.S. Dedyaev, M.V. Sotnikova, The application of modified soil cement in low-rise and road construction, Scientific and educational space: development perspectives, Proceedings of the 6thInternational research and practical conference (Cheboksary, 13 Aug. 2017), Cheboksary, Interaktiv plus, (2017) 231-234.

Google Scholar

[4] M.A. Goncharova, S.A. Andriyantseva, Composite materials for road construction with the use of technogenic raw materials, Tambov, TV Pershin Publishing house, (2014) 21-29.

Google Scholar

[5] A.V. Lanko, Water-repellentloessoidsoil cement in road construction, Construction materials, 3 (2009) 101-103.

Google Scholar

[6] A.V. Korochkin, V.I. Koltsov, Calculating the thickness of asphalt concrete layers of rigid road pavement, Construction materials, 5 (2009) 62-64.

Google Scholar

[7] M.A. Fortov, Organizational and anthropological-technical reliability of the use of materials from industrial waste, Mechanization of construction. 11, (2003).

Google Scholar

[8] V.D. Glukhovsky, Alkaline and alkaline-alkaline earth hydraulic binders and concretes, Kyiv: Visha school, (1979).

Google Scholar

[9] A.S. Brykov, A.S. Vasil'ev, M.V. Mokeev, Hydration of Portland cement in the presence of aluminium-containing setting accelerators, Journal of applied chemistry. 86(6) (2013) 849-857.

DOI: 10.1134/s1070427213060013

Google Scholar

[10] V. Shorin, Effective slags, Motor road. 1 (2000) 36.

Google Scholar

[11] A. Kaklauskas, E.K. Zavadskas, P. Kazokaitis, J. Bivainis, B. Galiniene, M. D'amato, J. Naimaviciene, V. Urbanaviciene, A. Vitas, J. Cerkauskas, Crisis management model and recommended system for construction and real estate, Studies in Computational Intelligence, 457 (2013) 333-343.

DOI: 10.1007/978-3-642-34300-1_32

Google Scholar

[12] P. Lahtinen, Fly ash mixtures as flexible structural materials for low-volume roads: Dissertation for the degree of Doctor of Science in Technology. Helsinki, (2001) 102.

Google Scholar

[13] A. Sprince, G Fischer, L. Pakrastinsh, A. Korjakins, Crack propagation in concrete with silica particles, Advanced Materials Research, 842 (2014) 470-476.

DOI: 10.4028/www.scientific.net/amr.842.470

Google Scholar

[14] P. Marc, I. Costescu, Industrial wastes used in pavement layers, Journal of Environmental Protection and Ecology, Volume 14, Issue 1, (2013) 187-195.

Google Scholar

[15] W.S. Park, J.E. Kim, N.Y. Eom, S.W. Kim, D.G. Kim, M.S. Cho, Mechanical properties of high strength concrete using mineral admixtures, Applied Mechanics and Materials, 372 (2013) 235-238.

DOI: 10.4028/www.scientific.net/amm.372.235

Google Scholar

[16] M.A. Goncharova, A.N. Ivashkin, A.A. Costa, Selection and optimization of concrete compositions for the production of off-shutter hollow corefloor slabs, Construction materials. 3 (2017) 35-38.

Google Scholar

[17] M.A. Goncharova, A.S. Bocharnikov, A.V. Komarichev, Composite materials on the basis of cement and water activated systems for injection compacting of concrete in enclosing structures, Construction materials. 5 (2015) 31-35.

Google Scholar

[18] I.A. Chilin, A.S. Krylov, Ultra-high-strength self-compactingfibrous concrete. Technology and properties, In: High-strength cement concretes: technologies, designs, economy (VPB-2016) (2016) 82.

Google Scholar

[19] M.A. Goncharova, R.A. Gorin, O.V. Karaseva, The Formation of Composite Curing Systems Based on Technogenic Raw Materials, Materials Engineering and Technologies for Production and Processing IV/4th International Conference on Industrial Engineering (4th ICIE 2018). Solid State Phenomena, 284 (2018) 1058-1062.

DOI: 10.4028/www.scientific.net/ssp.284.1058

Google Scholar

[20] M.A. Goncharova, V.V. Krokhotin, A.N. Ivashkin, The influence of modifying additives on the properties of heat-insulating construction materials, Scientific discussion. Innovative construction materials and products: Book of reports of the International correspondence scientific and practical conference dedicated to the 110thanniversary of the birth of VA Kitaytsev, Ministry of Education and Science of the Russian Federation, the National Research Moscow State Construction University, (2016) 78-83.

Google Scholar