Steelmaking Slag - A Complex Material for the Production of Small-Size Materials Using Hyper-Press Technology

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Abstract:

The solution to the problem of large industrial cities with a developed metallurgical industry is the creation of environmentally friendly conditions for the life of the population through the disposal of industrial waste. The studies carried out have shown that the developed technology makes it possible to widely use steel-making slags and carbon dioxide emitted into the atmosphere in the production of small-piece wall stones with high operational properties. It is shown that only slag is required to obtain wall material without the use of a hydraulic binder.

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Materials Science Forum (Volume 1037)

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737-742

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July 2021

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© 2021 Trans Tech Publications Ltd. All Rights Reserved

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[1] I.I. Romanenko, M.I. Romanenko, I.N. Petrovnina, Modification of the cement stone active silm of urban treatment facilities, IOP Conference Series: Materials Science and Engineering. International Conference on Modern Trends in Manufacturing Technologies and Equipment 2019, ICMTME 2019. 2020. С. 022096.

DOI: 10.1088/1757-899x/709/2/022096

Google Scholar

[2] H. Beshr, A.A. Almusallam and M. Maslehuddin, Effect of coarse aggregate quality on the mechanical properties of high strength concrete, Construct. Build. Mater. 17 (2003) 97-103.

DOI: 10.1016/s0950-0618(02)00097-1

Google Scholar

[3] P.T. Sherwood, T. Telford, Alternative Materials in Road Construction, 1st Edn., London, (1995).

Google Scholar

[4] P. Murthi, S. Alan, C. Chakkaravarthi, N. Raguraman, P. Seenivasan: submitted to International Journal of applied engineering research (2014).

Google Scholar

[5] H. Aljbour Salah, A. Tarawneh Sultan, M. Al-Harahsheh Adnan, Evaluation of the use of steelmaking slag as an aggregate in concrete mix: A factorial design approach, Chemical Industry and Chemical Engineering Quarterly, 23, 1, 2017, pp.113-119.

DOI: 10.2298/ciceq151002016a

Google Scholar

[6] S. Piraimathi: submitted to Global Journal of Engineering Science And Researches (2017).

Google Scholar

[7] M. Van Tran, C. Van Nguyen, Properties of high strength concrete using steel slag, Procedia Engineering, 9, 2014, pp.95-104.

Google Scholar

[8] J. Zheng, G. Liu, The Influence and Application of Slag, Fly Ash, and Limestone Flour on Compressive Strength of Concrete Based on the Concrete Compressive Strength Development Over Time (CCSDOT) Model, 10, 2020, 3572.

DOI: 10.3390/app10103572

Google Scholar

[9] K.M. Voronin, D.D. Khamidulina, S.A. Nekrasov, I.S. Trubkin, Vibro-pressed paving elements using steel-making slag, Building materials, 12, 2017, pp.71-73.

Google Scholar

[10] G. Ye, X. Liu, G. De Schutter, A.M. Poppe, L. Taerwe, Influence of limestone powder used as filler in SCC on hydration and microstructure of cement pastes. Cem. Concr. Compos. 29, 2007, рр. 94-102.

DOI: 10.1016/j.cemconcomp.2006.09.003

Google Scholar

[11] L. Sadowski, M. Piechowka-Mielnik, T. Widziszowski, A. Gardynik, S. Mackiewicz, Hybrid ultrasonic-neural prediction of the compressive strength of environmentally friendly concrete screeds with high volume of waste quartz mineral dust. Clean. Prod. 212, 2019, рр. 727-740.

DOI: 10.1016/j.jclepro.2018.12.059

Google Scholar

[12] H. Qasrawi, F.I. Shalabi, I. Asi, Use of low CaO unprocessed steel slag in concrete as fine aggregate, Construction and Building Materials, 23, 2, (2009) 1118-1125.

DOI: 10.1016/j.conbuildmat.2008.06.003

Google Scholar

[13] A. Sultan Tarawneh, S. Emhaidy Gharaibeh and M. Falah Saraireh: submitted to American Journal of Applied Sciences (2014).

Google Scholar

[14] J. Saravanan, N. Suganya: submitted to International journal of Engineering Inventions (2015).

Google Scholar

[15] I. Netinger, M. JelcicRukavina, A. Mladenovic, Improvement of post-fire properties ofconcrete with steel slag aggregate, Procedia Engineering, 62, 2013, pp.745-753.

DOI: 10.1016/j.proeng.2013.08.121

Google Scholar