Physical-Chemical Studies and Evaluation of the Suitability of Chernoyarskoe Deposit’s Diatomite for the Synthesis of Foam Glass

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The macro- and microstructure is investigated by microscopic analysis methods. The elemental, granulo-metric and mineralogical composition of diatomite of the Chernoyarskoe deposit is determined. As a result of complex thermal analysis, using a differential scanning calorimeter, intervals of continuous dehydration of diatomite were studied, as well as polymorphic transformations of quartz and other minerals. Physical-chemical methods of research have discovered that diatomite of the Chernoyarskoe deposit contains amorphous silica, quartzite, clay impurities, opal and minor amounts of calcite, mica, zeolite, and so this diatomite is a promising raw material for the synthesis of foam glass.

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Solid State Phenomena (Volume 299)

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188-193

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January 2020

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© 2020 Trans Tech Publications Ltd. All Rights Reserved

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[1] F. Shill, Foamglass, Moscow, Stroiizdat, (1965).

Google Scholar

[2] B.K. Demidovich, Foam glass. Minsk: Science and Technology, (1975).

Google Scholar

[3] N.I. Minko, O.V. Puchka, M.N. Stepanova, Prospects for the development of technology and the production and use of foam glass, Glass of the world. 1 (2011) 61-62.

Google Scholar

[4] N.I. Minko, A.I. Kuzmenko, Glass-ceramic foam glass from slags, Glass of the world. 3 (2011) 78-79.

Google Scholar

[5] O.V. Kaz'mina, V.I. Vereshchagin, Physicochemical modeling of composition of foam glass-crystal materials, Glass Physics and Chemistry. 41(1) (2015) 122-126.

DOI: 10.1134/s1087659615010125

Google Scholar

[6] O.V. Kazmina, N.A. Kuznetsova, V.I. Vereshchagin, V.P. Kazmin, Getting foam glass materials on the basis of ash and slag waste from thermal power plants, Bulletin of Tomsk Polytechnic University. 319(3) (2011) 52-56.

Google Scholar

[7] Y.I. Vaisman, A.A. Ketov, P.A. Ketov, The scientific and technological aspects of foam glass production, Glass Physics and Chemistry. 41(2) (2015) 157-162.

DOI: 10.1134/s1087659615020133

Google Scholar

[8] D.R. Damdinova, M.M. Zonkhiev, R.R. Bepple, Foam glass based on cullet and highly crystalline rocks, Scientific Review. 8 (2015) 191-197.

Google Scholar

[9] V.A. Smoliy, A.S. Kosarev, E.A. Yatsenko, Dependence of the reaction and foaming ability of the compositions of organic and inorganic pore-formers of cellular insulating construction glass material on their ratio and properties, Technique and technology of silicates. 22(4) (2015) 7-12.

Google Scholar

[10] V.A. Smoliy, E.A. Yatsenko, A.S. Kosarev, B.M. Goltsman, Development of compositions and technological parameters of the synthesis of cellular insulating glass construction materials with a prescribed density, Glass and Ceramics. 6 (2016) 22-25.

DOI: 10.1007/s10717-016-9860-5

Google Scholar

[11] N.A. Mashkin, Construction Materials. Short course - Novosibirsk: NGASU (Sibstrin), (2012).

Google Scholar

[12] V.A. Smoliy, E.A. Yatsenko, A.S. Kosarev, B.M. Goltsman, Silicate multi-layer composite insulating and decorative material, Scientific Review. 22 (2017) 16-23.

Google Scholar

[13] F. Schill, Foam glass (production and use), translated from Czech by G.M. Matveyev. Moscow, Publishing house of literature on construction, (1965).

Google Scholar

[14] O.V. Kazmina, V.I. Vereshchagin, A.N. Abiyaka, Foamglass-crystalline materials based on natural and man-made materials, Tomsk: Publishing House of Tomsk Polytechnic University, (2014).

Google Scholar

[15] V.A. Smoliy, A.S. Kosarev, E.A. Yatsenko, B.M. Goltsman, N.A. Vilbitskaya, Mathematical planning in optimizing the synthesis of cellular insulating glass material, News of higher educational institutions. North Caucasus region. Series: Technical Sciences. 1(193) (2017) 80-85.

Google Scholar

[16] V.A. Smoliy, E.A. Yatsenko, A.S. Kosarev, L.V. Klimova, Investigation of the spectrophotometric characteristics of the decorative layer of a multi-layer silicate composite insulating-decorative material, Technique and technology of silicates. 4 (2017) 23-28.

Google Scholar

[17] V.A. Smoliy, E.A. Yatsenko, B.M. Goltsman, A.S. Kosarev, Dependence of the thermal insulation and strength properties of lightweight concrete on the fractional composition of the porous aggregate, Ecology of Industrial Production. 4 (2017) 13-15.

Google Scholar

[18] V.A. Smoliy, A.S. Kosarev, E.A. Yatsenko, B.M. Goltsman, Development of a production technology for an efficient energy-saving cellular heat-insulating construction glass material, News of higher educational institutions. North Caucasus region. Series: Technical science. 4(185) (2015) 128-132.

Google Scholar

[19] V.A. Smoliy, E.A. Yatsenko, B.M. Goltsman, A.S. Kosarev, Effect of granulometric composition of the batch on the technological and physico-chemical properties of granular porous silicate aggregate, Glass and Ceramics. 8 (2017) 12-14.

DOI: 10.1007/s10717-017-9977-1

Google Scholar

[20] V.A. Smoly, B.M. Goltsman, A.S. Kosarev, E.A. Yatsenko, Physico-chemical patterns of low-temperature autoclave synthesis of multi-layer silicate composite insulating-decorative material, Ecology of industrial production. 3(103) (2018) 24-26.

Google Scholar

[21] V.A. Smolii, A.S. Kosarev, E.A. Yatsenko, B.M. Gol'tsman, Structure Formation in Cellular Glass Based on Novocherkassk CHPP Ash-Slag Wastes, Glass and Ceramics. 7-8(75) (2018) 249-253.

DOI: 10.1007/s10717-018-0075-9

Google Scholar

[22] A.V. Ryabova, E.A. Yatsenko, L.V. Klimova, B.M. Goltsman, A.Yu. Fanda, Protection of steel pipelines with glass-enamel coatings based on silica-containing raw materials of the far east of Russia, International Journal of Mechanical Engineering and Technology, 9(10) (2018) 769-774.

DOI: 10.4028/www.scientific.net/msf.945.46

Google Scholar

[23] Information on: https://ieeexplore.ieee.org/document/8554153.

Google Scholar