The Processing of Citrogypsum for Obtaining Modified Gypsum Binders and Composite Materials on their Basis

Article Preview

Abstract:

The article considers a method of recycling citrogypsum – the сіtric acid production waste. A modified gypsum binder was obtained by means of dehydration of citrogypsum suspension and adding a modifier - polyacrylamide (PAA) - to it in conditions of autoclave treatment. The application of PAA as a modifying admixture causes the necessity to reduce the water-gypsum ratio (W/G) of the mix in order to prevent lamination at the molding product forming; at the same time, to provide the necessary flowability of the mix the introduction of plasticizing admixtures is needed, or the application of the harsher moulding mixtures or pressing technologies. For cylindrical samples, obtained by the compaction method at W/G=0.25 and the specific compacting pressure 20МPа, the optimal content of polyacrylamide as a modifying admixture amounts to 2% of the initial citrogypsum weight. This allows increasing the compression strength of the ready samples by more than 5 times. The samples, produced on the basis of modified gypsum binders, are characterized with high water resistance – the softening coefficient amounted to over 0.8.

You might also be interested in these eBooks

Info:

Periodical:

Solid State Phenomena (Volume 284)

Pages:

1086-1093

Citation:

Online since:

October 2018

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2018 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

* - Corresponding Author

[1] V.S. Lesovik, S.A. Pogorelov, V.V. Strokova, Gypsum binding materials and products, BelSTABM publishing office, Belgorod, (2000).

Google Scholar

[2] M.M. Kosukhin, A.M. Kosukhin, S.V. Kirilenko, Recycling of chemical wastes from the existing enterprises for providing environmental safety of municipal territories, Ecologically clean energy-saving and resource-saving chemical technology processes of environmental protection: proceedings of the International scientific and technical conference, BSTU publishing office, Belgorod, (2015).

Google Scholar

[3] V.A. Poluektova, N.A. Shapovalov, M.M. Kosukhin, A.A. Slusar, Plasticizing additives for water mineral dispersions on the basis of oxyphenol oligomers, Advances in Natural and Applied Science. 8 (5) (2014) 373-379.

Google Scholar

[4] S.V. Sverguzova, I.V. Starostina, G.I. Tarasova, E.V. Fomina, Using ferruginous quartzite tailings in dry bulding mixes, International Journal of Applied Engineering Research (IJAER). 10 (24) (2015) 45082-45090.

Google Scholar

[5] S.V. Sverguzova, Zh.A. Sapronova, I.V. Starostina, Disposal of synthetic surfactants-containing wastewater treatment sludge in the ceramic brick production, Procedia Engineering, 150 (2016) 1610-1616.

DOI: 10.1016/j.proeng.2016.07.138

Google Scholar

[6] I.V. Starostina, M.M. Simonov, L.V. Denisova, The Use of Ferrovanadium Production Sludge Wastes in Claydite Gravel Technology, Solid State Phenomena, 265 (2017) 501-506.

DOI: 10.4028/www.scientific.net/ssp.265.501

Google Scholar

[7] S.V. Sverguzova, G.I. Tarasova, I.V. Starostina, A.A. Vnukov, M.Yu. Fedorina, Composite pigment-filler on the basis of heat power plant and tails of enrichment of ferruterous quartzites, Research Journal of Applied Sciences, 10 (12) (2015).

Google Scholar

[8] Zh. A. Sapronova, D.V. Sapronov, Yu.L. Starostina, Combined extender pigments based on industrial wastes, Solid State Phenomena, 265 (2017) 450-455.

DOI: 10.4028/www.scientific.net/ssp.265.450

Google Scholar

[9] I.V. Starostina, M.Yu. Fedorina, E.M. Kuzina, The structure of composite materials based on gypsum binder with the use of thermally-activated defecate, Current issues of science and education. 6 (2014).

Google Scholar

[10] Gypsum materials and products (manufacture and use). Reference book. Under the general editorship of А.V. Ferronskaya, АSV, Moscow, (2004).

Google Scholar

[11] S.A. Pogorelov, On the problem of using technogenic gypsum raw stuff, Existential problems and environmental economic management mechanisms in the Kama River area: symposium proceedings, KamPI publishing office, Naberezhnye Chelny, (2002) 12-15.

Google Scholar

[12] A.S. Edamenko, V.G. Klimenko, Opportunities of using technogenic raw stuff in building materials production, Technosphere safety technologies. 1 (47) (2013).

Google Scholar

[13] G.I. Tarasova, S.V. Sverguzova, R.U. Patent 2132310 (1999).

Google Scholar

[14] S.V. Sverguzova, G.I. Tarasova, N.V. Chernysheva, L.I. Chernysh, Theoretical justification of the possibility of citrogypsum non fired dehydration, Bulletin of BSTU named after V.G. Shukhov. 2 (2010) 117-121.

Google Scholar

[15] M.Yu. Fedorina, I.V. Starostina, Microwave-field treatment of citrogypsum for obtaining anhydrite binders and composite materials based on them, Proceedings of the 6th International scientific conference of students, postgraduate students and masters «Regional environmental problems: scientific, methodological and application aspects of their solving», OSEU, Odessa, 2013, 306-310.

Google Scholar

[16] H.-B. Fisher, H. Rihert, S. Novak, A. Buryanov, V.S. Lesovik, V.V. Strokova, Recrystallization process and its influence on gypsum (calcium sulfate dehydrate) particles hardening, Smart building composites for green construction: collection of works of the International research and practice conference, BSTU publishing office, Belorod, 2016, 245-249.

Google Scholar

[17] GOST 4013-82. Gypsum and gypsum-anhydrite rock for the manufacture of binders.

Google Scholar

[18] V.I. Aksenov, M.G. Ladygichev, I.I. Nichkova.,V.A. Nikulin, S.E. Kolyain, E.V. Aksenov, Water management at industrial enterprises: Reference book: in 2 volumes. Volume 1, Heat engineering, Moscow, (2005).

Google Scholar

[19] A.F. Polak, V.V. Babkov, S.M. Kapitonov, R.A. Anvarov, Structuring and strength of combined water-binder gypsum systems, Proceedings of Higher educational institutions. Building and architecture. 8 (1991).

Google Scholar

[20] V.B. Petropavlovskaya, V.V. Belov, A.F. Buryanov, Hardening crystallizing systems based on calcium sulfate dehydrate powders, Building materials. 12 (2007) 46-47.

Google Scholar