Theoretical Prospects for the Modification of a Cement Mixture by the Introduction of Mineral Wool for its Secondary Use

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Resumo

Currently, the issue of reuse of various materials that have served their useful life, as well as waste from the production of these materials, has become relevant in all areas of industry. The use of modern technologies already makes it possible to efficiently process various wastes, but in most cases the use of raw materials obtained in this way poses a serious task for engineers and technologists. One of the most common products of the construction industry is a different kind of insulation, as an integral part of the structure, which provides effective energy protection of buildings from heat loss during cold periods of the year. Mineral wool, as an effective method of protection, is actively used now and was popular in the 20th century. Many buildings, when decommissioned, respectively, contain insulation in the mass of waste, creating the task of developing methods for using it repeatedly or after recycling.

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Sobre autores

A. Kashurkin

Scientific-Research Institute of Building Physics of RAACS; National Research Moscow State University of Civil Engineering

Autor responsável pela correspondência
Email: leontiii@mail.ru

Head of Laboratory 

Rússia, Moscow; Moscow

I. Melnikova

Scientific-Research Institute of Building Physics of RAACS

Email: leontiii@mail.ru

Technician

Rússia, Moscow

A. Novakov

Scientific-Research Institute of Building Physics of RAACS

Email: leontiii@mail.ru

Technician

Rússia, Moscow

V. Florensky

Scientific-Research Institute of Building Physics of RAACS

Email: leontiii@mail.ru

Technician

Rússia, Moscow

Bibliografia

  1. Volkova A.V. Rynok utilizatsii otkhodov [Waste recycling market]. Moscow: INFRA. 2018. 87 p.
  2. Shishakina O.A., Palamarchuk A.A. Review of directions for recycling technogenic waste in the production of building materials. Mezhdunarodnyy zhurnal prikladnykh i fundamental’nykh issledovaniy. 2019. No. 4, pp. 198–203. (In Russian).
  3. Erofeev V.T., Rodin A.I., Bochkin V.S., Yakunin V.V., Ermakov A.A. Light geopolymers from mineral wool production waste. Magazine of Civil Engineering. 2020. No. 1 (93), pp. 3–12.
  4. Abdrakhimov V.Z. Using waste from the production of mineral wool to obtain wall materials. Ekologiya promyshlennogo proizvodstva. 2019. No. 2 (106), pp. 9–12. (In Russian).
  5. Pranckevicienė I., Pundienė I. The influence of the combined use of mineral wool production waste and catalytic cracking catalyst waste on the structure and properties of ceramics. Steklo i keramika. 2020. No. 10, pp. 34–40. (In Russian).
  6. Erofeev V.T., Rodin A.I., Yakunin V.V., Tuvin M.N. Structure, composition and properties of geopolymers from mineral wool waste Magazine of Civil Engineering. 2019. No. 6 (90), pp. 3–14.
  7. Sharif A., Arshian R., Najmi A., Tseng M.-L., Lim M.K. Dynamic and causality interrelationships from municipal solid waste recycling to economic growth, carbon emissions and energy efficiency using a novel bootstrapping autoregressive distributed lag. Resources, Conservation and Recycling. Vol. 166. 2021. 105372. https://doi.org/10.1016/j.resconrec.2020.105372
  8. Yliniemi J., Kinnunen P., Karinkanta P., Illikainen M. Utilization of mineral wools as alkali-activated material precursor. Materials (Basel). 2016. Vol. 9 (5). 312. https://doi.org/10.3390/ma9050312
  9. Kikalishvili D.G. Analysis of the use of mineral wool production waste. International scientific and technical conference of young scientists of BSTU named after V.G. Shukhov. 2022, pp. 77–81. (In Russian).
  10. Zhukov A.D. Tekhnologiya teploizolyatsionnykh materialov: ucheb. pos. CH. 1. Teploizolyatsionnyye materialy. Proizvodstvo teploizolyatsionnykh [Technology of thermal insulation materials: textbook. village Part 1. Thermal insulation materials. Production of thermal insulation]. Moscow: MSTUCE. 2011. 431 p.
  11. Pustovgar A.P., Lavdansky P.A., Esenov A.V. at al. The influence of superplasticizers and calcium oxide on the hydration of cement in serpentinite concrete. Vestnik of the Volgograd State University of Architecture and Civil Engineering. 2014. No. 2 (33), p. 10. EDN: SWKHMF
  12. Patent for invention RU 2077520 C1, 04/20/1997. Legkiy beton neavtoklavnogo tverdeniya [Lightweight concrete of non-autoclave hardening]. Kostin V.V. Application No. 93011869/03 dated 03/04/1993. EDN: WTQASR
  13. Patent for invention RU 2123484 C1, 12/20/1998. Shlakoshchelochnoy yacheistyy beton [Slag-alkaline cellular concrete]. Belyakova Zh.S., Velichko E.G., Zubenko V.M., Rakhmanov V.A., Toloraya D.F. Application No. 96114705/03 dated 07/18/1996. EDN: ZEKZZZ
  14. Erofeev V.T., Maksimova I.N., Tarakanov O.V., Sanyagina Ya.A., Erofeeva I.V., Suzdaltsev O.V. Decorative and finishing powder-activated concretes with a granular surface texture. Stroitel’nye Materialy [Construction Materials]. 2022. No. 10, pp. 25–40. (In Russian). DOI: https://doi.org/10.31659/0585-430X-2022-807-10-25-40
  15. Klyuev S.V. High-strength fiber-reinforced concrete for industrial and civil construction. Magazine of Civil Engineering. 2012. No. 8 (34), pp. 61–66. (In Russian).
  16. Nelyubova V.V., Babaev V.B., Alfimova N.I., Usikov S.A., Masanin O.O. Increasing the efficiency of fiber-reinforced concrete production. Stroitel’nyye materialy i izdeliya. 2019. Vol. 2. No. 2, pp. 4–9. (In Russian).
  17. Nelubova V.V., Usikov S.A., Strokova V.V., Netsvet D.D. Composition and properties of self-compacting concrete using a complex of modifiers. Stroitel’nye Materialy [Construction Materials]. 2021. No. 12, pp. 48–54. (In Russian). DOI: https://doi.org/10.31659/0585-430X-2021-798-12-48-54
  18. Bogdanov R.R., Ibragimov R.A. Process of hydration and structure formation of the modified self-compacting concrete. Magazine of Civil Engineering. 2017. No. 5 (73), pp. 14–24.
  19. Fedyuk R.S., Mochalov A.V., Lesovik V.S., Gridchin A.M., Fisher H.B. Composite binders and self-compacting fiber-reinforced concrete for protective structures. Vestnik of the Belgorod State Technological University named after. V.G. Shukhov. 2018. No. 7, pp. 77–85. (In Russian).
  20. Klyuev A.V., Klyuev S.V., Netrebenko A.V., Durachenko A.V. Fine-grained fiber-reinforced concrete reinforced with polypropylene fiber. Vestnik of the Belgorod State Technological University named after. V.G. Shukhov. 2014. No. 4, pp. 67–72. (In Russian).

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