Heat-Insulating Structural Polystyrene Concrete Modified with Dispersed Iron-Containing Sludge
https://doi.org/10.31675/1607-1859-2025-27-3-220-231
EDN: XGMNGB
Abstract
An important task in individual housing construction is the wall material. Polystyrene concrete is one of the most effective wall materials in low-rise construction. The property improvement of polystyrene concrete increases the efficiency of individual housing construction.
Purpose: The aim of this work is to improve physical and mechanical properties of polystyrene concrete through the addition of the complex additive of iron-containing sludge and Benotekh PMP-1.
Research findings: Polystyrene concrete compositions with the average density D300 are proposed with the complex addition of iron-containing sludge and Benotekh PMP-1 with the increased compressive strength of 1.51 MPa without increasing thermal conductivity.
About the Authors
A. V. UglyanitsaRussian Federation
Andrei V. Uglyanitsa, DSc, Professor
28, Vesennyaya Str., 650000, Kemerovo
A. I. Kudyakov
Russian Federation
Aleksandr I. Kudyakov, DSc, Professor
2, Solyanaya Sq., 634003, Tomsk
V. B. Duvarov
Russian Federation
Vladimir B. Duvarov, Senior Lecturer
28, Vesennyaya Str., 650000, Kemerovo
References
1. Graboviy P.G., Starovoytov A.S. Problems and Possible Solutions of Individual Housing Construction in Russia. Nedvizhimost': ekonomika, upravlenie. 2019; (1): 94–103. EDN: RDDPDV (In Russian)
2. Shafirov L.A. Motivation and Restrictions for Project Implementation of Individual Housing Construction in Russia. Journal of Economic Regulation. 2019; 10 (4): 22–34. DOI: 10.17835/2078-5429.2019.10.4.022-034 (In Russian)
3. Gorbunov A.A., Buyanov O.V. Toward Prospects for Entrepreneurship Development in LowRise Housing. Stroitel'stvo. Ekonomika i upravlenie. 2020; 1 (37): 26–31. EDN: CBAPYA (In Russian)
4. Kostrikin P.N., Le V.T., Andreeva A.I. Innovative Approaches in the Field of Low-Rise Housing Construction and Digital Transformation of Investment and Construction Activities as the Main Focus of the All-Russian Housing Congress. Real Estate: Economics, Management. 2021; (3): 6–10. DOI: 10.22337/2073-8412-2021-3-6-10. EDN: GYJGXQ
5. Steshenko A.B., Kudyakov A.I. Сement Based Foam Concrete with Aluminosilicate Microspheres for Monolithic Construction. Magazine of Civil Engineering. 2018; 8 (84): 86–96. DOI: 10.18720/MCE.84.9. EDN: IWWNMW
6. Razumey V.Yu. Individual Housing Construction as a Vector of the Strategy for the Development of Construction Organizations in the Context of Transformation. In: Coll. Papers “Building Complex: Economics, Management, Investments”. Saint-Petersburg, 2020. Pp. 40–45. EDN: HRUUVF (In Russian)
7. Rakhmanov V.A., Safonov A.A. Properties of Polystyrene Concrete under Static and Dynamic Compressive Loads. Promyshlennoe i grazhdanskoe stroitel'stvo. 2017; (4): 65–71. EDN: YKPDNT (In Russian)
8. Ilina l., Kudyakov A., Rakov M. Aerated Dry Mix Concrete for Remote Northern Territories. Magazine of Civil Engineering. 2022; 5 (113): 11310. DOI: 10.34910/MCE.113.10. EDN: CDHQSU
9. Pimenova L.N., Kudyakov A.I. Foam Concrete Modified with Silica Gel. Vestnik of Tomsk State University of Architecture and Building. 2013; 2 (39): 229–234 EDN: QBVCFT (In Russian)
10. Drapeza A.O. Creation of Low-Density Polystyrene Concrete. In: Coll. Papers “Traditions, Modern Problems and Prospects of Construction”, A.R. Volik Ed. May 23–24, 2019. Grodno: Yanka Kupala State University of Grodno, 2019. Pp. 174–176. EDN: FYOMQY (In Russian)
11. Uglyanitsa A.V., Duvarov V.B. Insulation of Underground Lining with Heat-Insulating Structural Polystyrene Concrete. Vestnik Kuzbasskogo gosudarstvennogo tekhnicheskogo universiteta. 2022; 2 (150): 64–74. DOI: 10.26730/1999-4125-2022-2-64-74 (In Russian)
12. Akulova M.V., Slizneva T.E. Polystyrene Concrete Based on Portland Cement Binder with Liquid Glass and Fireclay. Vestnik grazhdanskikh inzhenerov. 2018; 3(68): 103–111. DOI: 10.23968/1999-5571-2018-15-3-103-111 (In Russian)
13. Polyakov T.A., Povarova O.A. Polyethylene Terephthalate Fiber for Property Improvement of Polystyrene Concrete. Vestnik Vologodskogo gosudarstvennogo universiteta. Seriya: Tekhnicheskie nauki. 2019; 4 (6): 83–85. EDN: JQNOSZ (In Russian)
14. Lukutsova N.P., et al. Structure and Properties of Polystyrene Concrete with Silicate Pastes. Bulletin of the Shukhov Belgorod State Technological University. 2017; (11): 25–33. DOI: 10.12737/article_5a001aadc0fe57.79195521 (In Russian)
15. Chowdhury S., Mishra M., Suganya O. Incorporation of Wood Waste Ash as Partial Cement Replacement Material for Making Structural Grade Concrete: An overview. Ain Shams Engineering Journal. 2015; 6 (2): 429–437. DOI: 10.1016/j.asej.2014.11.005
16. Cheah Chee Ban, Ramli Mahyuddin. Mechanical Strength, Durability and Drying Shrinkage of Structural Mortar Containing HCWA as Partial Replacement of Cement. Construction and Building Materials. 2012; 30 (5): 320–329. DOI: 10.1016/j.conbuildmat.2011.12.009
17. Kulasuriya C., Vimonsatit V., Dias W.P.S., De Silva P. Design and Development of Alkali Pozzolan Cement (APC). Construction and Building Materials. 2014; 68: 426–433. DOI: 10.1016/j.conbuildmat.2014.06.095
18. Konsta-Gdoutos M.S., Metaxa Z.S., Shah S.P. Highly Dispersed Carbon Nanotube Reinforced Cement Based Materials. Cement and Concrete Research. 2010; 40 (7): 1052–1059. DOI: 10.1016/j.cemconres.2010.02.015
19. Korotkova A.A. Cement Choice for Lightweight Concrete Production and Ways to Eliminate Possible Defects in Polystyrene Concrete. Tekhnologii betonov. 2019; 11–12 (160–161): 12–14. EDN: NIYCXJ (In Russian)
20. Rakhimov M.A., Rakhimova G.M., Tkach E.V., Mudrenko V.V. Influence of Complex Modifier on Physical and Mechanical Properties of Polystyrene Concrete. Trudy universiteta. 2022; 1 (86): 166–170. EDN: BHYLLE (In Russian)
21. Kosmachev P.V., Demyanenko O.V., Vlasov V.A., Kopanitsa N.O., Skripnikova N.K. Composite Materials Based on Cement with Nanodispersed Silicon Dioxide. Vestnik of Tomsk State University of Architecture and Building. 2017; (4): 139–146. EDN: ZDDEGN (In Russian)
22. Ilyina L.V., Berdov G.I., Gichko N.O. Influence of Complex Dispersed Mineral Additives on hydrated cement strength. Izvestiya vysshikh uchebnykh zavedenii. Stroitel'stvo. 2017; (1): 38–44. EDN: YRJJWX (In Russian)
23. Kudyakov A.I., Prishchepa I.A., Osipov S.P. Non-Autoclaved Cement Foam Concrete with Thermally Modified Peat Additive. Stroitel'nye materialy. 2022; (1–2): 40–49. EDN: DWUMKK (In Russian)
24. Duvarov V.B., Uglyanitsa A.V. Possibility of Using Waste from Chemical Enterprises in Portland Cement Production. In: Proc. 14th Int. Sci. Conf. ‘Life Safety of Enterprises in Industrialized Regions’. November 23–25, Kemerovo, 2021. Pp. 606-1–606-7. EDN: NTKOIY (In Russian)
25. Kudyakov A.I., Plevkov V.S., Belov V.V., Nevskii A.V., Kudyakov K.L. Technology and Composition of Carbon-Fiber-Reinforced Concrete with High Homogeneity of Strength Properties. Voprosy materialovedeniya. 2016; 1 (85): 66–72. EDN: WANUNL (In Russian)
26. Kudyakov A.I., Simakova A.S., Kondratenko V.A., Steshenko A.B., Latypov A.D. Cement Paste and Brick Properties Modified by Organic Additives. Vestnik Tomskogo gosudarstvennogo arkhitekturno-stroitel'nogo universiteta – Journal of Construction and Architecture. 2018; 20 (6): 138–147. EDN: YRJJFB (In Russian)
27. Kudyakov A.I., Kopanitsa N.O., Prishchepa I.A., Shangin S.N. Structural and Heat-Insulating Foam Concrete with Thermally Modified Peat Additive. Vestnik of Tomsk State University of Architecture and Civil Engineering. 2013; 1 (38):172–177. EDN: PWWKOB (In Russian)
28. Mashkin N.A., Kudyakov A.I., Bartenyeva E.A. Non-Autoclaved Foam Concrete Dispersed-Reinforced with Mineral and Fibrous Additives. Izvestiya vysshikh uchebnykh zavedenii. Stroitel'stvo. 2018; 8 (716): 58–68. EDN: MJCXRB (In Russian)
Review
For citations:
Uglyanitsa A.V., Kudyakov A.I., Duvarov V.B. Heat-Insulating Structural Polystyrene Concrete Modified with Dispersed Iron-Containing Sludge. Vestnik Tomskogo gosudarstvennogo arkhitekturno-stroitel'nogo universiteta. JOURNAL of Construction and Architecture. 2025;27(3):220-231. (In Russ.) https://doi.org/10.31675/1607-1859-2025-27-3-220-231. EDN: XGMNGB