Moscow, Moscow, Russian Federation
Tula, Tula, Russian Federation
Moscow, Moscow, Russian Federation
UDK 691.3 Искусственные камни. Бетоны. Искусственные строительные материалы различного состава
GRNTI 67.09 Строительные материалы и изделия
OKSO 08.04.01 Строительство
BBK 20 Естественные науки в целом
TBK 63 Науки о Земле. Экология
For the construction in the Far North, it is important to use high-strength building materials with high frost resistance, strength and low density. Such materials include nano concrete, which includes stabilized dispersions of carbon nano-tubes. The strength and relatively light weight of the reinforced concrete product based on nano concrete determines its high characteristics of the object, which leads to a reduction in transportation costs, labor intensity, installation of structural elements and reduces the cost of the construction object by 20%. A 6x6-meter garage has been proposed as an experimental building in the conditions of the Far North. For the construction, three-layer nano concrete wall panels were man-ufactured using mobile plant technology. The use of nano concrete made it possible to reduce the thickness of the concrete layer in the structural element on each side to 25 mm and reduce the weight of the product, as well as reduce the consumption of cement in the concrete mixture.
carbon nanotubes, dispersion, nano concrete, three-layer wall panel, structural element, object, strength
1. Harchenko I.Ya., Panchenko A.I. Monolitnoe stroitel'stvo po sisteme "INTRA-BAU" v usloviyah Kraynego Severa // Stroitel'nye materialy. – 2005. – № 6. – S. 29-32.
2. Pogodin D.A., Uhanova M.A. Intensifikaciya tehnologicheskih processov zimnego betonirovaniya monolitnyh zdaniy // Perspektivy nauki. – 2019. - № 1(112). – S. 63-68.
3. Samchenko S.V., Larsen O. A., Bylinkin D.S. Kompleksnye protivomoroznye dobavki dlya monolitnogo stroitel'stva v usloviyah Kraynego Severa // Tehnika i tehnologiya silikatov. – 2022. – T.29. – №2. – S.145-157.
4. Muhametrahimov R.H., Galautdinov A.R., Garafiev A.M. Elektrodnyy progrev betona s primeneniem tonkoprovodyaschego minerala // Izvestiya KGASU – 2019. – №4(50). – S. 419-426.
5. Manankov A.V., Gasanova E.R.K. Sitally iz mestno-go syr'ya dlya proizvodstvennyh innovacionnyh infrastruktur s vysokoy tehniko-ekonomicheskoy effektivnost'yu v ekstremal'nyh usloviyah Kraynego Severa // Izvestiya Tom-skogo politehnicheskogo universiteta. Inzhiniring georesursov. – 2018. – T. 329. – № 11. – S. 87-96.
6. Samchenko S.V., Zemskova O.V., Kozlova I.V. Mo-del' i mehanizm stabilizacii uglerodnyh nanotrubok plastifikatorom na polikarboksilatnoy osnove // Vestnik MGSU. – 2017. – T. 12. – № 7 (106). – S. 724-732.
7. Samchenko S.V., Zemskova O.V., Kozlova I.V. Stabilizaciya dispersiy uglerodnyh nanotrubok pri ul'trazvukovoy obrabotke // Tehnika i tehnologiya silikatov. – 2014. – T. 21. – № 3. – S. 14-18.
8. Samchenko S.V., Egorov E.S. Vliyanie ul'tradispersnoy dobavki iz predvaritel'no gidratirovannogo cementa na svoystva cementnoy pasty // Tehnika i tehnologiya silikatov. – 2019. – T. 26. – № 2. – S. 52-57.
9. Kozlova I.V. Opyt primeneniya nanorazmernyh chastic v proizvodstve stroitel'nyh materialov // Tehnika i tehnologiya silikatov. – 2021. – T. 28. – № 3. – S. 81-87.
10. Kozlova I.V., Samchenko S.V. Nanotehnologii v proizvodstve stroitel'nyh materialov: teoreticheskoe issledovanie // Tehnika i tehnologiya silikatov. – 2024. – T. 31. – № 3. – S. 284-297.
11. Yakovlev G.I., Pervushin G.N., Korzhenko A., Bur'yanov A.F., Pudov I.A., Lushnikova A.A. Modifikaciya cementnyh betonov mnogosloynymi uglerodnymi nanotrubkami // Stroitel'nye materialy. – 2011. – № 2. – S. 47-51.
12. Talayero A., Lado-Touriño I., Aït-Salem O., Ramos I.S., Páez-Pavón A., Merodio-Perea R.G. Interfacial Shear Strength of Single-Walled Carbon Nanotubes-Cement Composites from Mo-lecular Dynamics and Finite Element Studies // Materials. – 2023. – Vol. 16(5). – P. 1992. DOI:https://doi.org/10.3390/ma16051992.
13. Ahmed R., Hussein Al-Ja., Saleh D., Rashid R.S.M., Ba Rahma A.A. Influence of Carbon Nanotubes (CNTs) in the Ce-ment Composites // IOP Conference Series Earth and Environ-mental Science. – 2019. – Vol. 357(1). № 012024. DOI:https://doi.org/10.1088/1755-1315/357/1/012024.
14. Mendes T.M., de Medeiros M.H.F. Effect of carbon nanotubes on Portland cement matrices // Revista IBRACON de Estruturas e Materiais. – 2023. - Vol.16(5). DOI:https://doi.org/10.1590/s1983-41952023000500008.
15. VijayaBhaskar A., Shanmugasundaram M. An Investigation on Behavior of Multi-Wall Carbon Nanotubes as an Additive to Cement // Journal of Computational and Theoretical Nano-science. – 2018. - Vol. 24(8). – Rr. 5832-5835. DOI:https://doi.org/10.1166/asl.2018.12205.
16. Muradyan N.G., Gyulasaryan H., Arzumanyan A.A., Badalyan M.M., Kalantaryan M.A., Vardanyan Ye.V., Laroze D., Manukyan A., Barseghyan M.G. The Effect of Multi-Walled Car-bon Nanotubes on the Compressive Strength of Cement Mortars // Coatings. – 2022. - Vol. 12(12). Rr. 1933. DOI:https://doi.org/10.3390/pokrytiya 12121933.
17. Yuan Ji., Lu D., Wu H., Meng Ji., Song H., Zhong Ji., Xie N. Carbon nanotubes-coated cement particles for cement-based sensors with excellent piezoresistivity // Smart Materials and Structures. – 2023. - Vol. 32(6). - № 065019. DOI:https://doi.org/10.1088/1361-665X/acd03d.
18. Xuejun T., Jianlin L., Jigang Zh., Min Zh., Liqing Zh., Yibo G. Progress in FEM modeling on mechanical and electromechanical properties of carbon nanotube cement-based composites // Nanotechnology Reviews. – 2023. – Vol. 12(1). DOI:https://doi.org/10.1515/ntrev-2022-0522.
19. Orlov D.V. Monolitnye konstrukcii iz legkogo modificirovannogo nanobetona na primere pyatietazhnoy raz-nourovnevoy avtostoyanki // Inzhenerno-stroitel'nyy zhurnal. 2010. – № 5 (15). – S. 12-15.
20. Kishinevskaya E.V., Vatin N.I., Kuznecov V.D. Perspektivy primeneniya nanobetona v monolitnyh bol'shepro-letnyh rebristyh perekrytiyah s postnapryazheniem // Inzhenerno-stroitel'nyy zhurnal. - 2009. - № 2 (4). - S. 54-58.