1. Minstroy RF. (2022) In Russia will be ensured the wide introduction of multi-storey wooden house building [online]. Available at: https://minstroyrf.gov.ru/press/v-rossii-budet-obespecheno-shirokoe-vnedrenie-mnogoetazhnogo-derevyannogo-domostroeniya/ (accessed on 11.01.2024) (in Russian).
2. Difficult times for the composite industry or one more chance? (2022) Kompozitnyj mir, 4(101), pp. 20-28 [online]. Available at: https://tech-journals.ru/journals/tech/9669-kompozitnyy-mir-4-2022.html (accessed on 9.01.2024) (in Russian).
3. Ammari, M.S., Belhadj, B., Bederina, M., Ferhat, A. & Quéneudec, M. (2020) Contribution of hybrid fibers on the improvement of sand concrete properties: Barley straws treated with hot water and steel fibers, Construction and Building Materials, 233(8). DOI:https://doi.org/10.1016/j.conbuildmat.2019.117374.
4. Halil, T.S. & Yasemin, S. (2021) Mineral-Bonded Wood Composites: An Alternative Building Materials, Engineered Wood Products for Construction, 12 August [online]. Available at: https://www.intechopen.com/online-first/78047. DOI:https://doi.org/10.5772/intechopen.98988.
5. Nanazashvili, I.Kh. (1990) Building materials from wood-cement composition. St. Petersburg: Stroyizdat (in Russian).
6. Forecast of scientific and technological development of Russia: 2030. (2014) Moscow: Nacional. issled. un-t «Vysh. shk. ekonomiki» (in Russian).
7. Senichev, V.P. & Osipov, Y.R. (2015) Raw material potential of the Vologda Oblast to organize the production of wood-cement composite materials, Aktual'nye problemy razvitiya lesnogo kompleksa: mat. mezhdunar. nauch.-prakt. konf. (Vologda, 02–03 dekabrya 2014 goda). Vologda: Izd-vo Vologod. gos. un-ta, pp. 126-128 (in Russian).
8. Titunin, A.A. & Zaitseva, K.V. (2009) Design and production of construction materials from wood. Complex approach. Kostroma: Izd-vo Kostrom. gos. tekhnol. un-ta (in Russian).
9. Zvezdina, E.V. & Treskova, N.V. (2011) Water resistance increase of the heat-insulating products on the basis of caustic dolomite, Nauchno-prakticheskij internet-zhurnal "Nauka. Stroitel'stvo. Obrazovanie", (1) [online]. Available at: http://nso-journal.ru/public/journals/1/issues/2011/01/13.pdf (accessed 11.01.2024) (in Russian).
10. Aigbomian, E.P. & Mizi, F. (2013) Development of Wood-Crete from Hardwood and Softwood Sawdust, The Open Construction and Building Technology Journal, (7), pp. 108-117. DOI:https://doi.org/10.2174/1874836801307010108.
11. Jorge, F.C., Pereira, C. & Ferreira, J. (2004) Wood-cement composites: a review, European Journal of Wood and Wood Products, 62(50), pp. 370–377. DOI:https://doi.org/10.1007/s00107-004-0501-2.
12. Jami, T., Karade, S.R. & Sing, L.P. (2019) A Review of the Properties of Hemp concrete for green building applications, Journal of Cleaner Production, 239. DOI:https://doi.org/10.1016/j.jclepro.2019.117852.
13. Raheem, A.A. & Ikotun, B.D. (2020) Incorporation of agricultural residurtes as partial substitution for cement in concrete and mortar – A review, Journal of Building Engineering, 31(5). DOI:https://doi.org/10.1016/j.jobe.2020.101428.
14. Aminov, L.I. & Safin, R.G. (2001) Calculation of average thicknesses of binder layers in composite materials, Mat. mezhdunar. nauch.-tekhn. konf. «Kompozitsionnye materialy v aviastroenii i narodnom hozyajstve», Kazan', 2001. Kazan': Izd-vo Kazan. gos. tekhn. un-ta, pp. 32-39 (in Russian).
15. SN 549-82. Instruction for design, manufacture and application of structures and products from arbolite. (1983) Gosstroy of the USSR. Moscow: Stroyizdat (in Russian).



