Developing a smart building concept based on the triadic decoding method: an evolutionary approach
https://doi.org/10.31660/2782-232X-2024-2-17-28
Abstract
The study focuses on the concept development of the architectural and structural design of intelligent (smart) buildings, which have been of increasing research interest in recent years. The hypothesis of the study was the assumption that smart building was an evolution of green building. Evolutionary approach, single-level and two-level triadic decoding of system-categorial methodology, general scientific and graphic methods helped us to solve the following tasks: 1) to identify the components of the "intellectual building" definition content and reflecting its essential features; 2) to structure the main components (engineering and technical equipment, personification of space, environmental friendliness and resource saving) in the sequence of their formation in the object. The definition and structuring of the main components of an intelligent building by the method of triadic decoding allowed us to expand the idea of its essence, gave a better insight into the conceptual foundations of architectural and construction design of intelligent buildings and outlined the preconditions for its further development.
About the Authors
A. S. GulbinasRussian Federation
Alexandra S. Gulbinas, Senior Lecturer at the Department of Descriptive Geometry and Graphics
Tyumen
L. V. Belova
Russian Federation
Larisa V. Belova, Cand. Sc. in Engineering, Associate Professor, Associate Professor at the Department of Engineering Systems and Structures, Head at the Department of Descriptive Geometry and Graphics
Tyumen
References
1. Poluy, B. M. (1989). Arkhitektura i gradostroitel'stvo v surovom klimate (ekologicheskie aspekty). Leningrad, Stroyizdat Publ., 300 p. (In Russian).
2. Chereshnev, I. V. (2022). Ekologicheskie aspekty formirovaniya maloetazhnykh zhilykh zdaniy dlya gorodskoy zastroyki povyshennoy plotnosti. 2nd edition, revised. Saint Petersburg, Lan' Publ., 256 p. (In Russian).
3. Vladimirova, I. L., Dmitriev, A. N., Kallaur, G. Y., & Tsygankova, A. A. (2023). "Green" solutions for housing construction at the stages of the life cycle of an object. Industrial and Civil Engineering, (5), pp. 45-51. (In Russian). DOI 10.33622/0869-7019.2023.05.45-51.
4. Kushnin, A. V., & Shenkman, R. I. (2022). Current trends in low-rise energy-efficient construction. Architecture, Сonstruction, Transport, (2(100)), pp. 58-65. (In Russian). DOI 10.31660/2782-232X-2022-2-58-65.
5. Pavlova, S. A., Larionov, A. N., & Malyshev, I. V. (2009). Teoriya i praktika formirovaniya i razvitiya rynka ekozhil'ya. Moscow, Modern University for the Humanities Publ., 162 p. (In Russian).
6. Chereshnev, I. V., Chereshneva, N. V., & Chereshnev, L. I. (2023). Building life cycle assessment as the basis for creating a model of the technological energy system of the dwelling. Vestnik Volgogradskogo gosudarstvennogo arhitekturno-stroiteľnogo universiteta. Seriya: Stroiteľstvo i arhitektura, (3-4(92)), pp. 252-262. (In Russian).
7. Guba, O. E. (2021). The engineering systems in the modern architecture. Astrakhanskiy vestnik ekologicheskogo obrazovaniya, (1(61)), pp. 168-174. (In Russian). DOI 10.36698/2304-5957-2021-20-1-168-174.
8. Pakhomova, M. A., & Khramtsov, A. B. (2022). Low-rise construction in Russia and abroad: a review of practices. Architecture, Construction, Transport, (3(101)), pp. 20-31. (In Russian). DOI 10.31660/2782-232X-2022-3-20-31.
9. Mikhaylov, S. M., & Mikhaylova, A. S. (2016). The principle of ergocentrism and inductive approach in the organization of the subject and spatial environment of the city. Innovative project, 1(4), pp. 43-50. (In Russian). DOI 10.17673/IP.2016.1.04.6.
10. Barsukova, N. I. (2011). Aksiologicheskie osnovy teorii i metodologii sredovogo dizayna. Vestnik of the Orenburg State University, (9(128)), pp. 21-26. (In Russian).
11. Sandelewski, A. (2014). Novyy vek OVK: problemy i perspektivy. Ventilyatsiya, otoplenie, konditsionirovanie vozdukha, teplosnabzhenie i stroitel'naya teplofizika: AVOK, (4), pp. 4-14. (In Russian).
12. Esaulov, G. V. (2014). Sustainable architecture: from approaches to strategy of development. Journal of Construction and Architecture, (6(47)), 9-24. (In Russian).
13. Kaveckaya, E. A., & Tolkasheva, E. V. (2018). Automated control system as a modern technology of information management and engineering systems of the building. Aktual'nye problemy aviatsii i kosmonavtiki, 3(4(14)), pp. 836-838. (In Russian).
14. Sheina, S. G., Minenko, E. N., Artsishevsky, M. D., & Pityk, E. S. (2019). Automated building management system as a tool to improve their energy efficiency and comfort level. Ingineering Journal of Don, (2(53)), P. 36. (In Russian).
15. Komarov, N. M., & Zharov, V. G. (2013). Upravlenie inzhenernymi sistemami intellektual'nogo zdaniya s ispol'zovaniem tekhnologiy informatsionnogo i infograficheskogo modelirovaniya. Service Plus, (2), pp. 74-81. (In Russian).
16. Rezhi, Zh., Merbi, Kh., & Ture, Kh. (2008). Intellektual'nye, ekologichnye i energoeffektivnye zdaniya. Standarty i kachestvo: mezhdunarodnyy zhurnal dlya professionalov standartizatsii i upravleniya kachestvom, (10), p. 2. (In Russian).
17. Boush, G. D., & Razumov, V. I. (2023). Metodologiya nauchnogo issledovaniya (v kandidatskikh i doktorskikh dissertatsiyakh). Moscow, Infra-M Publ., 227 p. (In Russian).
18. Dus, Yu. P., Razumov, V. I., Ryzenko, L. I., & Sizikov, V. P. (2014). Insafing as a new intellectual communication in management. Bulletin of Ural Federal University. Series Economics and Management, (4), pp. 4-12. (In Russian).
19. Rodionov, R. B. (2009). An intellectual building: comfort, safety, economy and fashion. Stroitel'nye materialy, oborudovanie, tekhnologii XXI veka, (2(121)), pp. 81-83. (In Russian).
20. Latyshev, G. (2007). Metodologiya postroeniya intellektual'nogo zdaniya. Algoritm bezopasnosti, (6), pp. 66-68. (In Russian).
21. Kitaev, A., & Mironova, I. (2017). Market research of smart houses industry in the digital economy. International Journal of Open Information Technologies, (5(10)), pp. 34-46. (In Russian).
22. Bashnya Al'-Bakhar: novyy potryasayushchiy fasad v stile Mashrabiya. VZAVTRA.NET: innovatsii v stroitel'stve. (In Russian). Available at: https://goo.su/ATLSa8T (accessed 09.10.2023).
Review
For citations:
Gulbinas A.S., Belova L.V. Developing a smart building concept based on the triadic decoding method: an evolutionary approach. Architecture, Construction, Transport. 2024;(2):17-28. (In Russ.) https://doi.org/10.31660/2782-232X-2024-2-17-28