Rapidly Constructed 3D Buildings: Sustainable Solutions in Multifactor Risk Conditions
- Authors: Pshenichnikova K.A.1
-
Affiliations:
- Moscow Architectural Institute
- Issue: No 5 (2025)
- Pages: 3-11
- Section: Articles
- URL: https://gynecology.orscience.ru/0044-4472/article/view/684314
- DOI: https://doi.org/10.31659/0044-4472-2025-5-3-11
- ID: 684314
Cite item
Abstract
The article deals with the peculiarities of forming fast architectural objects based on 3D printing under conditions of multifactor risks. The purpose of the article is to identify approaches to the organization of spatial environment: technical and social. The first type includes technical developments in design, erection and operation. Social concepts take into account the necessary human needs. The study provides insight into the methods and materials used in 3D printing, as well as the prerequisites for the development of additive manufacturing. Scientific works on the investigated problematics, related specialties and experience of design developments that take into account technological and social aspects for the realization of sustainable solutions in the formation of fast-built objects based on 3D printing under the influence of anthropogenic and natural factors have been studied.
Full Text

About the authors
K. A. Pshenichnikova
Moscow Architectural Institute
Author for correspondence.
Email: k.pshenichnikova@markhi.ru
Candidate of Sciences (Architecture)
Russian Federation, 11/4, Rozhdestvenka St., Moscow, 107031References
- Saprykina N.A. Formation of architectural objects for extreme habitat conditions in the context of innovative paradigms. IIOP Conf. Series: Materials Science and Engineering. 2019. 675. 10 p. EDN: KPPNSF. https://doi.org/10.1088/1757-899X/675/1/012017
- Singh R., Sodhi A.K., Bhanot N. Investigation on the potential use of EAF dust and RSA for sustainable. Recycled Waste Materials. 2019, pp. 127–135. https://doi.org/10.1007/978-981-13-7017-5_15
- Javaid M., Haleem A. Current status and applications of additive manufacturing in dentistry: a literature-based revie. Journal of Oral Biology and Craniofacial Research. 2019. 9, pp. 179–185. https://doi.org/10.1016/j.jobcr.2019.04.004
- Iftekar S.F., Aabid A., Amir A., Baig M. Advancements and limitations in 3D printing materials and technologies: a critical review. Polymers. 2023. 15 (11). 2519. EDN: BFZPAW. https://doi.org/10.3390/polym15112519
- Pegna G. Exploratory research of solid freeform construction. Automation in Construction. 1997. Vol. 5. Iss. 5, pp. 427–437. EDN: AKMYUN. htps://doi.orgt /10.1016/50926-5805(96)00166-5
- Khorramshahi M., Mokhtari A. Automatic construction by contour crafting technology. Italian Journal of Science & Engineering. 2017. Vol. 1. No. 1, pp. 28–33. https://doi.orgt/10.28991/esj-2017-01113
- Chadha U., Abrol A., Vora N., Tiwari A., Kirubaa S., Kumaran S. Performance evaluation of 3D printing technologies: a review, recent advances, current challenges, and future directions. Progress in Additive Manufacturing. 2022. Vol. 7, pp. 853–886. EDN: MSARBZ. https://doi.org/10.1007/s40964-021-00257-4
- Es-sebytyi H., Igouzal M., Ferretti E. Improving stability of an ecological 3D-printed house – a case study in Italy. Journal of Achievements in Materials and Manufacturing Engineering. 2022. 111/1, pp. 18–25. https://doi.org/10.5604/01.3001.0015.7041
- Hoenerloh A., Nicholas P. A 3D printable Biopolymer Composite incorporating Kombucha SCOBY: Towards a locally adaptive architecture using living biomaterials. Research Directions: Biotechnology Design. 2024. 10 p. https://doi.org/10.33774/coe-2024-t3ldq
- Moshood T.D., Nawanir G., Mahmud F., Mohamad F., Ahmad M.H., AbdulGhan A. Sustainability of biodegradable plastics: new problem or solution to solve the global plastic pollution? Current Research in Green and Sustainable Chemistry. 2022. 5. EDN: LEVBCJ. https://doi.org/10.1016/j.crgsc.2022.100273
- Labuda I., Pugliese F., Dzwierzynska J. An innovative concept for 3D sand-printed sustainable refugee shelters in a sandy desert in a hot and dry climate. Sustainability. 2024. 16 (6). 2294. EDN: FTMKEB. https://doi.org/10.3390/su16062294
- Chen D., Heyer S., Ibbotson S., Salonitis K., Steingrímsson J.G., Thiede S. Direct digital manufacturing: definition, evolution, and sustainability implications. Journal of Cleaner Production. 2015. Vol. 107, pp. 615–625. https://doi.org/10.1016/j.jclepro.2015.05.009
Supplementary files
