Identyfikatory
Warianty tytułu
Wykorzystanie kompozytów na bazie grzybni w budowie obiektów małej architektury
Języki publikacji
Abstrakty
Mycelium is a biomaterial that can be an innovative alternative to existing solutions in architecture. The study analyzed 10 examples of small architectural structures built on the basis of the mycelium based composites. The aim of the research was to collect data showing the scope of possibilities of mycelium with other building materials, ways of protecting mycelium against external factors, and aesthetic and finishing aspects.
Grzybnia (mycelium) jest biomateriałem, który może być innowacyjną alternatywą dla istniejących rozwiązań w architekturze. W badaniu analizom zostało poddanych 10 przykładów małych struktur architektonicznych w których konstrukcji wykorzystano kompozyty na bazie grzybni. Celem badań było zebranie danych pokazujących zakres możliwości wykorzystania mycelim w tworzeniu tego typu obiektów. Skupiono się na połączeniach grzybni z innymi materiałami budowlanymi, sposobach ochrony grzybni przed czynnikami zewnętrznymi oraz aspektach estetycznych i wykończeniowych.
Czasopismo
Rocznik
Tom
Strony
57--74
Opis fizyczny
Bibliogr. 24 poz., fot., tab.
Twórcy
autor
- University of Technology, Poznań, Poland Institute of Interior Architecture and Industrial Design, Faculty of Architecture
Bibliografia
- [1] Abhijith, R.; Ashok, A.; Rejeesh, C.R. Sustainable Packaging Applications from Mycelium to Substitute Polystyrene: A Review. Mater. Today Proc. 2018, 5, 2139–2145.
- [2] Adamatzky, A.; Ayres, P.; Beasley, A.E.; Chiolerio, A.; Dehshibi, M.M.; Gandia, A.; Albergati, E.; Mayne, R.; Nikolaidou, A.; Roberts, N.; et al. Fungal Electronics. Biosystems 2022, 212, 104588.
- [3] Armstrong, R. The Post‐ Epistemological Details of Oceanic Ontologies. Architectural Design 2014, 84, 112–117, doi:10.1002/ad.1789.
- [4] Benjamin, D. Living Matter. In Active matter; Tibbits, S., Ed.; MIT Press: Cambridge, MA, USA, 2017; p. 32 ISBN 978-0-262-03680-1.
- [5] Bitting, S.; Derme, T.; Lee, J.; Van Mele, T.; Dillenburger, B.; Block, P. Challenges and Opportunities in Scaling up Architectural Applications of Mycelium-Based Materials with Digital Fabrication. Biomimetics 2022, 7, 44.
- [6] Bonenberg A, Sydor M, Cofta G, Doczekalska B, Grygorowicz-Kosakowska K. Mycelium-Based Composite Materials: Study of Acceptance. Materials (Basel). 2023 Mar 8;16(6):2164. doi: 10.3390/ma16062164. PMID: 36984044; PMCID: PMC10051586.
- [7] Cerimi, K.; Akkaya, K.C.; Pohl, C.; Schmidt, B.; Neubauer, P. Fungi as Source for New Bio-Based Materials: A Patent Review. Fungal Biol. Biotechnol. 2019, 6, 17.
- [8] Cultivated Building Materials: Industrialized Natural Resources for Architecture and Construction; Hebel, D.E., Heisel, F., Eds.; Birkhäuser: Basel, Switzerland, 2017; ISBN 978-3-0356-1106-9.
- [9] Dessi-Olive, J. Monolithic Mycelium: Growing Vault Structures. In Proceedings of the Proceedings of the 8th International Conference on Non-Conventional Materials and Technologies - IC NOCMAT; Nairobi, Kenya, 2019; pp. 2–15.
- [10] Fairus, M.J.B.M.; Bahrin, E.K.; Arbaain, E.N.N. Norhayati Ramli Mycelium-Based Composite: A Way Forward for Renewable Material. J. Sustain. Sci. Manag. 2022, 17, 271–280.
- [11] Jennifer Hahn Glastonbury’s Mushroom Mycelium Pavilion Explores Sustainable Stage Design. Dezeen 2023.
- [12] Jiang, L.; Walczyk, D.; Mooney, L.; Putney, S. Manufacturing of Mycelium-Based Biocomposites. In Proceedings of the International SAMPE Technical Conference, Covina, CA, USA, 6–9 May 2013; Beckwith, S.W., Ed.; Society for the Advancement of Material and Process Engineering: Long Beach, CA, USA, 2013; pp. 1944–1955.
- [13] Jordahn, S. Chart Art Fair Pavilion Aims to Investigate the Potential of Mycelium. Dezeen 2022.
- [14] Kenneth Kanayo Alaneme, Justus Uchenna Anaele, Tolulope Moyosore Oke, Sodiq Abiodun Kareem, Michael Adediran, Oluwadamilola Abigael Ajibuwa, Yvonne Onyinye Anabaranze, Mycelium based composites: A review of their bio-fabrication procedures, material properties and potential for green building and construction applications, Alexandria Engineering Journal, Volume 83, 2023, Pages 234-250, ISSN 1110-0168.
- [15] Lelivelt, R.J.J. The Mechanical Possibilities of Mycelium Materials. Master’s Thesis, Eindhoven University of Technology, Eindhoven, The Netherlands, 2015.
- [16] Materialmen Atlas / Material Atlas. The Growing Pavilion; van den Berg, J., Konings, B., Eds.; Company New Heroes: Amsterdam, Netherlands, 2019.
- [17] Meyer, V.; Schmidt, B.; Freidank-Pohl, C.; Schmidts, C.; Pfeiffer, S. MY-CO SPACE: An Artistic-Scientific Vision on How to Build with Fungi. IOP Conf. Ser.: Earth Environ. Sci. 2022, 1078, 012070, doi:10.1088/1755-1315/1078/1/012070.
- [18] Ratti, C.; Belleri, D. Towards a cyber ecology. Agathòn 2020, 8, 8–19, doi:10.19229/2464-9309/812020.
- [19] Sydor, M.; Bonenberg, A.; Doczekalska, B.; Cofta, G. Mycelium-Based Composites in Art, Architecture, and Interior Design: A Review. Polymers 2022, 14, 145.
- [20] Sydor, M.; Cofta, G.; Doczekalska, B.; Bonenberg, A. Fungi in Mycelium-Based Composites: Usage and Recommendations. Materials 2022, 15, 6283.
- [21] Syed, S. Shell Mycelium Pavillion: The Latest Architecture and News. ArchDaily 2017.
- [22] Van den Brandhof, J.G.; Wösten, H.A.B. Risk Assessment of Fungal Materials. Fungal Biol. Biotechnol. 2022, 9, 3.
- [23] World Bank. 2019. World Development Report 2019: The Changing Nature of Work. Washington, DC: World Bank. doi:10.1596/978-1-4648-1328-3. License: Creative Commons Attribution CC BY 3.0 IGO.
- [24] Yang, Libin & Park, Daekwon & Qin, Zhao. (2021). Material Function of Mycelium-Based Bio-Composite: A Review. Frontiers in Materials. 8. 737377. 10.3389/fmats.2021.737377.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d75d9af9-7249-41e4-8557-cebbbf4e298e