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Innovative use of mycelium in construction

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25 gru 2024

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Adamatzky, A., Wösten, H., Ayres, P. (Eds.). (2023). Fungal Architectures, https://www.mdpi.com/books/reprint/7223, (accessed: 24.06.2024).Search in Google Scholar

Arthur, G. (2014). Making houses out of mushrooms - BBC News. BBC News, http://www.bbc.com/news/magazine-28712940, (accessed: 24.06.2024).Search in Google Scholar

Baker, M. (2016). The Future of Construction: Mushroom Buildings. Interesting Engineering, http://interestingengineering.com/future-construction-mushroom-buildings, (accessed: 24.06.2024).Search in Google Scholar

BioMASON. (2017). bioMASON Grows Bricks, http://biomason.com, (accessed: 24.06.2024).Search in Google Scholar

Bonenberg, A., Sydor, M., Cofta, G., Doczekalska, B., Grygorowicz-Kosakowska, K. (2023). Mycelium-based composite materials: Study of acceptance. Materials, 16(6), 2164.Search in Google Scholar

Boyer, M., Boyer, M. (2017). Philip Ross Molds Fast-Growing Fungi Into Mushroom Building Bricks That Are Stronger than Concrete. Inhabitat.com. http://inhabitat.com/phillip-ross-molds-fast-growing-fungi-into-mushroom-building-bricks-that-are-stronger-than-concrete, (accessed: 24.06.2024).Search in Google Scholar

Cooke, L., Cooke, L. (2017). IKEA eyes mushroom packaging to replace nasty polystyrene. Inhabitat.com. http://inhabitat.com/ikea-eyes-mushroom-packaging-to-replace-nasty-polystyrene/ (accessed: 24.06.2024).Search in Google Scholar

Frearson, A. (2017), Tree-shaped structure shows how mushroom roots could be used to create buildings, https://www.dezeen.com/2017/09/04/mycotree-dirk-hebel-philippe-block-mushroom-mycelium-building-structure-seoul-biennale/, (accessed: 24.06.2024).Search in Google Scholar

Evans, C.L. (2014) The House Spores Built, https://www.vice.com/en/article/the-house-that-spores-built/, (accessed: 24.06.2024).Search in Google Scholar

Frearson A. (2017), Fungus used to build arching pavilion in Kerala, https://www.dezeen.com/2017/08/26/shell-mycelium-fungus-pavilion-beetles-3-3-yassin-arredia-design-kerala-india/, (accessed: 24.06.2024).Search in Google Scholar

Ghazvinian, A., Gürsoy, B. (2022a), Basics of Building with Mycelium- Based Bio-Composites: A Review of Built Projects and Related Material Research. Journal of Green Building 17, no. 1. 37-69.Search in Google Scholar

Ghazvinian, A., Gürsoy, B. (2022b), Mycelium-Based Composite Graded Materials: Assessing the Effects of Time and Substrate Mixture on Mechanical Properties, Biomimetics Journal 7, no. 2.Search in Google Scholar

Ghazvinian, A., Khalilbeigi, A., Mottaghi, E., Gürsoy, B. (2022). The Design and Fabrication of MycoCreate 2.0: A Spatial Structure Built with Load-Bearing Mycelium-Based Composite Components. The Journal of Internation Association for Shell and Spatial Structures 63, no. 2.Search in Google Scholar

Hahn, J. (2023), Glastonbury’s mushroom mycelium pavilion explores sustainable stage design, https://www.dezeen.com/2023/06/23/glastonburys-mycelium-hayes-pavilion-simon-carroll/, (accessed: 24.06.2024).Search in Google Scholar

Heisel, F., Schlesier, K., Lee, J., Rippmann, M., Saeidi, N., Javadian, A., Nugroho, A. R., Hebel, D., Block, P. (2017), Design of a load-bearing mycelium structure through informed structural engineering: The MycoTree at the 2017 Seoul Biennale of Architecture and Urbanism. Conference Paper. https://www.researchgate.net/publication/320443920, (accessed: 24.06.2024).Search in Google Scholar

Hitti, N. (2019), Carlo Ratti grows Gaudí-inspired structures with a kilometre of mushroom mycelium, https://www.dezeen.com/2019/04/11/carlo-ratti-circular-garden-mycelium/, (accessed: 24.06.2024).Search in Google Scholar

Jordahn, S. (2022), Chart Art Fair pavilion aims to investigate the potential of mycelium, https://www.dezeen.com/2022/09/01/chart-art-fair-2022-mycelium-pavilion/, (accessed: 24.06.2024).Search in Google Scholar

Kohphaisansombat, C., et al. (2023). Fabrication of mycelium (oyster mushroom)-based composites derived from spent coffee grounds with pineapple fibre reinforcement. Mycology, 1-18.Search in Google Scholar

Maharachchikumbura, et al. (2016). Families of sordariomycetes. Fungal diversity, 79, 1-317.Search in Google Scholar

Lasoń-Rydel, M., Sieczyńska, K., Gendaszewska, D., Ławińska, K., Olejnik, T. P. (2024). Use of enzymatic processes in the tanning of leather materials. Autex Research Journal, 24(1), 20230012.Search in Google Scholar

Lewandowska, A., Bonenberg, A., Sydor, M. (2024). Mycelium-Based Composites: Surveying Their Acceptance by Professional Architects. Biomimetics, 9(6), 333. https://doi.org/10.3390/biomimetics9060333, (accessed: 24.06.2024).Search in Google Scholar

Loron, C.C. et al. (2019), Early fungi from the Proterozoic era in Arctic Canada, Nature.Search in Google Scholar

Palmer, A., et al. (2016). Legionella clemsonensis sp. nov.: a green fluorescing Legionella strain from a patient with pneumonia. Microbiology and immunology, 60(10), 694-701.Search in Google Scholar

Pownall, A. (2019), Pavilion grown from mycelium acts as popup performance space at Dutch Design Week, https://www.dezeen.com/2019/10/29/growing-pavilion-mycelium-dutch-design-week/, (accessed: 24.06.2024).Search in Google Scholar

Raftery, T. D., et al. (2014). Discrete nanoparticles induce loss of Legionella pneumophila biofilms from surfaces. Nanotoxicology, 8(5), 477-484.Search in Google Scholar

Ross, P. (2016). Your rotten future will be great. The Routledge Companion to Biology in Art and Architecture. Routledge, 252-260.Search in Google Scholar

Scardifield, K., McLean, N., Kuzhiumparambil, U., Ralph, P. J., Neveux, N., Isaac, G., & Schork, T. (2024). Biomasonry products from macroalgae: A design driven approach to developing biomaterials for carbon storage. Journal of Applied Phycology, 36, 935–950. https://doi.org/10.1007/s10811-023-03051-7, (accessed: 24.09.2024).Search in Google Scholar

Sheldrake, M. (2020). Entangled Life: How Fungi Make Our Worlds, Change Our Minds & Shape Our Futures. Random House.Search in Google Scholar

Simmons J. (1997), 100 najwybitniejszych uczonych wszech czasów, 296.Search in Google Scholar

Stearn W.T. (1959) The background of Linnaeus’s contributions to the nomenclature and methods of systematic biology. Systematic Zoology, 8 (1), s. 4–22.Search in Google Scholar

Sydor, M., Cofta, G., Doczekalska, B., Bonenberg, A. (2022). Fungi in mycelium-based composites: usage and recommendations. Materials, 15(18), 6283.Search in Google Scholar

Sydor, M., Bonenberg, A., Doczekalska, B., Cofta, G. (2021). Mycelium-based composites in art, architecture, and interior design: a review. Polymers, 14(1), 145.Search in Google Scholar

Walter, N., Gürsoy, B. (2022). A Study on the Sound Absorption Properties of Mycelium-Based Composites Cultivated on Waste Paper-Based Substrates. Biomimetics Journal 7, no. 3.Search in Google Scholar

Wicaksono, S. H., Irawanto, B., Hujatnika, A. (2023). Fungi as an Art Medium: The Study of the Art Medium of Philip Ross and Syaiful Aulia Garibaldi. Journal of Urban Society’s Arts, 10(1), 43-52.Search in Google Scholar

Wierzbicka A.M. (2024). Building with mushroom bricks – ecological innovation in Architecture, Challenges –Materials for the Future, 162-163.Search in Google Scholar

Wijayawardene, N. N., et al. (2017). Notes for genera: Ascomycota. Fungal diversity, 86, 1-594.Search in Google Scholar

https://stawiamyna.pl, (accessed: 29.09.2024).Search in Google Scholar

https://www.facebook.com/people/Stawiamy_/100092718188131/, (accessed: 29.09.2024).Search in Google Scholar

https://mogu.bio/fungar-project-bbi-h2020-press-release/, (accessed: 24.06.2024).Search in Google Scholar

Pawilon letni Hy-Fi projektu The Living. Materiały biodegradowalne we współczesnej architekturze https://architektura.muratorplus.pl/realizacje/pawilon-letni-hy-fi-projektu-living-materialy-biodegradowalne-we-wspolczesnej-architekturze-aa-GtcA-wFaA-RELq.html (accessed: 24.06.2024).Search in Google Scholar

https://u.nl/staff/HABWosten1, (accessed: 24.06.2024).Search in Google Scholar