Robotically 3D printed architectural membranes from ambient dried cellulose nanofibril-alginate hydrogel
Artikel i vetenskaplig tidskrift, 2023
damental knowledge enabling its applications in architectural design is still missing. Hence, this study examines the macro-scale features of lightweight membranes from cellulose nanofibril-alginate hydrogel, relevant for the design of various interior architectural products, such as wall claddings, ceiling tiles, room partitions, tapestries, and window screens. Through iterative prototyping experiments involving robotic 3D printing of lightweight membranes, their upscaling potential is demonstrated. Correlations between toolpath designs and shrinkages are also characterized, alongside an in-depth analysis of coloration changes upon ambient drying. Further, the tunability potential of various architectural features, enabled by bespoke 3D printing toolpath design, is discussed and exemplified. The aim is to expose the wide palette of design possibilities for cellulose nanofibril-alginate membranes, encompassing variations in curvature, porosity, translucency, texture, patterning, pliability, and feature sizes. The results comprise an important knowledge foundation for the design and manufacturing of custom lightweight architectural products from cellulose nanofibril-alginate hydrogel. These products could be applied in a variety of new bio-based, sustainable interior building systems, replacing environmentally harmful, fossil-based solutions.
Nanocellulose
Architectural design
Alginate
3D printing
Hydrogel
3D printing3D printing
Films
Författare
Malgorzata Zboinska
Chalmers, Arkitektur och samhällsbyggnadsteknik, Arkitekturens teori och metod
Sanna Sämfors
Chalmers, Kemi och kemiteknik, Tillämpad kemi
Paul Gatenholm
Chalmers, Kemi och kemiteknik, Tillämpad kemi
Materials and Design
0264-1275 (ISSN) 1873-4197 (eISSN)
Vol. 236 112472NANO-ARCH: Nanocellulose in architecture – esthetic applications through robotic 3D printing
Adlerbertska forskningsstiftelsen, 2021-09-30 -- 2022-10-31.
Materialvetenskap, 2021-09-29 -- 2022-10-31.
Ämneskategorier
Arkitekturteknik
Design
Pappers-, massa- och fiberteknik
Biomaterial
Arkitektur
Nanoteknik
Robotteknik och automation
Drivkrafter
Hållbar utveckling
Innovation och entreprenörskap
Fundament
Grundläggande vetenskaper
Styrkeområden
Materialvetenskap
DOI
10.1016/j.matdes.2023.112472