Hollow-Core 3D Printing for Facades
Leschok, Matthias. 2024. “Hollow-Core 3D Printing for Facades.” Doctoral thesis (Diss. ETH No. 30062), ETH Zurich. https://doi.org/10.3929/ethz-b-000690901.
digital building technologies
Leschok, Matthias. 2024. “Hollow-Core 3D Printing for Facades.” Doctoral thesis (Diss. ETH No. 30062), ETH Zurich. https://doi.org/10.3929/ethz-b-000690901.
Jipa, Andrei, Federico Giacomarra, Rena Giesecke, Georgia Chousou, Matteo Pacher, Benjamin Dillenburger, Matthias Leschok, and Mathias Bernhard. 2019. “3D-Printed Formwork for Bespoke Concrete Stairs: From Computational Design to Digital Fabrication.” In Proceedings of the 3rd Annual ACM Symposium on Computational Fabrication, 1–12. New York: ACM. https://doi.org/10.1145/3328939.3329003.
Seshadri, Bharath, Ina Cheibas, Matthias Leschok, Valeria Piccioni, Illias Hischier, and Arno Schlüter. 2021. “Parametric Design of an Additively Manufactured Building Facade for Bespoke Response to Solar Radiation.” Journal of Physics: Conference Series 2042 (1): 012180. https://doi.org/10.1088/1742-6596/2042/1/012180.
Piccioni, Valeria, Matthias Leschok, Gearoid Lydon, Ina Cheibas, Illias Hischier, Benjamin Dillenburger, and Arno Schlüter. 2023. “Printing Thermal Performance: An Experimental Exploration of 3DP Polymers for Facade Applications.” IOP Conference Series: Earth and Environmental Science 1196 (1): 012063. https://doi.org/10.1088/1755-1315/1196/1/012063.
Piccioni, Valeria, Matthias Leschok, Lars O. Grobe, Stephen Wasilewski, Bharath Seshadri, Illias Hischier, and Arno Schlüter. 2023. “Tuning the Solar Performance of Building Facades through Polymer 3D Printing: Toward Bespoke Thermo-Optical Properties.” Advanced Materials Technologies 8 (6): 2201200. https://doi.org/10.1002/admt.202201200.
Cheibas, Ina, Valeria Piccioni, Ena Lloret-Fritschi, Matthias Leschok, Arno Schlüter, Benjamin Dillenburger, Fabio Gramazio, and Matthias Kohler. 2023. “Light Distribution in 3D-Printed Thermoplastics.” 3D Printing and Additive Manufacturing 10 (6): 1164–77. https://doi.org/10.1089/3dp.2023.0050.
Leschok, Matthias, Valeria Piccioni, Gearoid Lydon, Bharath Seshadri, Arno Schlueter, Fabio Gramazio, Matthias Kohler, and Benjamin Dillenburger. 2024. “Thermal and Manufacturing Properties of Hollow-Core 3D-Printed Elements for Lightweight Facades.” Developments in the Built Environment 19: 100485. https://doi.org/10.1016/j.dibe.2024.100485.
Leschok, Matthias, Thomas Wuest, Valeria Piccioni, Fabio Gramazio, Matthias Kohler, Arno Schlueter, and Benjamin Dillenburger. 2025. “Material Characterization and Structural Behaviour of HC3DP Elements for Lightweight Facades.” Developments in the Built Environment 23: 100703. https://doi.org/10.1016/j.dibe.2025.100703
Antorveza Paez K, Ling AS, Mahamaliyev N, Bauer G, Dillenburger B. Digital Fabrication of Biologically Cemented Spatial Structures. 3D Printing and Additive Manufacturing 2024; doi: 10.1089/3dp.2023.0339.
Mitropoulou, I., Vaxman, A., Diamanti, O., & Dillenburger, B. (2024). Fabrication-aware strip-decomposable quadrilateral meshes. Computer-Aided Design, Elsevier, 168, 103666. https://doi.org/10.1016/j.cad.2023.103666
Bedarf, P., Szabo, A., Zanini, M., Dillenburger, B. (2023) Robotic 3D Printing of Geopolymer Foam for Lightweight and Insulating Building Elements. In: 3D Printing and Additive Manufacturing. https://doi.org/10.1089/3dp.2023.0183
Leschok, Matthias, Lex Reiter, and Benjamin Dillenburger. 2023. “Large-Scale Hollow-Core 3D Printing (HC3DP): A Polymer 3D Printing Technology for Large-Scale Ultralightweight Components.” Additive Manufacturing 78 (September): 103874. https://doi.org/10.1016/j.addma.2023.103874.
Leschok, Matthias, Ina Cheibas, Valeria Piccioni, Bharath Seshadri, Arno Schlüter, Fabio Gramazio, Matthias Kohler, and Benjamin Dillenburger. 2023. “3D Printing Facades: Design, Fabrication, and Assessment Methods.” Automation in Construction 152 (August): 104918. https://doi.org/10.1016/j.autcon.2023.104918.
Bedarf, P., Szabo, A., Scoccimarro, E., Dillenburger, B. (2023) Foamwork: Challenges and strategies in using mineral foam 3D printing for a lightweight composite concrete slab. In: International Journal of Architectural Computation. https://doi.org/10.1177/14780771231174526
Bedarf, P., Calvo-Barentin, C., Schulte, D.M. et al. (2023) Mineral composites: stay-in-place formwork for concrete using foam 3D printing. In: Architecture, Structures, and Construction. https://doi.org/10.1007/s44150-023-00084-x
Giesecke, Rena, Benjamin Dillenburger. 2022. “Three-dimensionally (3D) Printed Sand Molds for Custom Glass Parts ” In: Glass Structures and Engineering Journal, Special Issue: Challenging Glass. https://link.springer.com/article/10.1007/s40940-022-00176-y
Giesecke, Rena, Remy Clemente, Ioanna Mitropoulou, Eleni Skevaki, Christian Thiago Peterhans, Benjamin Dillenburger. 2022. “Beyond Transparency: Architectural Application of Robotically Fabricated Polychromatic Float Glass” In: Robotics Construction Journal. https://doi.org/10.1007/s41693-022-00071-6.
Bedarf, P., Dutto, A., Zanini, M., Dillenburger, B. (2021). “Foam 3D printing for construction: A review of applications, materials, and processes”. Automation in Construction, Vol. 130, p. 103861, https://doi.org/10.1016/j.autcon.2021.103861
B. Dillenburger, “Maschinelle Übersetzungen,” TEC21, no. 23, pp. 24–28, Jun. 2016.
Bernhard, Mathias. 2016. “Gugelmann Galaxy: An Unexpected Journey through a Collection of Schweizer Kleinmeister.” Edited by Harald Klinke and Liska Surkemper. International Journal for Digital Art HistoryVisualizin (2): 95–113. https://doi.org/10.11588/dah.2016.2.23250. journals.ub.uni-heidelberg.de/index.php/dah/article/view/23250