id |
sigradi2020_326 |
authors |
Ugarte-Urzúa, Juan Pablo; Mhatre, Saurabh; Bechthold, Martin; Norman, Sarah |
year |
2020 |
title |
Extruded Tessellations: A novel structural ceramic
system at the intersection of industrial ceramic
extrusion and CNC fabrication |
source |
SIGraDi 2020 [Proceedings of the 24th Conference of the Iberoamerican Society of Digital Graphics - ISSN: 2318-6968] Online Conference 18 - 20 November 2020, pp. 326-333 |
summary |
This research explores the customization potential of ceramic extrusion by means of integrating CNC fabrication tools into current industrial ceramic extrusion lines. In order to support this approach, we designed and built two wall prototypes made of 700 extruded ceramic pieces. The pieces were produced using a single extrusion die and were cut to custom lengths and angles using CNC disk cutters to produce a total of 38 unique pieces. We introduce the motivation behind our work, present a three-stage design workflow for the design of this type of ceramic system, and show our built prototype. |
keywords |
Ceramic extrusio, CNC customization, Design workflow, Prototype, Tessellation |
series |
SIGraDi |
email |
|
full text |
file.pdf (3,209,987 bytes) |
references |
Content-type: text/plain
|
Alothman, S., Im, H. C., Jung, F., & Bechthold, M. (2019)
Spatial Print Trajectory
, J. Willmann, P. Block, M. Hutter, K. Byrne, & T. Schork (Eds.), Robotic Fabrication in Architecture, Art and Design 2018 (pp. 167–180). Springer International Publishing
|
|
|
|
Andreani, S., & Bechthold, M. (2014)
[Re]volving Brick: Geometry and Performance Innovation in Ceramic Building Systems Through Design Robotics
, Gramazio F., Kohler M., & Langenberg S. (Authors), Fabricate 2014: Negotiating Design & Making (pp. 182-191). London: UCL Press
|
|
|
|
Bechthold, Martin, Kane, A., & King, N. (2015)
Ceramic Material Systems: In Architecture and Interior Design
, Ceramic Material Systems. Birkhäuser
|
|
|
|
Bechthold, Martin, King, J., Kane, A., Niemasz, J., & Reinhart, C. (2011)
Integrated Environmental Design and Robotic Fabrication Workflow for Ceramic Shading Systems
, ISARC Proceedings, 70–75
|
|
|
|
Boothroyd, G., & Alting, L. (1992)
Design for Assembly and Disassembly
, CIRP Annals, 41(2), 625–636
|
|
|
|
Dyskin, A. V., Estrin, Y.,Pasternak, E., Khor, H. C., & Kanel-Belov, A. J. (2003)
Fracture Resistant Structures Based on Topological Interlocking with Non-planar Contacts
, Advanced Engineering Materials, 5(3), 116–119
|
|
|
|
Friedman, J., Kim, H.,& Mesa, O. (2014)
Experiments in additive clay depositions
, Robotic Fabrication in Architecture, Art and Design 2014 (pp. 261-272). Springer, Cham
|
|
|
|
Händle, F. (2007)
Extrusion in Ceramics
, Springer-Verlag
|
|
|
|
Khoshnevis, B. (2004)
Automated construction by contour crafting—Related robotics and information technologies
, Automation in Construction, 13(1), 5–19
|
|
|
|
Ramamurthy, K., & Nambiar, E. K. K. (2004)
Accelerated masonry construction review and future prospects
, Progress in Structural Engineering and Materials, 6(1), 1–9
|
|
|
|
Seibold, Z. H. (2018)
Ceramic Morphologies. Precision and control in paste-based additive manufacturing
, ACADIA // 2018: Recalibration. On Imprecisionand Infidelity. [Proceedings of the 38th Annual Conference of the Association for Computer Aided Design in Architecture (ACADIA)]. Pp. 350-357
|
|
|
|
Seibold, Z., Mesa, O., Stavric, M., & Bechthold, M. (2018)
Ceramic Tectonics: Tile Grid Shell
, Proceedings of IASS Annual Symposia (Vol. 2018, No. 8, pp. 1-8). International Association for Shell and Spatial Structures (IASS)
|
|
|
|
last changed |
2021/07/16 11:49 |
|