Mastering Yield-Stress-Evolution and Formwork-Friction for Smart Dynamic Casting (2020-04)¶
, , , , ,
Journal Article - Materials, Vol. 13, Iss. 9
Abstract
The construction industry is a slow adopter of new technologies and materials. However, interdisciplinary research efforts in digital fabrication methods with concrete aim to make a real impact on the way we build by showing faster production, higher quality and enlarged freedom of design. In this paper, the potential and constraints of a specific digital slip-forming process, smart dynamic casting (SDC), are investigated with a material-focused approach in the complex task of producing thin folded structures. Firstly, the workability and the strength evolution of different material compositions are studied to achieve the constant processing rate for SDC. Secondly, friction between the formwork walls and the concrete, a key aspect in slip-casting, is studied with a simplified experimental setup to identify if any of these mixes would provide an advantage for processing. Finally, a theoretical framework is constructed to link the material properties, the process conditions and the designed geometry. This framework introduces the 'SDC number' as a simplified approach to formulate the process window, the suitable conditions for slip-forming. The experimental results prove the assumption of the model that friction is proportional to yield stress for all base compositions and acceleration methods regardless of the filling history. The results are evaluated in the context of the narrow process window of thin folded structures as well as the wider process window of columns. The necessity of consistent strength evolution is underlined for narrow windows. Further, friction is shown to be the highest initially, thus with both narrow and wide process windows, after a successful start-up the continuation of slipping is less prone to failure. The proposed theoretical model could provide material and geometry-specific slipping strategy for start time and slipping rate during production.
¶
14 References
- Agustí-Juan Isolda, Müller Florian, Hack Norman, Wangler Timothy et al. (2017-04)
Potential Benefits of Digital Fabrication for Complex Structures:
Environmental Assessment of a Robotically Fabricated Concrete Wall - Buswell Richard, Silva Wilson, Jones Scott, Dirrenberger Justin (2018-06)
3D Printing Using Concrete-Extrusion:
A Roadmap for Research - Le Thanh, Austin Simon, Lim Sungwoo, Buswell Richard et al. (2012-01)
Mix-Design and Fresh Properties for High-Performance Printing Concrete - Lloret-Fritschi Ena, Reiter Lex, Wangler Timothy, Gramazio Fabio et al. (2017-03)
Smart Dynamic Casting:
Slipforming with Flexible Formwork - Lloret-Fritschi Ena, Scotto Fabio, Gramazio Fabio, Kohler Matthias et al. (2018-09)
Challenges of Real-Scale Production with Smart Dynamic Casting - Lloret-Fritschi Ena, Shahab Amir, Linus Mettler, Flatt Robert et al. (2014-03)
Complex Concrete Structures:
Merging Existing Casting Techniques with Digital Fabrication - Reiter Lex, Wangler Timothy, Roussel Nicolas, Flatt Robert (2018-06)
The Role of Early-Age Structural Build-Up in Digital Fabrication with Concrete - Roussel Nicolas (2018-05)
Rheological Requirements for Printable Concretes - Scotto Fabio, Lloret-Fritschi Ena, Gramazio Fabio, Kohler Matthias et al. (2018-05)
Adaptive Control-System for Smart Dynamic Casting:
Defining Fabrication-Informed Design-Tools and Process-Parameters in Digital Fabrication-Processes - Szabó Anna, Lloret-Fritschi Ena, Reiter Lex, Gramazio Fabio et al. (2019-09)
Revisiting Folded Forms with Digital Fabrication - Szabó Anna, Reiter Lex, Lloret-Fritschi Ena, Gramazio Fabio et al. (2018-09)
Adapting Smart Dynamic Casting to Thin-Folded Geometries - Szabó Anna, Reiter Lex, Lloret-Fritschi Ena, Gramazio Fabio et al. (2019-09)
Processing of Set-on-Demand Solutions for Digital Fabrication in Architecture - Wangler Timothy, Lloret-Fritschi Ena, Reiter Lex, Hack Norman et al. (2016-10)
Digital Concrete:
Opportunities and Challenges - Wolfs Robert, Bos Freek, Salet Theo (2018-02)
Early-Age Mechanical Behaviour of 3D Printed Concrete:
Numerical Modelling and Experimental Testing
17 Citations
- Perrot Arnaud, Jacquet Yohan, Amziane Sofiane (2025-01)
3D Concrete Printing - Pierre Alexandre, Perrot Arnaud (2025-01)
Alternative Printing-Methods for Cementitious Materials - Lowke Dirk, Anton Ana-Maria, Buswell Richard, Jenny Ercan et al. (2024-09)
Digital Fabrication with Concrete Beyond Horizontal Planar Layers - Prihar Arjun, Gupta Shashank, Esmaeeli Hadi, Moini Mohamadreza (2024-08)
Tough Double-Bouligand Architected Concrete Enabled by Robotic Additive Manufacturing - Gappmeier Peter, Reichenbach Sara, Kromoser Benjamin (2024-03)
Advances in Formwork Automation, Structure and Materials in Concrete Construction - Bono Victor, Ducoulombier Nicolas, Mesnil Romain, Caron Jean-François (2023-12)
Methodology for Formulating Low-Carbon Printable Mortar Through Particles-Packing-Optimization - Bos Derk, Wolfs Robert (2023-12)
A Quality-Control Framework for Digital Fabrication with Concrete - Pott Ursula, Jakob Cordula, Dorn Tobias, Stephan Dietmar (2023-07)
Investigation of a Shotcrete-Accelerator for Targeted Control of Material-Properties for 3D Concrete Printing Injection-Method - Rubin Ariane, Quintanilha Lucas, Repette Wellington (2022-11)
Influence of Structuration-Rate, with Hydration-Accelerating Admixture, on the Physical and Mechanical Properties of Concrete for 3D Printing - Flatt Robert, Wangler Timothy (2022-05)
On Sustainability and Digital Fabrication with Concrete - Reiter Lex, Wangler Timothy, Roussel Nicolas, Flatt Robert (2022-04)
Slow Penetration for Characterizing Concrete for Digital Fabrication - Ruffray Nicolas, Reiter Lex, Flatt Robert (2022-04)
Overcoming Environmental Stress-Cracking of FDM 3D Printed Formwork for Counter-Pressure Casting of Concrete - Wangler Timothy, Pileggi Rafael, Gürel Şeyma, Flatt Robert (2022-03)
A Chemical Process Engineering Look at Digital Concrete Processes:
Critical Step Design, In-Line Mixing, and Scale-Up - Eugenin Claudia, Navarrete Iván, Brevis Wernher, Lopez Mauricio (2022-02)
Air-Bubbles as an Admixture for Printable Concrete:
A Review of the Rheological Effect of Entrained Air - Vasilić Ksenija, Hack Norman, Kloft Harald, Lowke Dirk et al. (2022-01)
Digitale Fertigung im Betonbau - Chen Yu, He Shan, Gan Yidong, Çopuroğlu Oğuzhan et al. (2021-11)
A Review of Printing-Strategies, Sustainable Cementitious Materials and Characterization Methods in the Context of Extrusion-Based 3D Concrete Printing - Bedarf Patrick, Dutto Alessandro, Zanini Michele, Dillenburger Benjamin (2021-08)
Foam 3D Printing for Construction:
A Review of Applications, Materials, and Processes
BibTeX
@article{szab_reit_llor_gram.2020.MYSEaFFfSDC,
author = "Anna Szabó and Lex Reiter and Ena Lloret-Fritschi and Fabio Gramazio and Matthias Daniel Kohler and Robert Johann Flatt",
title = "Mastering Yield-Stress-Evolution and Formwork-Friction for Smart Dynamic Casting",
doi = "10.3390/ma13092084",
year = "2020",
journal = "Materials",
volume = "13",
number = "9",
}
Formatted Citation
A. Szabó, L. Reiter, E. Lloret-Fritschi, F. Gramazio, M. D. Kohler and R. J. Flatt, “Mastering Yield-Stress-Evolution and Formwork-Friction for Smart Dynamic Casting”, Materials, vol. 13, no. 9, 2020, doi: 10.3390/ma13092084.
Szabó, Anna, Lex Reiter, Ena Lloret-Fritschi, Fabio Gramazio, Matthias Daniel Kohler, and Robert Johann Flatt. “Mastering Yield-Stress-Evolution and Formwork-Friction for Smart Dynamic Casting”. Materials 13, no. 9 (2020). https://doi.org/10.3390/ma13092084.