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An approach to develop printable strain hardening cementitious composites

Authors :
Oğuzhan Çopuroğlu
Yading Xu
Erik Schlangen
D.H. Bos
Freek Bos
Zeeshan Y. Ahmed
Stefan Chaves Figueiredo
Theo A.M. Salet
Claudia Romero Rodriguez
Concrete Structures
3D Concrete Printing
Built Environment
Source :
Materials & Design, Vol 169, Iss, Pp-(2019), Materials & Design, 169:107651. Elsevier, Materials & Design, 169
Publication Year :
2019

Abstract

New additive manufacturing methods for cementitious materials hold a high potential to increase automation in the construction industry. However, these methods require new materials to be developed that meet performance requirements related to specific characteristics of the manufacturing process. The appropriate characterization methods of these materials are still a matter of debate. This study proposes a rheology investigation to systematically develop a printable strain hardening cementitious composite mix design. Two known mixtures were employed and the influence of several parameters, such as the water-to-solid ratio, fibre volume percentage and employment of chemical admixtures, were investigated using a ram extruder and Benbow-Bridgwater equation. Through printing trials, rheology parameters as the initial bulk and shear yield stress were correlated with variables commonly employed to assess printing quality of cementitious materials. The rheology properties measured were used to predict the number of layers a developed mixture could support. Selected mixtures had their mechanical performance assessed through four-point bending, uni-axial tensile and compressive strength tests, to confirm that strain hardening behaviour was obtained. It was concluded that the presented experimental and theoretical framework are promising tools, as the bulk yield stress seems to predict buildability, while shear yield stress may indicate a threshold for pumpability. Keywords: 3D printing, Rheology, Strain hardening, Additive manufacturing

Details

Language :
English
ISSN :
02641275
Volume :
169
Database :
OpenAIRE
Journal :
Materials & Design
Accession number :
edsair.doi.dedup.....1a58901abca1b71dc79b9508f4635a1d
Full Text :
https://doi.org/10.1016/j.matdes.2019.107651