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A. Kazemian, Xiao Yuan, Ryan Meier and Behrokh Khoshnevis, Performance-Based Testing of Portland Cement Concrete for Construction-Scale 3D Printing. 3D Concrete Printing Technology 2019, Pages 13-35. Search in Google Scholar

A. Kazemian, X. Yuan, R. Meier, E. Cochran, B. Khoshnevis, Construction-scale 3D printing: shape stability of fresh printing concrete, 12th International Manufacturing Science and Engineering Conference (MSEC 2017), Los Angeles, CA, 2017. Search in Google Scholar

Biranchi Panda and Ming Jen Tan, Experimental study on mix proportion and fresh properties of fly ash based geopolymer for 3D concrete printing, Ceramics International, https://doi.org/10.1016/j.ceramint.2018.03.031. Search in Google Scholar

C. Gosselin, R. Duballet, P. Roux, N. Gaudillière, J. Dirrenberger, P. Morel, Largescale 3D printing of ultra-high-performance concrete–a new processing route for architects and builders, Mater. Des. 100 (2016) 102–109. Search in Google Scholar

G. Ma, L. Wang, A critical review of preparation design and workability measurement of concrete material for largescale 3D printing, Front. Struct. Civil Eng. (2017) 1_19. Search in Google Scholar

I. Agustí-Juan, F. Müller, N. Hack, T. Wangler, G. Habert, Potential benefits of digital fabrication for complex structures: environmental assessment of a robotically fabricated concrete wall, J. Clean. Prod. 154 (2017) 330–340, https://doi.org/10.1016/j.jclepro.2017.04.002. Search in Google Scholar

J. Buchli, M. Giftthaler, N. Kumar, M. Lussi, T. Sandy, K. D¨orfler, N. Hack, Digital in situ fabrication - challenges and opportunities for robotic in situ fabrication in architecture, construction, and beyond, Cement Concr. Res. 112 (2018) 66–75, https://doi.org/10.1016/j.cemconres.2018.05.013. Search in Google Scholar

M. A. Khan, Mix suitable for concrete 3D printing: A review, Materials Today: Proceedings, https://doi.org/10.1016/j.matpr.2020.03.825. Search in Google Scholar

Ma, Guowei, Li Wang, A critical review of preparation design and workability measurement of concrete material for largescale 3D printing, Front. Struct. Civil Eng. 12 (3) (2018) 382–400. Search in Google Scholar

P. Wu, J. Wang, X. Wang, A critical review of the use of 3-D printing in the construction industry, Autom. Constr. 68 (2016) 21–31; Search in Google Scholar

R.A. Buswell, W.L. de Silva, S.Z. Jones, J. Dirrenberger, 3D printing using concrete extrusion: A roadmap for research, Cem. Concr. Res. 112 (2018) 37–49. Search in Google Scholar

S.C. Paul, Y.W.D. Tay, B. Panda, M.J. Tan, Fresh and hardened properties of 3D printable cementitious materials for building and construction, Arch. Civ. Mech. Eng. 18 (1) (2018) 311–319. Search in Google Scholar

SR EN 12390-2 Încercări pe beton întărit Partea 2: Pregătirea și păstrarea epruvetelor pentru încercări de rezistență. Search in Google Scholar

V.N. Nerella, S. Hempel, V. Mechtcherine, Effects of layer-interface properties on mechanical performance of concrete elements produced by extrusion-based 3D-printing, Construct. Build. Mater. 205 (2019) 586–601, https://doi.org/10.1016/j.con.build.mat.2019.01.23. Search in Google Scholar

Zhixin Liu, Mingyang Li, Yiwei Weng, Teck Neng Wong, Ming Jen Tan, Mixture Design Approach to optimize the rheological properties of the material used in 3D cementitious material printing, Construction and Building Materials 198 (2019) 245–255. Search in Google Scholar

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