Biomimicry for 3D concrete printing: A review and perspective
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The Marines 3D-Printed a Rocket Launcher Shelter in 36 h, (n.d.). https://www.msn.com/en-us/news/technology/the-marines-3d-printed-a-rocket-launcher-shelter-in-36-hours/ar-BB17ycKZ (Accessed 31 August, 2020).
Europe’s Largest 3D-Printer Prints an Entire Two-Story House, (n.d.). https://www.designboom.com/architecture/kamp-c-3d-prints-two-story-house-08-17-2020/ (Accessed 31, 2020).
The World’s Largest 3D Printed Concrete Bridge is Completed in Shanghai, (n.d.). 〈https://www.designboom.com/architecture/shanghai-3d-printed-concrete-bridge-jcda-01–21-19/〉 (Accessed August 31, 2020).
Innovative Future Tree was Built by Robots and 3D-Printing, (n.d.). https://inhabitat.com/innovative-future-tree-was-built-by-robots-and-3d-printing/ (Accessed 31 August, 2020).
Le, 2012, Hardened properties of high-performance printing concrete, Cem. Concr. Res., 42, 558, 10.1016/j.cemconres.2011.12.003
Gralow, 2020, Biomimetic design and laser additive manufacturing – a perfect symbiosis?, J. Laser Appl., 32, 10.2351/1.5131642
Benyus, 2002
L. da Vinci, Codex on the Flight of Birds, (1505).
Pawlyn, 2019
Snell-Rood, 2016, Interdisciplinarity: bring biologists into biomimetics, Nature, 529, 277, 10.1038/529277a
King, 2015, Termite mounds harness diurnal temperature oscillations for ventilation, Proc. Natl. Acad. Sci. U.S.A., 112, 11589, 10.1073/pnas.1423242112
Adriaens, 2019, Evomimetics: the biomimetic design thinking 2.0, 8
N. Chayaamor-Heil, F. Guéna, N. Hannachi-Belkadi, Les Cahiers de la recherche architecturale urbaine et paysagère, 1 | 2018, http://Journals.Openedition.Org/Craup. 2018. doi:10.4000/craup.309.
How Copying Nature Helps us to Design Well-Working Products – Toni Labahn, (n.d.). 〈https://tonilabahn.com/how-copying-nature-helps-us-to-design-well-working-products〉 (Accessed 28 August, 2020).
Harvard Study: Termite Mounds Circulate Air, Sneezing Once a Day – Harvard Magazine, (n.d.). 〈https://harvardmagazine.com/2015/11/termites-cathedral-mounds〉 (Accessed 28 August, 2020).
Yang, 2018, Recent progress in biomimetic additive manufacturing technology: from materials to functional structures, Adv. Mater., 30, 10.1002/adma.201706539
Naleway, 2015, Structural design elements in biological materials: application to bioinspiration, Adv. Mater., 27, 5455, 10.1002/adma.201502403
Ahmed, 2020, vol. 28, 741
James, 2009
A. Martínez-Rocamora, R. García-Alvarado, E. Casanova-Medina, Luis, F. González-Böhme, F. Auat-Cheein, Parametric Programming of 3D Printed Curved Walls for Cost-Efficient Building Design, 2020. doi:10.1061/(ASCE)CO.1943–7862.0001811.
Orme, 2018, Topology optimization for additive manufacturing as an enabler for light weight flight hardware, Designs, 2, 10.3390/designs2040051
A.Jipa, M.Bernhard, M.Meibodi, B. Dillenburger, 3D-Printed Stay-in-Place Formwork for Topologically Optimized Concrete Slabs, 2016. doi:10.3929/ethz-b-000237082.
Vertico Constructs Optimized Footbridge Using 3D Concrete Printing – With Ugent and Technion - 3D Printing Industry, (n.d.). https://3dprintingindustry.com/news/vertico-constructs-optimized-footbridge-using-3d-concrete-printing-161729/ (Accessed 31 August, 2020).
M.P. Bendsoe, Structural Optimization Optimal Shape Design as a Material Distribution Problem, 1989.
Bendsoe, 2003
G.I.N. Rozvany, M. Zhou, T. Birker, Structur Optimitation Generalized Shape Optimization without Homogenization*, 1992.
A. Gheorghe, A Glimpse into the Future: 3D Printing for Structural Components, Archit. Aktuell, Art Build. (2017) no. 444. https://dbt.arch.ethz.ch/media-feature/a-glimpse-into-the-future-3d-printing-for-structural-components/ (Accessed 24 August, 2020).
Vantyghem, 2020, 3D printing of a post-tensioned concrete girder designed by topology optimization, Autom. Constr., 112, 10.1016/j.autcon.2020.103084
K. Ghabraie, Y.M. Xie, X. Huang, Using BESO Method to Optimize the Shape and Reinforcement of the Underground Openings TopOpt/Opt for Static/Dynamic Systems/Structures Considering Uncertainties View Project Crashworthiness of Thin-Wall Structure View Project, 2009. doi:10.1201/9780203859926.ch163.
Y. Xin, D. Bao, Y.M. Xie, A New Form-Finding Method for Shell Structures Based on BESO Algorithm, 2019.
Hoang, 2020, Design of lattice structures with direct multiscale topology optimization, Compos. Struct., 252, 10.1016/j.compstruct.2020.112718
Bhate, 2019, Classification and selection of cellular materials in mechanical design: engineering and biomimetic approaches, Designs, 3, 10.3390/designs3010019
Tran, 2020, Triply periodic minimal surfaces sandwich structures subjected to shock impact, J. Sandw. Struct. Mater., 10.1177/1099636220905551
Gibson, 2014
Wang, 2020, Mechanical behaviors of 3D printed lightweight concrete structure with hollow section, Arch. Civ. Mech. Eng., 20, 10.1007/s43452-020-00017-1
Morel, 2015, Automated casting systems for spatial concrete lattices, Model. Behav., 213, 10.1007/978-3-319-24208-8_18
Nguyen-Van, 2020, Bioinspired cellular cementitious structures for prefabricated construction: hybrid design & performance evaluations, Autom. Constr., 119, 10.1016/j.autcon.2020.103324
Salazar, 2020, Polymer lattice-reinforcement for enhancing ductility of concrete, Mater. Des., 196, 10.1016/j.matdes.2020.109184
Panda, 2017, Anisotropic mechanical performance of 3D printed fiber reinforced sustainable construction material, Mater. Lett., 209, 146, 10.1016/j.matlet.2017.07.123
du Plessis, 2020, Effects of defects on mechanical properties in metal additive manufacturing: a review focusing on X-ray tomography insights, Mater. Des., 187, 10.1016/j.matdes.2019.108385
du Plessis, 2019, A review of X-ray computed tomography of concrete and asphalt construction materials, Constr. Build. Mater., 199, 637, 10.1016/j.conbuildmat.2018.12.049
Ducoulombier, 2020, Additive manufacturing of anisotropic concrete: a flow-based pultrusion of continuous fibers in a cementitious matrix, Procedia Manuf., 1070, 10.1016/j.promfg.2020.04.117
Babafemi, 2018, Pull-out creep mechanism of synthetic macro fibres under a sustained load, Constr. Build. Mater., 174, 466, 10.1016/j.conbuildmat.2018.04.148
Van der Putten, 2019, 323
Gaudillière, 2019
Duballet, 2019, Space truss masonry walls with robotic mortar extrusion, Structures, 18, 41, 10.1016/j.istruc.2018.11.003
Lindemann, 2019, Development of a shotcrete 3D-printing (SC3DP) technology for additive manufacturing of reinforced freeform concrete structures, 287, 10.1007/978-3-319-99519-9_27
First 3D Printed Bus Stop is Constructed in Jinshan Garden, China | 3D ADEPT MEDIA, (n.d.). https://3dadept.com/first-3d-printed-bus-stop-is-constructed-in-jinshan-garden-china/ (Accessed 24 August, 2020).
Broeckhoven, 2017, Functional trade-off between strength and thermal capacity of dermal armor: insights from girdled lizards, J. Mech. Behav. Biomed. Mater., 74, 189, 10.1016/j.jmbbm.2017.06.007
MacDonald, 2016, Multiprocess 3D printing for increasing component functionality, Science, 353, 10.1126/science.aaf2093
He, 2020, Energy-saving potential of 3D printed concrete building with integrated living wall, Energy Build., 222, 10.1016/j.enbuild.2020.110110
Chang, 2018, Advanced material strategies for next-generation additive manufacturing, Materials, 11, 10.3390/ma11010166
Nguyen, 2019, Multi-material topology optimization for additive manufacturing using polytree-based adaptive polygonal finite elements, Autom. Constr., 99, 79, 10.1016/j.autcon.2018.12.005
Kosson, 2020, Early-age performance of 3D printed carbon nanofiber and carbon microfiber cement composites, Transp. Res. Rec. J. Transp. Res. Board., 2674, 10, 10.1177/0361198120902704
Buswell, 2020, A process classification framework for defining and describing digital fabrication with concrete, Cem. Concr. Res., 134, 10.1016/j.cemconres.2020.106068
J. Kruger, S. Zeranka, G. van Z.-C, B. Materials, undefined 2020, A rheology-based quasi-static shape retention model for digitally fabricated concrete, ElsevierSign In. (n.d.). https://www.sciencedirect.com/science/article/pii/S0950061820312460?casa_token=3aZda6xjgkMAAAAA:G8C3a0krATaPQiEo3PWJ4v-OacmExCAWNlu1w5jEJVeGMXwU7hrBjH-TWNZ7EvR0S9BGhXu99Dmp (Accessed 20 August, 2020).
Lu, 2019, A systematical review of 3D printable cementitious materials, Constr. Build. Mater., 207, 477, 10.1016/j.conbuildmat.2019.02.144
Panda, 2018, Experimental study on mix proportion and fresh properties of fly ash based geopolymer for 3D concrete printing, Ceram. Int., 44, 10258, 10.1016/j.ceramint.2018.03.031
Zhang, 2018, The study of the structure rebuilding and yield stress of 3D printing geopolymer pastes, Constr. Build. Mater., 184, 575, 10.1016/j.conbuildmat.2018.06.233
Panda, 2019, Rheological behavior of high volume fly ash mixtures containing micro silica for digital construction application, Mater. Lett., 237, 348, 10.1016/j.matlet.2018.11.131
Panda, 2019, Extrusion and rheology characterization of geopolymer nanocomposites used in 3D printing, Compos. Part B Eng., 176, 10.1016/j.compositesb.2019.107290
Panda, 2020, Investigation of the properties of alkali-activated slag mixes involving the use of nanoclay and nucleation seeds for 3D printing, Compos. Part B Eng., 186, 10.1016/j.compositesb.2020.107826
Nematollahi, 2020, 93
Lu, 2020, Study of MgO-activated slag as a cementless material for sustainable spray-based 3D printing, J. Clean. Prod., 258, 10.1016/j.jclepro.2020.120671
Bos, 2019, Ductility of 3D printed concrete reinforced with short straight steel fibers, Virtual Phys. Prototyp., 14, 160, 10.1080/17452759.2018.1548069
B. Nematollahi, M. Xia, J. Sanjayan, Current progress of 3D concrete printing technologies. In: Proceedings of the 34th International Symposium on Automation and Robotics in Construction and Mining, ISARC 2017, 2017: pp. 260–267. https://doi.org/10.22260/isarc2017/0035.
Xia, 2019, Printability, accuracy and strength of geopolymer made using powder-based 3D printing for construction applications, Autom. Constr., 101, 179, 10.1016/j.autcon.2019.01.013
Sanjayan, 2019, 3D concrete printing for construction applications, 1