Biomimicry for 3D concrete printing: A review and perspective

Additive Manufacturing - Tập 38 - Trang 101823 - 2021
Anton du Plessis1,2, Adewumi John Babafemi3, Suvash Chandra Paul4, Biranchi Panda5, Jonathan Phuong Tran6, Chris Broeckhoven7
1Research Group 3DInnovation, Stellenbosch University, Stellenbosch, 7602, South Africa
2Department of Mechanical Engineering, Nelson Mandela University, Port Elizabeth 6001, South Africa
3Department of Civil Engineering, Stellenbosch University, Stellenbosch, 7602, South Africa
4Department of Civil Engineering, International University of Business Agriculture and Technology, Dhaka 1230, Bangladesh
5Department of Mechanical Engineering, Indian Institute of Technology Guwahati, Assam, 781039, India
6Department of Civil & Infrastructure Engineering, RMIT University, VIC, Australia
7Laboratory of Functional Morphology, Department of Biology, Universiteitsplein 1, 2610 Wilrijk, Belgium

Tài liệu tham khảo

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

Wangler, 2019, Digital concrete: a review, Cem. Concr. Res., 123, 10.1016/j.cemconres.2019.105780

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).

Ask Nature, (n.d.). https://asknature.org/. (Accessed 28 August, 2020).

Pawlyn, 2019

Snell-Rood, 2016, Interdisciplinarity: bring biologists into biomimetics, Nature, 529, 277, 10.1038/529277a

Müller, 2018, Biodiversifying bioinspiration, Bioinspir. Biomim., 13, 10.1088/1748-3190/aac96a

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.

Tang, 2015, The art of arches, Struct. Infrastruct. Eng., 11, 443, 10.1080/15732479.2014.951858

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

Ding, 2017, Direct 4D printing via active composite materials, Sci. Adv., 3, 10.1126/sciadv.1602890

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