Page 50 - MSAM-1-3
P. 50

Materials Science in Additive Manufacturing                      Optimization of chemical admixtures for 3DCP


            Funding                                            5.   Zhu B, Pan J, Nematollahi B, et al., 2019, Development of 3D
                                                                  printable engineered cementitious composites with ultra-high
            The authors would like to acknowledge The Hong Kong   tensile ductility for digital construction. Mater Des, 181: 1–12.
            Polytechnic University (P0038598), BASF for the materials
            supply, National Research Foundation, Prime Minister’s      https://doi.org/10.1016/j.matdes.2019.108088
            Office, Singapore under its Medium-Sized Centre funding   6.   Buswell R, da Silva WR, Bos P,  et al, (2020), A process
            scheme, Singapore Centre for 3D Printing and Sembcorp   classification framework for defining and describing digital
            Design & Construction Pte Ltd for their funding and   fabrication with concrete. Cem Concr Res, 134: 106068.
            support in this research project.                     https://doi.org/10.1016/j.cemconres.2020.106068
            Conflict of interest                               7.   Weng  Y, Li  M,  Liu  Z,  et al.,  2019, Printability  and fire
                                                                  performance of a developed 3D printable fibre reinforced
            The authors report that they have no affiliations with or   cementitious composites under elevated temperatures.
            involvement in any organization or entity with any financial   Virtual Phys Prototyp, 14: 284–292.
            interest in the subject matter or materials discussed in this      https://doi.org/10.1080/17452759.2018.1555046
            manuscript.
                                                               8.   Weng Y, Lu B, Li M,  et al., 2018, Empirical models
            Author contributions                                  to predict rheological properties of fiber reinforced
                                                                  cementitious  composites  for  3D  printing.  Constr Build
            Conceptualization: Mingyang Li, Yiwei Weng            Mater, 189: 676–685.
            Data curation: Mingyang Li, Yiwei Weng
            Formal analysis: Mingyang Li, Yiwei Weng              https://doi.org/10.1016/j.conbuildmat.2018.09.039
            Funding acquisition: Yiwei Weng, Teck Neng Wong    9.   Liu Z, Li M, Weng Y,  et al., 2019, Tan, mixture design
            Investigation: Mingyang Li, Yiwei Weng, Zhixin Liu, Dong   approach to optimize the rheological properties of the
               Zhang                                              material used in 3D cementitious material printing. Constr
            Methodology: Mingyang Li, Yiwei Weng                  Build Mater, 198: 245–255.
            Validation: Mingyang Li, Yiwei Weng, Zhixin Liu, Dong      https://doi.org/10.1016/j.conbuildmat.2018.11.252
               Zhang                                           10.  Ivanova I, Ivaniuk E, Bisetti S,  et al., 2021, Comparison
            Writing – original draft: Mingyang Li, Yiwei Weng     between methods for indirect assessment of buildability
            Writing – review & editing: Mingyang Li, Yiwei Weng, Teck   in fresh 3D printed mortar and concrete. Cem Concr Res,
               Neng Wong                                          156: 106764.
            References                                            https://doi.org/10.1016/j.cemconres.2022.106764
            1.   Lu  B, Tan MJ,  Qian  S, 2016,  A review of  3D printable   11.  Weng Y, Li M, Tan MJ,  et al., 2018, Design 3D printing
               construction  materials  and  applications.  In:  Proceedings   cementitious materials via Fuller Thompson theory and
               2   International  Conference  on  Progress  in  Additive   Marson-Percy model. Constr Build Mater, 163: 600–610.
                nd
               Manufacturing. (Pro-AM 2016), pp330–335.
                                                                  https://doi.org/10.1016/j.conbuildmat.2017.12.112
               https://doi.org/10.1063/1.1465107
                                                               12.  Roussel  N, 2018,  Rheological  requirements for  printable
            2.   Kondepudi K, Subramaniam KV, Nematollahi B,  et al.,   concrete. Cem Concr Res, 112: 76–85.
               2022, Study of particle packing and paste rheology in alkali      https://doi.org/10.1016/j.cemconres.2018.04.005
               activated mixtures to meet the rheology demands of 3D
               Concrete Printing. Cem Concr Compo, 131: 104581.   13.  Marchon D, Kawashima S, Bessaies-Bey H,  et al., 2018,
                                                                  Hydration and rheology control of concrete by admixtures
               https://doi.org/10.1016/j.cemconcomp.2022.104581
                                                                  for digital fabrication. Cem Concr Res, 112: 96–110.
            3.   Xu J, Buswell RA, Kinnell P,  et al., 2020, Inspecting
               manufacturing precision of 3D printed concrete parts based      https://doi.org/10.1016/j.cemconres.2018.05.014
               on geometric dimensioning and tolerancing. Autom Constr,   14.  Buswell R, Silva WR, Jones SZ, et al., 2018, Dirrenberger, 3D
               117: 103233.                                       printing using concrete extrusion: A roadmap for research.
                                                                  Cem Concr Res, 112: 37–49.
               https://doi.org/10.1016/j.autcon.2020.103233
                                                                  https://doi.org/10.1016/j.cemconres.2018.05.006
            4.   Weng Y, Li M, Ruan S, et al., 2020, Comparative economic,
               environmental and productivity assessment of a concrete   15.  Zhang Y, Zhang Y, She W,  et al., 2019, Rheological and
               bathroom unit fabricated through 3D printing and a precast   harden  properties  of the high-thixotropy 3D  printing
               approach. J Clean Prod, 261: 121245.               concrete. Constr Build Mater, 201: 278–285.
               https://doi.org/10.1016/j.jclepro.2020.121245      https://doi.org/10.1016/j.conbuildmat.2018.12.061


            Volume 1 Issue 3 (2022)                         11                     https://doi.org/10.18063/msam.v1i3.16
   45   46   47   48   49   50   51   52   53   54   55