材料科学
胶凝的
硅粉
水泥
磷酸钾
环境友好型
抗压强度
粉煤灰
流变学
背景(考古学)
复合材料
3D打印
多孔性
废物管理
冶金
工程类
生物
古生物学
化学
色谱法
生态学
作者
Yiwei Weng,Shaoqin Ruan,Mingyang Li,H. J. Mo,Cise Unluer,Ming Jen Tan,Shunzhi Qian
标识
DOI:10.1016/j.conbuildmat.2019.05.053
摘要
3D printing of cementitious materials is an innovative and promising approach in the construction sector, attracting much attention over the past few years. Use of waste cementitious materials in the production of 3D printable components increases the sustainability and cost-effectiveness of this process. This work proposes an environmentally friendly 3D printable cementitious material involving the use of magnesium potassium phosphate cement (MKPC) with various ratios of fly ash replacement ranging from 0 to 60 wt% to increase the working time of the binder. Silica fume was used at up to 10 wt% to adjust rheological and mechanical properties. The performance of the developed MKPC binders with different formulations in the context of 3D printing was assessed via a detailed investigation of the workability, extrudability, buildability, compressive strength, porosity and microstructural analysis. Amongst the mixtures studied, the optimum MKPC formulation involving 60 wt% fly ash and 10 wt% silica fume with a borax-to-magnesia ratio of 1:4 was selected for a small-scale printing demonstration in line with its rheological and mechanical properties. Finally, a 20-layer component with a height of 180 mm was printed in 5 min to demonstrate the feasibility of the adopted mixture in 3D printing.
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