期刊文献+

Application of Geopolymer Cement for Groutless Decorative Building Materials

Application of Geopolymer Cement for Groutless Decorative Building Materials
下载PDF
导出
摘要 The present study describes the experiments on the application of geopolymer paste for groutless in situ casting or flooring. The paste was synthesized from fly ash and sodium silicate solution and cured at room temperature, 60 and 80℃ for 24 hours. To simulate flooring application, the geopolymer paste was casted on Portland cement cubes which have been fully hydrated for 28 days. Silica fume was added to reduce cracks but at the same time compressive strength decreased. Averaged compressive strength decreased from 53 MPa to 37 MPa for paste cured at 60℃. Curing at higher temperatures produced stronger geopolymer, with compressive strength of 12 MPa, 53 MPa and 67 MPa for geopolymer cured at room temperature, 60℃ and 80℃ respectively, however, higher curing temperature resulted in more cracking when the geopolymer paste was applied on the Portland cement substrate. Averaged hardness values were 65 and 43 Brinnel scale (BHN), and wear rate, measured using Ogoshi machine, were 0.66 and 1.80 mm3/min for samples cured at 60 and 80℃ respectively. Unless surface hardening was applied, the material is not suitable for flooring but do so for decorative masonry.
出处 《Journal of Civil Engineering and Architecture》 2012年第12期1679-1684,共6页 土木工程与建筑(英文版)
关键词 GEOPOLYMER groutless flooring near-net shaping hardness wear. 地质聚合物 应用程序 聚合物水泥 装饰建材 波特兰水泥 抗压强度 表面硬化处理 固化温度
  • 相关文献

参考文献13

  • 1S. Astutiningsih and Y. Liu, Geopolymerisation of Australian slag with effective dissolution by the Alkali, in: Proc. of the World Congress Geopolymer 2005, Geopolymer Institute, Saint Quentin, France, June 29-July 1, 2005, pp. 69-73.
  • 2A. Palomo, M. Y. Blanco-Varela, M. L. Ranizo, F. Puertas, T. Vazques and M. W. Grutzeck, Chemical stability of cementitious materials based on metakaolin, Cement and Concrete Research 29 (1999) 997-1004.
  • 3J. Davidovits, Technical Talk: Geopolymer Applications, Curtin University, Western Australia, Oct. 25, 2002.
  • 4H. Rahier, B. Van Mele, J. Wastiels and X. Wu, Low-temperature synthesized aluminosilicate glasses: Part I Low-temperature reaction stoichiometry and structure of a model compound, Journal of Materials Science 22 (1996) 71-79.
  • 5H. Rahier, B. Van Mele and J. Wastiels, Low-temperature synthesized aluminosilicate glasses: Part II Rheological transformation during low-temperature cure and high-temperature properties of a model compound, Journal of Materials Science 31 (1996) 80-85.
  • 6H. Rahier, W. Simons and B. Van Mele, Low-temperature synthesized aluminosilicate glasses: Part Ill Influence of the composition of the silicate solution on production, structure and properties, Journal of Materials Science 32 (1997) 2237-2247.
  • 7W. K. W. Lee and J. S. J. Van deventer, The effect of inorganic salt contamination on the strength and durability of geopolymer, Colloids and Surfaces A: Physicochemical and Eng. Aspects 211 (2002) 115-126.
  • 8J. G. S Van Jaarsveld and J. S. J. Van Deventer, The effect of metal contaminants on the formation and properties of waste-based geopolymer, Cement and Concrete Research 29 (1999) 1189-1200.
  • 9P. Chindraprasirt, T. Chareerat and V. Sirivivatnanon, Workability and strength of coarse high calcium fly ash geopolymer, Cement and Concrete Composites 29 (2007) 224-229.
  • 10C. K. Yip, G. C. Lukey, J. L. Provis and J. S. J. van deventer, Effect of calcium silicate sources on geopolymerisation, Cement and Concrete Research 38 (2008) 554-564.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部