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Changes in Hydration and Watertightness of Cement Containing Two-Component Fluosilicate Salt Based Chemical Admixture

2성분 규불화염계 혼화제가 첨가된 시멘트의 수화반응 및 수밀성 변화

  • Published : 2004.10.01

Abstract

Fluosilicic acid ($H_2SiF_6$) is recovered as aqueous solution which absorbs $SiF_4$ produced from the manufacturing of industrial-graded $H_3PO_4$ or HF. Generally, fluosilicate salts prepared by the reaction between $H_2SiF_6$ and metal salts. Addition of fluosilicate salts to cement endows odd properties through unique chemical reaction with the fresh and hardened cement. In this study, two-component fluosilicate salt based chemical admixtures (MZ) of $4\%,\;6\%$, and $8\%$ concentration were prepared by the reaction of $H_2SiF_6$ ($25\pm2\%$) and metal salts. The effect of concentration of MZ at a constant adding ratio on the hydration and watertightness of cement were investigated respectively. In a cement containing MZ, metal fluorides such as $CaF_2$ and soluble silica by hydrolysis were newly formed during hydration. The total porosity of the hardened cement was lower in the presence of U because of packing role of metal fluoride and pozzolanic reaction of soluble $SiO_2$. Consequently, the watertightness of the hardened paste containing MZ was more improved than non-added (plain) due to an odd hydration between cement and MZ.

불화규산($H_2SiF_6$)은 인산 혹은 불산 제조공정에서 발생되는 사불화규소($SiF_4$)의 흡수공정에 의해 수용액 상태로 회수된다. 불화규산과 금속염의 반응에 의해 생성된 규불화염을 시멘트에 첨가하면 시멘트와의 특이 수화반응에 의해 독특한 물성을 발휘된다. 본 연구에서는 상기 공정에 의해 회수된 불화규산(농도 : $25\pm2\%$)과 금속염을 반응시켜 3가지 농도($4\%,\;6\%,\;8\%$)의 2성분 규불화염계 혼화제(MZ)를 제조하고, 시멘트 중량의 동일 첨가량($C\times1.0\%$)에서 시멘트 수화반응 및 수밀성에 대해 MZ의 농도변화에 따른 효과를 관찰하였다. MZ가 첨가된 시멘트 수화과정중 $CaF_2$와 같은 난용성 금속불화물과 가수분해에 의한 가용성 실리카가 새로이 생성되었다. MZ가 첨가된 경화시멘트의 총 공극율은 난용성 금속불화물의 충전작용과 가용성 실리카의 포졸란 작용에 의해 감소되었다. 궁극적으로 시멘트와 MZ간의 특이 수화반응에 의해 MZ가 첨가된 시멘트 경화체의 수밀성이 개선되는 것으로 나타났다.

Keywords

References

  1. M. Howe-Grant, 'Fluorine Chemistry-A Comprehensive Treatment-,' pp. 83-95, A Wiley Interscience Publication, New York (1994)
  2. W. Gerhartz, 'Fluorine Compound, Inorganic,' Ullmann's EncycIopedia of Industrial Chemistry, 1 [A11] 307-48 (1997)
  3. D. S. Kim, B. S. Khil, H. S. Lim, J. H. Nam, and J. S. Rho, 'Fluidity and Hydration Properties of Cement Paste added Zinc F1uosi1icate($ZnSiF_6$, aq.),' J. Kor. Ceram. Soc., 39 [2]178-83 (2002) https://doi.org/10.4191/KCERS.2002.39.2.178
  4. J. S. Rho, 'Cement and Fluorine Chemistry,' Cement, 51-60 (1997)
  5. D. S. Kim, S. M. Kim, B. K. Lee, and J. S. Rho, 'Studies on the Synthesis of Fluosilicates and Reactivity of Raw Materials-Fluosilicic Acid,' The 9th Symposium on Chem. Eng. Kyushu-Daejon/Chungnam, 229-30 (1996)
  6. J. H. Lee, K. H. Lee, and H. K. Kim, 'A Study on the Retarding Effects of Cement Mortar Setting,' J. Kor. Ceram. Soc., 33 [3] 307-12 (1996)
  7. J. R. Lee, J. O. Kim, J. H. Nam, Y. S. Park, D. S. Kim, and S. G. Han, 'Effect of Effective Concentration of Fluosilicate Salt Based Chemical Admixture on the Watertightness and Hydration Temperature of Cement Mortar,' Proc. ofArchite. Institute of Korea, 2004 Spring Conference, 24 [1] 291-94 (2004)
  8. J. R. Lee, J. O. Kim, S. G. Han, Y. S. Kang, B. S. Khil, andJ. H. Nam, 'Experimental Study on the Watertightness and Hardening Properties of Concrete using Fluosilicate Salt Based Chemical Admixture,' Proc. of the Korea ConcreteInstitute, 16 [1] 36-9 (2004)

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