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Borate Substituted Ettringites

Published online by Cambridge University Press:  01 January 1992

Laszlo J. Csetenyi
Affiliation:
Department of Chemistry, University of Aberdeen, Meston Walk, Old Aberdeen AB9 2UE, Scotland
F. P. Glasser
Affiliation:
Department of Chemistry, University of Aberdeen, Meston Walk, Old Aberdeen AB9 2UE, Scotland
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Abstract

The setting of cement is adversely affected by soluble borates. To reduce interference, the extent to which borate can be insolubilized has been investigated. One specific mechanism of insolubilization is by inclusion into ettringite. Ettringite, Ca6Al2(SO4)3(OH)12·26H2O, is a normal and stable constituent of Portland cement. It has an open but non-zeolitic framework. Borate can substitute partially or fully for sulfate.

Formation conditions, solubility and stability of borate ettringites, Ca6Al2(BO4)2-4(OH,O)12·26H2O, are characterised using XRD, IR, DTA, and SEM.

The potential durability of borate ettringites in a repository environment have been assessed by exposing it to Na-sulfate and Na-carbonate attack at different concentrations. Ion exchange occurs; back substitution of borate by sulfate is incomplete; high carbonate concentrations can, however, decompose borate ettringite.

On heat treatment up to 85°C the crystalline morphology and the OH arrangement of the structure are altered, but the X-ray powder pattern, and hence its structural framework are largely unaffected.

It is concluded that ettringite has potential to reduce the solubility of borate.

Type
Research Article
Copyright
Copyright © Materials Research Society 1993

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References

REFERENCES

1. Dunn, P. J., Peacor, D. R., Leavens, P. B. and Baum, J. L.: Charlesite, a new mineral of the ettringite group, from Franklin, New Jersey, American Mineralogist, Vol. 68, pp 1033–7 (1983)Google Scholar
2. Peacor, D. R., Dunn, P. J. and Duggan, M.: Sturmanite, a ferric iron, boron analogue of ettringite, Canadian Mineralogist, Vol. 21, pp 705–9 (1983)Google Scholar
3. Kumarathasan, P., McCarthy, G. J., Hassett, D. J., and Pflughoeft-Hassett, D. F.: Oxyanion substituted ettringites: Synthesis and characterization; and their potential role in immobilization of As, B, Cr, Se, and V. Mat. Res. Soc. Symp. Proc. Vol. 178. pp. 83104.(1990)Google Scholar
4. Péllmann, H., Kuzel, H.-J. and Wenda, R.: Compounds with ettringite structure, Neues Jahrbuch Miner. Abh. 160, pp 133–58 (1989)Google Scholar
5. Wenda, R. and Kuzel, H.-J.: B3+ in Calcium Aluminate Hydrates, Proc. 8th Int. Cong. Chem. Cem., Vol III, pp 307–13, Rio de Janeiro, (1986)Google Scholar
6. Damidot, D., Glasser, F. P.: Thermodynamic investigation of the CaO-A120 3-CaSO4 -H20 system at 25 TC and the influence of Na20, Cement and Concrete Research (in press)Google Scholar