Open Access
Numéro
EPJ Web of Conferences
Volume 56, 2013
International Workshop NUCPERF 2012: Long-Term Performance of Cementitious Barriers and Reinforced Concrete in Nuclear Power Plant and Radioactive Waste Storage and Disposal (RILEM Event TC 226-CNM and EFC Event 351)
Numéro d'article 02003
Nombre de pages 10
Section Session 2: Physical, Chemical and Mechanical Behavior: Coupled Chemical and Mechanical Effect
DOI https://doi.org/10.1051/epjconf/20135602003
Publié en ligne 11 juillet 2013
  1. Atkins, M. and Glasser, F. P. Application of portland cement-based materials to radioactive waste immobilization. Waste Management, 12, 2–3, (1992), 105-131. [CrossRef] [Google Scholar]
  2. Improved cement solidification of low and intermediate level radioactive waste. AIEA Technical Report Series No. 350, (1993). [Google Scholar]
  3. Ipatti, A. Solidification of ion-exchange resins with alkali-activated blast-furnace slag. Cement and Concrete Research, 22, 2-3, (1992), 281-286. [CrossRef] [Google Scholar]
  4. Panciatici, G., Belfiore, A. and Poggianti, M. Incorporation of spent ion exchange resins in cement with and without additives. Applied Radiation and Isotopes, 45, 3, (1994), 393-394. [CrossRef] [Google Scholar]
  5. Li, J. and Wang, J. Advances in cement solidification technology for waste radioactive ion exchange resins: A review. Journal of Hazardous Materials, 135, 1-3, (2006), 443-448. [CrossRef] [PubMed] [Google Scholar]
  6. Veazey, G. W. and Ames, R. L. Cement waste-form development for ion-exchange resins at the Rocky Flats Plant. LA--13226-MS; Other: ON: DE97005285; TRN: TRN: 97:002710, (1997). [Google Scholar]
  7. Morin, V., Garrault, S., Begarin, F. and Dubois-Brugger, I. The influence of an ion-exchange resin on the kinetics of hydration of tricalcium silicate. Cement and Concrete Research, 40, 10, (2010), 1459-1464. [CrossRef] [Google Scholar]
  8. Sun, Q., Li, J. and Wang, J. Solidification of borate radioactive resins using sulfoaluminate cement blending with zeolite. Nuclear Engineering and Design, 241, 12, (2011), 5308-5315. [CrossRef] [Google Scholar]
  9. Lebescop, P., Bouniol, P. and Jorda, M. Immobilization in cement of ion-exchange resins. Materials Research Soc, Pittsburgh, (1990). [Google Scholar]
  10. Tremillon, B. Les séparations par les résines échangeuses d'ion, (1965). [Google Scholar]
  11. Matsuda, M., Nishi, T., Chino, K. and Kikuchi, M. Solidification of Spent Ion-Exchange Resin Using New Cementitious Material .1. Swelling Pressure of Ion-Exchange Resin. Journal of Nuclear Science and Technology, 29, 9, (1992), 883-889. [CrossRef] [Google Scholar]
  12. Matsuda, M., Kikuchi, M. and Takashi, N. Conditioning of Spent Ion Exchange Resin Using High Performance Cement, (1993). [Google Scholar]
  13. Kikuchi, M., Matsuda, M., Nishi, T., Tsuchiya, H. and Izumida, T. Advanced solidification system using high performance cement. Proceedings of the Fifth International Conference on Radioactive Waste Management and Environmental Remediation. ICEM '95, 2, (1995), 1095-1098. [Google Scholar]
  14. Epimakhov, V. N. and Oleinik, M. S. Inclusion of radioactive ion-exchange resins in inorganic binders. Atomic Energy, 99, 3, (2005), 607-611. [CrossRef] [Google Scholar]
  15. Van Der Lee, J. Thermodynamic and mathematical conceps of CHESS. Technical Report LHM/RD/98/39, (1998). [Google Scholar]
  16. Robinson, R. A. The Activity Coefficient of Calcium Nitrate in Aqueous Solution at 25° from Isopiestic Vapor Pressure Measurements. Journal of the American Chemical Society, 62, 11 1940/11/01, (1940), 3130-3131. [CrossRef] [Google Scholar]
  17. MarcosArroyo, M. D. M., Khoshkbarchi, M. K. and Vera, J. H. Activity coefficients of sodium, potassium, and nitrate ions in aqueous solutions of NaNO3, KNO3, and NaNO3+KNO3 at 25 degrees C. Journal of Solution Chemistry, 25, 10, (1996), 983–1000. [CrossRef] [Google Scholar]
  18. Riemann, W. and Walton, H. F. Ion Exchange in Analytical Chemistry, Oxford, UK, (1970). [Google Scholar]
  19. Nkinamubanzi, P. C. and Aitcin, P. The use of slag in cement and concrete in a sustainable development perspective. In Proceedings of the ATILH n°40205, (2000). [Google Scholar]
  20. Kolani, B., Buffo-Lacarrière, L., Sellier, A., Escadeillas, G., Boutillon, L. and Linger, L. Hydration of slag-blended cements. Cement and Concrete Composites, 34, 9, (2012), 1009-1018. [CrossRef] [Google Scholar]
  21. Wang, X.-Y., Lee, H.-S., Park, K.-B., Kim, J.-J. and Golden, J. S. A multi-phase kinetic model to simulate hydration of slag–cement blends. Cement and Concrete Composites, 32, 6, (2010), 468-477. [CrossRef] [Google Scholar]