참고문헌
- J. Benson and H. Ceeles, "A novel techniques for the decontamination of concrete and steel," I. Mech. E. Conf. Trans., 1, 363 (1995).
- P. Thouvenot, J. L. Alcaraz, L. Silvestre, N. Vola, and C. Auzuech, "Decontamination chimique des betons: essais expérimentaux ," CEA, St Paul-lez-Rurance (2002)
- M. Tan, J. D. Whitaker, and D. T. Schwartz, "Simulation study on the use of strippable coatings for radio cesium decontamination of concrete, Journal of Hazardous Materials," 162, 1111 (2008).
- V. Goldfarb and R. Gannon, "Concrete decontamination by electro-hydraulic scabbling," In Proceedings of the Environmental Technology Trough Industry Partnership Conference," DOE/METC-96/1021, Department of Energy (1995).
- J. G. Freiwald and D. A. Freiwald, "Laser-based coatings removal", In Proceedings of the Environmental Technology Trough Industry Partnership Conference," DOE/METC-96/1021, Department of Energy (1995)
- M. Savina, Z. Xu, Y. Wang, M. Pellin, and K. Leong, "Pulsed laser ablation of cement and concrete," Journal of Laser Applications, 11, 284, (1999). https://doi.org/10.2351/1.521905
- W. Lippmann, J. Knorr, R. Wolf, and A. Reinecke, "Decontamination of silicate surfaces by laser ablation with simultaneous conditioning of waste products," Institute of Power Engineering, Chair of Nuclear Engineering, University of Technology Dresden, (2006).
- A. M. Resnick, "Remote operated vehicle with carbon dioxide blasting, In Proceedings of the Environmental Technology Trough Industry Partnership Conference," DOE/METC-96/1021, Department of Energy (1995).
- A. Watson and E. C. Okress "Curing of concrete, Microwave power engineering," 2nd ed., Academic, New York (1968a)
- K. Hertz, "Microwave heating for fire material testing of concrete-a theoretical study," Institute of Building Design, Rep. No.144, Technical Univ. of Denmark, Denmark (1981).
- K. Hertz, "Microwave heating for fire material testing of concrete-an experimental study," Institute of Building Design, Rep. No.164, Technical Univ. of Denmark, Denmark (1983).
- C. K. Wei, H. T. Davis, E. A. Havis, and J. Gordon, "Heat and mass transfer in water-laden sandstone: microwave heating," AIChE H., 31, 842 (1985). https://doi.org/10.1002/aic.690310521
- M. Moukwa, M. Brodwin, S. Christo, J. Chang, and S. P. Shah, "The influence of the hydration process upon microwave properities of cements," Cem. Concr. Res., 21, 863 (1991). https://doi.org/10.1016/0008-8846(91)90181-G
- T. L. White, D. Jr. Foster, C. T. Wilson, and C. R. Schaich, "Phase II microwave concrete decontamination results," RNL Rep. No. De-AC05-84OR21400 (1995).
- H. L. Lomasney, "Electrokinetic decontamination of concrete," In Processing of the Environmental Technology through Industry Partnership Conference, DOE/METC-96/1021, Department of Energy (1995).
- D. W. DePaoli, M. Harris, I. L. Morgan, and M. R. Ally, "Investigation of electrokinetic decontamination of concrete," Sep. Sci. Technol. 42, 387 (1997).
- M. Castellote, C. Andrade, and C. Alonso, "Application of Electrical Fields in the Study of Concrete with Respect to the Transport of Several Ionic Species Present in Radioactive Wastes: Characterization and Decontamination," SmiRT 16 Transaction, Washington DC, (2001).
- F. Frizon, S. Lorente, J. P. Ollivier, and P. Thouvenot, "Modeling the decontamination by electromigration of a porous medium," J. Porous Media, 7, 213 (2004). https://doi.org/10.1615/JPorMedia.v7.i3.50
- K. Popov, I. Glazkova, V. Yachmenev, and A. Nikolayev, "Electrokinetic remediation of concrete: Effect of chelating agents", Environmental Pollution, 153, 22 (2008). https://doi.org/10.1016/j.envpol.2008.01.014
- F. S. Rostasy and K. Hinrichsmeyer, "Structural alterations in concrete due to thermal and mechanical stresses," First International Conference on Materials Science to Construction Materials Engineering, France 1987.
- F. S. Rostasy, T, Weissm, and G. Wiedemann, "Changes of pore structure of cement mortars due to temperature," Cem. Concr. Res., 10, 157 (1980). https://doi.org/10.1016/0008-8846(80)90072-1
- C. Galle and J. Sercombe, "Permeability and pore structure evolution of silico-calcareous and hematite high-strength concretes submitted to high temperatures," Mater. Struct. 34, 619 (2001).
- W. M. Lin, T. D. Lin, and L. J. Power-Couche, "Microstructures of fire damaged concrete," ACI Mater. J., 93, 199, (1999).
- J. B. Jang, "A study on the interfacial separation of aggregates for recycling of concrete waste," Dept. of Architectural Engineering Graduate School, Dong-A University, Pusan, Korea. 2002.
- I. P. Binkhorst and H.A.W. Cornelissen, "Technology for reuse of contaminated concrete constituents," Environmental Technology Department, KEMA, Nethelands, IAEATECDOC-1022, International Atomic Energy Agency (1998).
- D. Bonen and S. L. Sarkar, "Environmental attack on concrete," Proc 16th Eng Found Conf, Am. Soc. Eng., New York, 11-23, 1994.
- K. Nishita, T. Nishi, and M. Matsuda, "Improved Sorption Ability for Radionuclides by Cementitious Materials," WM'98 Proc, Tucson, AZ, USA, 1880-1886, 1998.
- M. Vespa, R. Daehn, D. Grolimund, E. Wieland, and A.M. Scheidegger, "Co-speciation in hardened cement paste: a macro- and micro-spectroscopic investigation," Environ. Sci. Tech., 41, 1902 (2007). https://doi.org/10.1021/es0624568
- O. E. Omotoso, G. Ivey, and R. Mikula, "Containment mechanism of trivalent chromium in tricalcium silicate," J. Hazard. Mater., 60, 1 (1998). https://doi.org/10.1016/S0304-3894(97)00037-X
- L. E. Copeland, E. Bodor, T. N. Chang, and C. H. Weise, "Reactions of tobermorite gel with aluminates, ferrites, and sulfates," J. PCA Res., 9, 61 (1967).
- J. Tits, E. Wieland, M. H. Bradbury, and J. P. Dobler, "The uptake of Eu(III) and Th(IV) by cement-type minerals in the alkaline disturbed cone of a nuclear waste repository," Proc 6th Int. Cont. Appl. Mineralogy, Göttingen, Germany, 691-694, 2000.
- I. Pointea, B. Piriou, M. Fedoroff, M. G. Narthes, N. Marmier, and F. J. Fromage, "Sorption mechanisms of Eu3+ on CSH phase of hydrated cements," J. Coll. Inter. Sci. 236, 252 (2001). https://doi.org/10.1006/jcis.2000.7411
- L. J. Csetenyil, "Cesium-71 immobilization in hydrated calcium-silicate-aliminate system," Cem. Concr. Res. 28, 1753 (1998). https://doi.org/10.1016/S0008-8846(98)00163-X
- K. Noshita, T. Nishi, T. Yoshida, H. Fujihara, N. Saito, and S. Tanaka, "Categorization of cement hydrates by radionuclide sorption mechanism," Mat. Res. Soc. Symp. Proc., 115- 121, 2001.
- T. Iwsasa, S. Nagasaki, S. Tanake, and T. Yaita, "Sorption of alkali metal ions onto C-S-H(calcium silicate hydrated)," Cem. Sci. Concr. Tech., 55, 21 (2001).
- L. P. Moroni and F. P. Glasser, "Reaction between cement components and U(VI) oxide," Waste Manage, 15, 243 (1995). https://doi.org/10.1016/0956-053X(95)00022-R
- E. R. Sylwester, P. C. G. Allen, P. Zaho, and B. E. Viani, "Interactions of uranium and neptunium with cementitious materials studied by XAFS," Mat. Res. Soc. Symp. Proc., 307-312, 2000.
- I. Pointeau, C. Landesman, E. Giffaut, and P. Reiller, "Reproducibility of the uptake of U(IV) onto degraded cement pastes and calcium silicate hydrate phase," Radiochem, 92, 645 (2004). https://doi.org/10.1524/ract.92.9.645.55008
- M. Harfouche, E. Wiel, R. Daehn, T. Fujita, J. Tits, D. Kunz, and M. Tsukamoto, "EXAFS study of U(IV) uptake by calcium silicate hydrates," J. Coll. Inter. Sci., 303, 195 (2006). https://doi.org/10.1016/j.jcis.2006.07.019
- B. Y. Min, W. K. Choi, W. Z. Oh, and C. H. Jung, "Partitioning ratio of depleted uranium during a melt decontamination by arc melting," J. Nuc. Eng. Tech., 40, 497 (2008). https://doi.org/10.5516/NET.2008.40.6.497