Прогнозування морозостійкості бетону за різних температур заморожування
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4. Powers T. C., Helmuth R. A. Theory of volume changes in hardened portland cement paste during freezing. Proc. Highw. Res. Board. V32. 1953. P. 285–297.
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1. Ramachandran, V. S., Feldman, R. F, and Beaudoin, J. J. (1981). Concrete Science: Treatise on Current Research. London: Heyden, 427.
2. Neville, A. M., and Brooks, J. J., 2nd ed. (2010). Concrete Technology. Published Harlow, England: Prentice Hall, 442.
3. Powers, T. C. (1945). Basic considerations pertaining to freezing and thawing tests. Proc. Am. Concrete Inst., 41, 245–272.
4. Powers, T. C., and Helmuth, R. A. (1953). Theory of volume changes in hardened portland cement paste during freezing. Proc. Highw. Res. Board, 32, 285–297.
5. Dvorkin, L., Dvorkin, O., and Ribakov, Yu. (2013). Multi – Parametric Concrete Compositions Design. New York: Nova Science Publishers Inc., 223.
6. Gregg, S. J., and Sing, K. S. W. (1982). Adsorption, Surface Area and Porosity. London: Academic Press., 313.
7. Jackson, C. L., and McKenna, G. B. (1990). The melting behaviour of organic materials confined in porous solids. J. Chem. Phys., 93, 9002–9011.
8. Webber, J. B. W. (2010). Studies of nano-structured liquids in confined geometries and at surfaces. Progress in Nuclear Magnetic Resonance Spectroscopy, 56, 78–93.
9. Krasilnikov, K. G., Nikitina, L. V., and Skoblinskaya, N. N. (1980). Physico-chemistry of Own Deformations of Cement Stone. Moscow: Stroyizdat, 256.
10. Feistel, R., and Wagner, W. (2006). A new equation of state for H2O ice. Ih J. of Phys. Chem. Reference Data, 35, 1021–1047.