| 1 |
S. Nagataki, “Mineral Admixtures in Concrete : State of The art and Trends,” ACI SP-144, 473-74 (1994). |
미소장 |
| 2 |
On predicting compressive strengths of mortars with ternary blends of cement, ggbfs and fly ash  |
미소장 |
| 3 |
H. Binici, I. H. Cagatay, T. Shah, and S. Kapur, “Mineralogy of Plain Portland and Blended Cement Pastes,” Cem. Concr. Res., 43 1318-25 (2008). |
미소장 |
| 4 |
W.A. Gutteridge and J.A. Dalziel, “Filler Cement: The Effect of the Secondary Component on the Hydration of Portland Cement: Part 2. Fine Hydraulic Binders,” Cem. Concr. Res., 20 853-61 (1990). |
미소장 |
| 5 |
On predicting compressive strengths of mortars with ternary blends of cement, ggbfs and fly ash  |
미소장 |
| 6 |
D. P. Bentz, E. J. Garboczi, C. J. Heacker, and Ole M. Jensen, “Effect of Cement Particle Size Distribution on Performance Properties of Portland Cement-based Materials,” Cem. Concr. Res., 29 1663-71 (1999). |
미소장 |
| 7 |
A. Nonat, “Interactions Between Chemical Evolution (Hydration) and Physical Evolution (Setting) in the Case of Tricalcium Silicate,” Mater. Structure, 27 187-95 (1994). |
미소장 |
| 8 |
Y. Akkaya, T. Voigt, K.V. Subramaniam, and S.P. Shah, “Nondestructive Measurement of Concrete Strength Gain by an Ultrasonic Wave Reflection Method,” Mater. Structure, 36 507-14 (2003). |
미소장 |
| 9 |
Early development of properties in a cement paste: A numerical and experimental study  |
미소장 |
| 10 |
An extension of the dispersion model for the hydration of Portland cement  |
미소장 |
| 11 |
J.H. Yun, “Portland Cement Paste and Concrete”, pp. 215-34, Sea Jin Publishing CO., Seoul, 1990. |
미소장 |
| 12 |
Estimation of the degree of hydration of blended cement pastes by a scanning electron microscope point-counting procedure  |
미소장 |
| 13 |
G. Frigione and S. Marra, “Relationship between Particle Size Distribution and Compressive Strength in Portland Cement,” Cem. Concr. Res., 6 113-27 (1976). |
미소장 |