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References

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G. Frigioine, S. Marra, Relationship between particle size distribution and compressive strength in portland cement, Cem Concr Res 6 (1976) 113-128.

2
B. Osbaeck, V. Johansen, Particle size distribution and rate of strength development of portland cement, J Am Ceram Soc 72 (2) (1989) 197-201.

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10
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12
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13
E.J. Garboczi, Finite element and finite difference programs for computing the linear electrical and elastic properties of digital images of random materials, NISTIR 6269, U.S. Department of Commerce, December, 1998.

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15
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17
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18
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19
E.J. Garboczi, D.P. Bentz, The Effect of Statistical Fluctuation, Finite Size Error, and Digital Resolution on the Phase Percolation and Transport Properties of the NIST Cement Hydration Model, to be submitted to Cem. Concr. Res.

20
M. Geiker, Studies of portland cement hydration: Measurements of chemical shrinkage and a systematic evaluation of hydration curves by means of the dispersion model, Ph. D. Thesis, Technical University of Denmark, Lyngby, 1983.

21
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22
O.M. Jensen, P.F. Hansen, Autogenous deformation and change of the relative humidity in silica fume modified cement paste, ACI Mat J 93 (6) (1996) 539-543.

23
O.M. Jensen, Influence of Cement Type Upon Autogenous Deformation and Change of the Relative Humidity, Technical Note, University of Aberdeen, 1995.

24
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25
D.P. Bentz, E.J. Garboczi, D.A. Quenard, Modelling drying shrinkage in porous materials using image reconstruction: application to porous Vycor glass, Mod Sim Mat Sci Eng 6 (1998) 211-236.

26
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27
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28
D.P. Bentz, P.E. Stutzman, Evolution of porosity and calcium hydroxide in laboratory concretes containing silica fume, Cem Concr Res 24 (6) (1994) 1044-1050.

29
D.N. Hadley, The nature of the paste-aggregate interface, Ph. D. Thesis, Purdue University, West Lafayette, IN, 1972.


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