Up: Main Previous: Acknowledgments
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- 1
- D.P. Bentz, E.J. Garboczi, and E.S. Lagergren,
Multi-scale microstructural modelling of concrete diffusivity: Identification
of significant variables, ASTM Cement, Concrete, and Aggregates
20 (1998) 129-139.
- 2
- E.J. Garboczi and D.P. Bentz,
Multi-scale analytical/numerical
theory of the diffusivity of concrete, Adv. Cem.-Based Mater. 8 (1998)
77-88.
- 3
- E.J. Garboczi and D.P. Bentz,
Analytical
formulas for interfacial transition zone properties, Adv. Cem.-Based Mater. 6 (1997)
99-108.
- 4
- D.P. Bentz, D.A. Quenard, V. Baroghel-Bouny,
E.J. Garboczi, and H.M. Jennings,
Modelling
drying shrinkage of cement paste and mortar: Part I. Structural models from
nanometers to millimeters, Mater. Struc. 28 (1995) 450-458.
- 5
- D. Stauffer and A. Aharony, Introduction
to Percolation Theory, 2nd Edition, Taylor and Francis, London, 1992.
- 6
- E.J. Garboczi, Permeability, diffusivity, and
microstructural parameters: A critical review, Cem. Conc. Res. 20 (1990)
591-601.
- 7
- A.J. Katz and A.H. Thompson, Quantitative prediction of
permeability in porous rock, Phys. Rev. B 34 (1986)
8179-8181; Prediction of rock electrical conductivity from mercury
injection measurements, J. Geophys. Res. 92 (1987) 599-607.
- 8
- D.P. Bentz,
Three-dimensional computer simulation
of portland cement hydration and microstructure development,
J. Amer. Ceram. Soc. 80 (1997) 3-21.
- 9
- D.P. Bentz and E.J. Garboczi,
Percolation of
phases in a three-dimensional cement paste microstructural model, Cem. Conc. Res.
21 (1991) 325-344.
- 10
- E.J. Garboczi and D.P. Bentz,
Computer simulation of the
diffusivity of cement-based materials, J. Mater. Sci. 27 (1992)
2083-2092.
- 11
- E.J. Garboczi, D.P. Bentz, and N.S. Martys, Digital imaging and pore morphology, in: Pozen Wong (Ed.), Methods in the
Physics of Porous
Media, Academic Press, San Diego, 1999, 1-41.
- 12
- E.J. Garboczi and D.P. Bentz, Fundamental computer
simulation models for cement-based materials, in: J. Skalny (Ed.),
Materials Science of
Concrete Vol. II, American Ceramics Society,
Westerville, Ohio, 1991, 249-277.
- 13
- A.P. Roberts and E.J. Garboczi,
Elastic properties of porous ceramic models, J. Amer. Ceram. 83 (2000) 3041-3048.
- 14
- A.P. Roberts and E.J. Garboczi,
Elastic
properties of model random three-dimensional open-cell solids, J. Mech. Phys.
Solids 50 (2001) 33-55.
- 15
- Z. Hashin, Analysis of composite materials: A survey,
Appl. Mech. 50 (1983) 481-505.
- 16
- S. Torquato, Theory of Composite Materials,
Oxford, 2001, in press.
- 17
- H. Uchikawa, Similarities and discrepancies of hardened cement
paste, mortar, and concrete from the standpoints of composition and structure, in:
E. Gartner (Ed.), Advances in Cement Manufacture and Use, Engineering Foundation,
New York, 1989, 271-294.
- 18
- B. Lu and S. Torquato, Local volume fraction fluctuations
in heterogeneous media, J. Chem. Phys. 93 (1990) 3452-3459;
Photographic granularity: Mathematical formulation and effect of
impenetrability of grains, J. Optical Soc. Amer. 7 (1990) 717-724.
- 19
- D.P. Bentz,
A three-dimensional cement hydration and
microstructure program. I. Hydration rate, heat of hydration, and chemical
shrinkage, NIST Internal Report 5756 (1995).
- 20
- P. Navi and Christian Pignat, Simulation of cement hydration
and the connectivity of the capillary pore space, Adv. Cem.-Based Mater.
4 (1996) 58-67.
- 21
- H.M. Jennings and S.K. Johnson, Simulation of microstructure
development during the hydration of a cement compound, J. Amer. Ceram. Soc. 69
(1986) 790-795.
- 22
- D.P. Bentz, CEMHYD3D: A three-dimensional cement hydration and mictrostructure
development modelling package. Version 2.0, NIST Internal Report 6485, April, 2000. See also
http://ciks.cbt.nist.gov/monograph, Part I, Chapter 4, Section 2.
- 23
- A. Boumiz, Etude comparee des evolutions mecaniques et
chimiques des pates de ciment et mortiers a tres jeune age, Ph.D. thesis,
Universite Paris 7 (Denis Diderot), 1995.
- 24
- D.P. Bentz, E.J. Garboczi, C.J. Haecker, and O.M. Jensen,
Effects of
cement particle size distribution on performance properties
of portland cement-based materials, Cem. Conc. Res. 29 (1999) 1663-1671.
- 25
- D.P. Bentz and C.J. Haecker,
An argument
for using coarse cements in high performance concrete, Cem. Conc. Res. 29 (1999) 615-618.
- 26
- E.J. Garboczi, M.F. Thorpe, M. DeVries, and A.R. Day,
Universal
conductivity curve for a plane containing random holes, Phys. Rev. A
43 (1991) 6473-6482.
- 27
- E.J. Garboczi, K.A. Snyder, J.F. Douglas, and M.F. Thorpe,
Geometrical
percolation threshold of overlapping ellipsoids, Phys. Rev. E
52 (1995) 819-828.
- 28
- P.E. Stutzman and J.R. Clifton, Microstructural features
of some low water/solids, silica fume mortars cured at different
temperatures, NIST Internal Report 4790, April, 1992. See also
http://ciks.cbt.nist.gov/monograph, Part I, Chapter 3.
- 29
- N.S. Martys, J.G. Hagedorn, D. Goujon, and J.E.
Devaney, Large
scale simulations of single and multi-component flow in porous media,
Proceedings of SPIE 3772 (1999) 205-213.
- 30
- T.C. Powers, L.E. Copeland, and H.M. Mann, Capillary
continuity or discontinuity in cement pastes, Portland Cement Bulletin
110 (1959) 3-12.
- 31
- D.P. Bentz, E.J. Garboczi, and N.S. Martys,
Application of digital-image-based models to microstructure, transport
properties, and degradation of cement-based materials, in: H.M. Jennings,
J. Kropp, and K. Scrivener (Eds.), The Modelling
of Microstructure and Its Potential for Studying Transport Properties and
Durability,
Kluwer, Dordrecht, 1996, 167-185.
- 32
- R.A. Olson, B.J. Christensen, R.T. Coverdale, S.J. Ford,
G. M. Moss, H.M. Jennings, T.O. Mason, and E.J. Garboczi,
Interpretation
of the impedance spectroscopy of cement paste via computer modelling III:
Microstructural analysis of frozen cement paste, J. Mater. Sci. 30
(1995) 5078-5086.
- 33
- E.J. Garboczi,
Finite element and
finite difference
programs for computing the linear electric and elastic properties of
digital images of random materials, NIST Internal Report 6269 (1998).
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