.. 'eau, Cinétique d'absorption de granulats poreux dans l, p.100

D. Soes, Site du ministère de l'écologie, du développement durable, des transports et du logement, p.2010

L. Evangelista and J. D. Brito, « Durability performance of concrete made with fine recycled concrete aggregates », Cement and Concrete Composites, pp.9-14, 2010.

M. Barra-de-oliveira and E. Vazquez, The influence of retained moisture in aggregates from recycling on the properties of new hardened concrete, Waste Management, vol.16, issue.1-3, pp.113-117, 1996.
DOI : 10.1016/S0956-053X(96)00033-5

A. Nealen and S. Schenk, « The influence of recycled aggregate core moisture on freshly mixed and hardened concretes properties, Darmst Concr Annu J, 1998.

A. Katz, Properties of concrete made with recycled aggregate from partially hydrated old concrete, Cement and Concrete Research, vol.33, issue.5, pp.703-711, 2003.
DOI : 10.1016/S0008-8846(02)01033-5

N. Norme and . En, Essais pour determiner les caractéristiques mécaniques et physiques des granulats ? Partie 6 : détermination de la masse volumique réelle et du coefficient d'absorption d'eau, pp.1097-1103, 2014.

A. D. Tegguer, Determining the water absorption of recycled aggregates utilizing hydrostatic weighing approach, Construction and Building Materials, vol.27, issue.1, pp.112-116, 2012.
DOI : 10.1016/j.conbuildmat.2011.08.018

V. Spaeth and A. , Djerbi Tegguer, « Improvement of recycled concrete aggregate properties by polymer treatments, International Journal of Sustainable Built Environment, 2014.

N. Roussel and P. , ???Fifty-cent rheometer??? for yield stress measurements: From slump to spreading flow, Journal of Rheology, vol.49, issue.3, pp.705-718, 2005.
DOI : 10.1122/1.1879041

M. Thèse and . Fourmentin, Impact de la répartition et des transferts d'eau sur les propriétés des matériaux de construction à base de chaux formulées, p.2015

P. Coussot, C. Gauthier, and F. Bertrand, Mouvements capillaires durant le s??chage d'une p??te granulaire, Comptes Rendus de l'Acad??mie des Sciences - Series IIB - Mechanics-Physics-Astronomy, vol.327, issue.10, pp.1101-1106, 1999.
DOI : 10.1016/S1287-4620(00)87024-6

N. Shokri, P. Lehmann, and D. , Liquid-phase continuity and solute concentration dynamics during evaporation from porous media: Pore-scale processes near vaporization surface, Physical Review E, vol.81, issue.4, pp.1-7, 2010.
DOI : 10.1103/PhysRevE.81.046308

P. Coussot, Scaling approach of the convective drying of a porous medium, The European Physical Journal B, vol.15, issue.3, pp.557-566, 2000.
DOI : 10.1007/s100510051160

A. Yiotis, D. Salin, E. Tajer, and Y. , Yortsos, « Drying in porous media with gravity-stabilized fronts : Experimental results, Physical Review E, vol.86, p.2012

N. Shokri and D. , Or, « What determines drying rates at the onset of diffusion control-led stage- 2 evaporation from porous media ?, Water Resources Research, vol.47, pp.1-8, 2011.

M. Suzuki and S. Maeda, ON THE MECHANISM OF DRYING OF GRANULAR BEDS, Journal of Chemical Engineering of Japan, vol.1, issue.1, pp.26-31, 1968.
DOI : 10.1252/jcej.1.26

J. Mechling, A. Lecomte, and K. Merriaux, Mesure de l'absorption d'eau des additions min??rales des b??tons par ??vaporom??trie, Materials and Structures, vol.36, issue.255, pp.32-39, 2003.
DOI : 10.1617/13849

R. J. Flatt, Chap. 7 -« Superplasticizers and the rheology of concrete

K. H. Khayat, Viscosity-enhancing admixtures for cement-based materials ??? An overview, Cement and Concrete Composites, vol.20, issue.2-3, pp.171-188, 1998.
DOI : 10.1016/S0958-9465(98)80006-1

J. Yammine, M. Chaouche, M. Guerinet, M. Moranville, and N. Roussel, From ordinary rhelogy concrete to self compacting concrete: A transition between frictional and hydrodynamic interactions, Cement and Concrete Research, vol.38, issue.7, pp.890-896, 2008.
DOI : 10.1016/j.cemconres.2008.03.011

M. Regourd, « Microstructures et propriétés des ciments, mortiers et bétons », pp.41-48, 1982.

D. Diamond, « Cement pastes : rheology, evolution of the properties and structures ». 7e Congrès International de la Chimie des Ciments, Editions Septima Paris, vol.4, pp.113-128, 1980.

N. Roussel, A thixotropy model for fresh fluid concretes: Theory, validation and applications, Cement and Concrete Research, vol.36, issue.10, pp.1797-1806, 2006.
DOI : 10.1016/j.cemconres.2006.05.025

T. C. Powers, « A discussion of cement hydration in relation to the curing of concrete, .S., reprinted from Proc. Highway Res. Board, pp.178-188, 1947.

F. Mahaut, S. Mokéddem, X. Chateau, N. Roussel, and G. , Effect of coarse particle volume fraction on the yield stress and thixotropy of cementitious materials, Cement and Concrete Research, vol.38, issue.11, pp.1276-1285, 2008.
DOI : 10.1016/j.cemconres.2008.06.001

C. Brumaud, H. Bessaies-bey, C. Mohler, R. Baumann, M. Schmitz et al., Cellulose ethers and water retention, Cellulose ethers and water retention, pp.176-184, 2013.
DOI : 10.1016/j.cemconres.2013.06.010

D. Bülichen, J. Kainz, and J. Plank, Working mechanism of methyl hydroxyethyl cellulose (MHEC) as water retention agent, Cement and Concrete Research, vol.42, issue.7, pp.953-959, 2012.
DOI : 10.1016/j.cemconres.2012.03.016

C. Marliere, E. Mabrouk, M. Lamblet, and P. Coussot, How water retention in porous media with cellulose ethers works, Cement and Concrete Research, vol.42, issue.11, pp.1501-1512, 2012.
DOI : 10.1016/j.cemconres.2012.08.010

URL : https://hal.archives-ouvertes.fr/hal-01157375

H. Hafid, G. Ovarlez, F. Toussaint, P. H. Jezequel, and N. Roussel, Assessment of potential concrete and mortar rheometry artifacts using magnetic resonance imaging, Cement and Concrete Research, vol.71, pp.29-35, 2015.
DOI : 10.1016/j.cemconres.2015.01.009

D. Larrard and F. , « Structures granulaires et formulation des bétons », Numéro Ouvrages d'art OA 34, 2000.

S. Phillipot, J. P. Korb, D. Petit, and H. Zanni, Analysis of microporosity and setting of reactive powder concrete by proton nuclear relaxation, Magnetic Resonance Imaging, vol.16, issue.5-6, pp.515-519, 1998.
DOI : 10.1016/S0730-725X(98)00063-0

P. F. Faure and S. Rodts, Proton NMR relaxation as a probe for setting cement pastes, Magnetic Resonance Imaging, vol.26, issue.8, pp.1183-1196, 2008.
DOI : 10.1016/j.mri.2008.01.026

URL : https://hal.archives-ouvertes.fr/hal-00528660

J. Jehng, D. T. Sprague, and W. P. , Halperin, « Pore structure of hydrating cement paste by magnetic resonance relaxation analysis and freezing, Magnetic Resonance Imaging, vol.14, 1996.

H. Y. Carr and E. M. Purcell, Effects of Diffusion on Free Precession in Nuclear Magnetic Resonance Experiments, Physical Review, vol.94, issue.3, pp.630-638, 1954.
DOI : 10.1103/PhysRev.94.630

E. W. Washburn, « The dynamics of capillary flow », Physical review 17, 1921.

A. Hamraoui and T. Nylander, Analytical Approach for the Lucas???Washburn Equation, Journal of Colloid and Interface Science, vol.250, issue.2, pp.415-421, 2002.
DOI : 10.1006/jcis.2002.8288

M. J. Mosquera, T. Rivas, B. Prieto, and B. Silva, Capillary Rise in Granitic Rocks: Interpretation of Kinetics on the Basis of Pore Structure, Journal of Colloid and Interface Science, vol.222, issue.1, pp.2-41
DOI : 10.1006/jcis.1999.6612

A. Borhan and K. K. Rungta, An Experimental Study of the Radial Penetration of Liquids in Thin Porous Substrates, Journal of Colloid and Interface Science, vol.158, issue.2, pp.158-403, 1993.
DOI : 10.1006/jcis.1993.1272

L. Hanzic, L. Kosec, and I. , Anzel, « Capillary absorption in concrete and the Lucas-Washburn equation », Cement and Concrete Composites 32, pp.84-91, 2010.

D. Quere, Inertial capillarity, Europhysics Letters (EPL), vol.39, issue.5, pp.533-538, 1997.
DOI : 10.1209/epl/i1997-00389-2

A. Siebold, M. Nardin, J. Schultz, and M. Oppliger, « Effet of dynamics contact angle on capillary rise phenomena », Colloids and Surfaces a-Physicochemical and Engineering Aspects 161, pp.81-87, 2000.

A. Thompson, A. Katz, and C. , Krohn, « The microgeometry and transport properties of sedimentary rocks », Advances in Physics 36, pp.625-694, 1987.

A. Aït-mokhtar, O. Amiri, P. Dumargue, and S. Sammartino, « A new model to calculate water permability of cement-based materials form MIP results, Advances in Cement Research 14, pp.43-49, 2002.

M. Thèse and . Nguyen, « Modélisation des couplages entre hydratation et dessication des matériaux cimentaires à l'issue du décoffrage, 2011.

C. Thèse and . Brumaud, « Origines microscopiques des conséquences rhéologiques de l'ajout d'éthers de cellulose dans une suspension cimentaire, 2011.

T. Hela-bessaies-bey, « Polymères et propriétés rhéologiques d'une pâte de ciment : une approche physique générique, p.2015

K. L. Scrivener and A. Nonat, Hydration of cementitious materials, present and future, Cement and Concrete Research, vol.41, issue.7, pp.651-665, 2011.
DOI : 10.1016/j.cemconres.2011.03.026

M. Zhang and O. Gjorv, Microstructure of the interfacial zone between lightweight aggregate and cement paste, Cement and Concrete Research, vol.20, issue.4, pp.610-618, 1990.
DOI : 10.1016/0008-8846(90)90103-5

S. Sarkar, S. Chandra, and L. Berntson, « Interdependence of microstructure and strength of structural lightweight aggregate concrete », Cement and Concrete Composites 14, pp.239-248, 1992.

A. Lange, T. Hirata, and J. Plank, « The role of non-adsorbed PCE molecules in cement dispersion: experimental evidence for a new dispersion mechanism, ACI Special Publication, vol.288, pp.435-449, 2012.

S. Mantellato, M. Palacios, and R. Flatt, Reliable specific surface area measurements on anhydrous cements, Cement and Concrete Research, vol.67, pp.286-291, 2015.
DOI : 10.1016/j.cemconres.2014.10.009