N. Narayanan and K. Ramamurthy, Structure and properties of aerated concrete: a review, Cement & Concrete Composites, vol.22, pp.321-329, 2000.

C. Kramer, M. Schauerte, T. Kowald, and R. Trettin, Three-phase-foams for foam concrete application, Materials Characterization, vol.102, p.23, 2015.

S. I. Al-noury, W. H. Mirza, and S. Huq, Density and strength characteristics of lightweight mortar, Cement & Concrete Composites, vol.12, issue.5, 1990.

Z. Pan, H. Li, and W. Liu, Preparation and characterization of super low density foamed concrete from Portland cement and admixtures, Construction and Building Materials, vol.72, p.20, 2014.

Z. Huang, T. Zhang, and Z. Wen, Proportioning and characterization of Portland cement-based ultra-lightweight foam concretes, Construction and Building Materials, vol.79, pp.390-396, 1920.

L. Du and K. Folliard, Mechanisms of air-entrainment in concrete, Cement and Concrete Research, vol.35, p.13, 2005.

M. Kilgys, A. Laukaitis, M. Sinica, and G. Sezemanas, The influence of some surfactants on porous concrete properties, Materials science, vol.13, issue.4, p.13, 2007.

H. Atahan, J. C. Carlos, S. Chae, P. Monteiro, and J. Bastacky, The morphology of entrained air voids in hardened cement paste generated with different anionic surfactants, Cement & Concrete Composites, vol.30, p.13, 2008.

F. Akthar and J. Evans, High porosity (<90%) cementitious foams, Cement and Concrete Research, vol.40, p.6, 2010.

H. Weigler and S. Karl, Structural lightweight aggregate concrete with reduced density -lightweight aggregate foamed concrete, The International Journal of Lightweight Concrete, vol.2, issue.2, p.13, 1980.

E. , K. Nambiar, and K. Ramamurthy, Influence of filler type on the properties of foam concrete, Cement & Concrete Composites, vol.28, p.7, 2006.

M. Jones and A. Mccarthy, Utilising unprocessed low-lime coal fly ash in foamed concrete, Fuel, vol.84, p.7, 2005.

A. Hilal, N. Thom, and A. Dawson, On entrained pore size distribution of foamed concrete, Construction and Building Materials, vol.75, issue.6, pp.227-233, 2015.

R. Rixom and N. Mailvaganam, Chemical Admixtures for Concrete. E. & F.N. Spon Ltd

T. D. Tonyan and L. J. Gibson, Structure and mechanics of cement foams, Journal of Material Science, vol.27, p.7, 1992.

A. M. Abd and S. M. Abd, Modelling the strength of lightweight foamed concrete using support vector machine (svm), Case Studies in Construction Materials, vol.6, p.7, 2017.

D. Falliano, D. De-domenico, G. Ricciardi, and E. Gugliandolo, Experimental investigation on the compressive strength of foamed concrete: Effect of curing conditions, cement type, foaming agent and dry density, Construction and Building Materials, vol.165, p.7, 2018.

G. Yakovlev, J. Keriene, A. Gailius, and I. Girniene, Cement based foam concrete reinforced by carbon nanotubes, Materials science, vol.12, issue.2, pp.147-151, 2006.

C. Krämer, M. Schauerte, T. Müller, S. Gebhard, and R. Trettin, Application of reinforced three-phase-foams in UHPC foam concrete, Construction and Building Materials, vol.131, p.23, 2017.

G. Hoff, Porosity-strength considerations for cellular concrete, vol.2, pp.91-100, 1972.

E. P. Kearsley and P. J. Wainwright, The effect of porosity on the strength of foamed concrete, Cement and Concrete Research, vol.32, issue.7, pp.233-239, 2002.

K. Ramamurthy, E. K. Nambiar, and G. Indu-siva-ranjani, A classification of studies on properties of foam concrete, Cement & Concrete Composites, vol.31, issue.7, pp.388-396, 2009.

A. Hajimohammadi, T. Ngo, and P. Mendis, Enhancing the strength of pre-made foams for foam concrete applications, Cement and Concrete Composites, vol.87, issue.7, pp.164-171, 2018.

J. Jiang, Z. Lu, Y. Niu, J. Li, and D. Zhang, Study on the preparation and properties of high-porosity foamed concretes based on ordinary Portland cement, Materials and Design, vol.7, p.20, 2015.

G. Samson, Synthèse et propriétés des mousses minérales, 2015.

O. Hussein, S. A. Bernal, and J. L. Provis, Bubble stabilisation improves strength of lightweight mortars, 37th Cement and Concrete Science Conference, 2017.

G. Samson, A. Phelipot-mardelé, and C. Lanos, A review of thermomechanical properties of lightweight concrete, Magazine of Concrete Research, vol.69, pp.201-216, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01481099

B. Cabane and S. Hénon, Liquides -Solutions, dispersions, émulsions, gels. Belin, p.14, 2007.

S. Tcholakova, N. D. Denkov, and A. Lips, Comparison of solid particles, globular proteins and surfactants as emulsifiers, Physical Chemistry Chemical Physics, vol.10, p.23, 2008.

A. Saint-jalmes, Physical chemistry in foam drainage and coarsening, Soft Matter, vol.2, p.19, 2006.

A. Biance, A. Delbos, and O. Pitois, How topological rearrangements and liquid fraction control liquid foam stability, Physical Review Letters, vol.106, p.18, 2011.
URL : https://hal.archives-ouvertes.fr/hal-00790447

O. Pitois, Foam ripening, Foam Engineering: Fundamentals and Applications, p.19, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00790460

A. Saint-jalmes and J. Durian, Vanishing elasticity for wet foams: Equivalence with emulsions and role of polydispersity, Journal of Rheology, vol.43, p.20, 1999.

S. Cohen-addad and R. Höhler, Rheology of foams and highly concentrated emulsions, Current opinion in Colloid & Interface Science, vol.19, p.20, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01239406

T. G. Mason, J. Bibette, and D. A. Weitz, Elasticity of compressed emulsions, Physical Review Letters, vol.75, issue.10, p.20, 1995.

F. Gorlier, Y. Khidas, and O. Pitois, Elasticity of particle-loaded liquid foams, Soft Matter, vol.13, p.29, 1920.
URL : https://hal.archives-ouvertes.fr/hal-01559015

T. G. Mason, J. Bibette, and D. A. Weitz, Yielding and flow of monodisperse emulsions, Journal of Colloid and Interface Science, vol.179, p.20, 1996.

H. M. Princen and A. D. Kiss, Rheology of foams and highly concentrated emulsions. iv an experimental study of the shear viscosity and yield stress, Journal of Colloid and Interface Science, vol.128, issue.1, p.20, 1989.

N. D. Denkov, S. Tcholakova, K. Golemanov, K. P. Ananthapadmanabhan, and A. Lips, Viscous friction in foams and concentrated emulsions under steady shear, Physical Review Letter, vol.100, p.20, 2008.

S. Tcholakova, N. D. Denkov, K. Golemanov, K. P. Ananthapadmanabhan, and A. Lips, Theoretical model of viscous friction inside steadily sheared foams and concentrated emulsions, Physical Review E, vol.78, p.20, 2008.

F. Gorlier, Y. Khidas, and O. Pitois, Yielding of complex liquid foams, Journal of Rheology, vol.61, p.29, 1920.
URL : https://hal.archives-ouvertes.fr/hal-01565292

, STATE OF THE ART

N. Taccoen, F. Lequeux, D. Z. Gunes, and C. N. Baroud, Probing the mechanical strength of an armored bubble and its implication to particle-stabilized foams, Physical Review X, vol.6, issue.1, p.22, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01311171

M. Abkarian, A. B. Subramaniam, S. Kim, R. Larsen, S. Yang et al., Dissolution arrest and stability of armored bubbles, Physical Review Letters, vol.99, p.23, 2006.

A. Martinez, E. Rio, G. Delon, A. Saint-jalmes, D. Langevin et al., On the origin of the remarkable stability of aqueous foams stabilised by nanoparticles: link with microscopic surface properties, Soft Matter, vol.4, issue.23, pp.1531-1535, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00671996

S. Paria and K. Khilar, A review on experimental studies of surfactant adsorption at the hydrophilic solid-water interface, Advances in Colloid and Interface Science, vol.110, issue.3, pp.75-95, 2004.

P. Petit, I. Javierre, P. Jézéquel, and A. Biance, Generation and stability of bubbles in a cement based slurry, Cement and Concrete Research, vol.60, p.24, 2014.

A. Britan, M. Liverts, G. Ben-dor, S. Koehler, and N. Bennani, The effect of fine particles on the drainage and coarsening of foam, Colloids and Surfaces A, vol.344, p.25, 2009.

B. Haffner, Y. Khidas, and O. Pitois, The drainage of foamy granular suspensions, Journal of Colloid and Interface Science, vol.458, p.24, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01188866

B. Haffner, Y. Khidas, and O. Pitois, Flow and jamming of granular suspensions in foams, Soft Matter, vol.10, p.24, 2014.
URL : https://hal.archives-ouvertes.fr/hal-00969151

N. Louvet, R. Höhler, and O. Pitois, Capture of particles in soft porous media, Physical Review E, vol.82, p.25, 2010.
URL : https://hal.archives-ouvertes.fr/hal-02086357

Y. Khidas, B. Haffner, and O. Pitois, Capture-induced transition in foamy suspensions, Soft Matter, vol.10, p.25, 2014.
DOI : 10.1039/c4sm00246f

URL : https://hal.archives-ouvertes.fr/hal-00969158

R. Guillermic, A. Salonen, J. Emile, and A. Saint-jalmes, Surfactant foams doped with laponite: unusual behaviors induced by aging and confinement, Soft Matter, vol.5, p.25, 2009.
DOI : 10.1039/b914923f

URL : https://hal.archives-ouvertes.fr/hal-00651439

S. Guignot, S. Faure, M. Vignes-adler, and O. Pitois, Liquid and particles retention in foamed suspensions, Chemical Engineering Science, vol.65, p.26, 2010.
DOI : 10.1016/j.ces.2009.12.039

URL : https://hal.archives-ouvertes.fr/hal-00515334/file/liquid%20and%20particle%20retention%20in%20foamed%20suspensions.pdf

I. Lesov, S. Tcholakova, and N. Denkov, Factors controlling the formation and stability of foams used as precursors of porous materials, Journal of Colloid and Interface Science, vol.426, pp.9-21, 2014.

J. Goyon, F. Bertrand, O. Pitois, and G. Ovarlez, Shear induced drainage in foamy yield-stress fluids, Physical Review Letters, vol.104, p.26, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00467198

L. Jossic and A. Magnin, Drag and stability of objects in a yield stress fluid, AIChE Journal, vol.47, issue.12, p.26, 2001.
URL : https://hal.archives-ouvertes.fr/hal-02019845

F. Gorlier, Y. Khidas, and O. Pitois, Coupled elasticity in soft solid foams, Journal of Colloid and Interface Science, vol.501, p.28, 2017.
DOI : 10.1016/j.jcis.2017.04.033

URL : https://hal.archives-ouvertes.fr/hal-01515587

Y. Khidas, B. Haffner, and O. Pitois, Critical size effect of particles reinforcing foamed composite materials, Composites Science and Technology, vol.119, p.27, 2015.
DOI : 10.1016/j.compscitech.2015.09.024

URL : https://hal.archives-ouvertes.fr/hal-01221127

L. Ducloué, O. Pitois, J. Goyon, X. Chateau, and G. Ovarlez, Rheological behaviour of suspensions of bubbles in yield stress fluids, Journal of Non-Newtonian Fluid Mechanics, vol.215, p.28, 2015.

R. W. Style, R. Boltyanskiy, B. Allen, K. E. Jensen, H. P. Foote et al.,

. Dufresne, Stiffening solids with liquid inclusions, Nature Physics, vol.11, p.27, 2015.

T. L. Nguyen-thi, L. Ducloué, G. Ovarlez, and X. Chateau, Rhéologie des suspensions de bulles dans un fluide à seuil, 21ème Congrès Français de Mécanique, vol.27, p.28, 2013.

, Cellular Solids: Structure and Properties, p.27, 1997.

F. Gorlier, Y. Khidas, A. Fall, and O. Pitois, Optimal strengthening of particle-loaded liquid foams, Physical Review E, vol.95, p.29, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01515554

, EFFECTS OF SURFACTANTS ON THE YIELD STRESS OF CEMENT PASTE

L. Du and K. Folliard, Mechanisms of air-entrainment in concrete, Cement and Concrete Research, vol.35, p.42, 2005.

, Liquids : Solutions, dispersion, émusions, gels. Belin, p.41, 2003.

P. Borget, L. Galmiche, J. L. Meins, and F. Lafuma, Microstructural characterisation and behaviour in different salt solutions of sodium polymethacrylate-g-peo comb copolymers, Colloids and Surfaces, A: Physicochemical and Engineering Aspects, vol.260, p.41, 2005.

J. Hot, H. Bessaies-bey, C. Brumaud, M. Duc, C. Castella et al., Adsorbing polymers and viscosity of cement pastes, Cement and Concrete Research, vol.63, p.41, 2014.
DOI : 10.1016/j.cemconres.2014.04.005

URL : https://hal.archives-ouvertes.fr/hal-01214856

G. Gelardi, N. Sanson, G. Nagy, and R. J. Flatt, Characterization of comb-shaped copolymers by multidetection sec, dls and sans, Polymers, vol.9, p.41, 2017.
DOI : 10.3390/polym9020061

URL : https://hal.archives-ouvertes.fr/hal-01474074

C. Brumaud, H. Bessaies-bey, C. Mohler, R. Baumann, M. Schmitz et al., Cellulose ethers and water retention, Cement and Concrete Research, vol.53, p.41, 2013.
URL : https://hal.archives-ouvertes.fr/hal-01906282

C. Jolicoeur and M. Simard, Chemical admixture-cement interactions: Phenomenology and physico-chemical concepts, Cement & Concrete Composites, vol.20, p.42, 1998.

D. Marchon, S. Mantellato, R. Eberhardt, and A. B. , Adsorption of chemical admixtures, Science and Technology of Concrete Admixtures, vol.41, p.62, 2016.

R. J. Flatt and I. Schober, Superplasticizer and the rheology of concrete, Understanding the rheology of concrete, vol.42, p.53, 2012.

A. Perrot, T. Lecompte, H. Khelifi, C. Brumaud, J. Hot et al., Yield stress and bleeding of fresh cement pastes, Cement and Concrete Research, vol.42, p.42, 2012.
URL : https://hal.archives-ouvertes.fr/hal-01757246

H. Uchikawa, S. Hanehara, T. Shirasaka, and D. Sawaki, Effect of admixture on hydration of cement, adsorptive behavior of admixture and fluidity and setting of fresh cement paste, Cement and Concrete Research, vol.22, p.42, 1992.

T. Zhang, S. Shang, F. Yin, A. Aishah, A. Salmiah et al., Adsorptive behavior of surfactants on surface of Portland cement, Cement and Concrete Research, vol.31, p.52, 2001.

P. Petit, I. Javierre, P. Jézéquel, and A. Biance, Generation and stability of bubbles in a cement based slurry, Cement and Concrete Research, vol.60, p.49, 2014.

, EFFECTS OF SURFACTANTS ON THE YIELD STRESS OF CEMENT PASTE

K. Ramamurthy, E. K. Nambiar, and G. Indu-siva-ranjani, A classification of studies on properties of foam concrete, Cement & Concrete Composites, vol.31, p.43, 2009.

R. J. Flatt and P. Bowen, Yodel: a yield stress model for suspensions, Journal of the American Ceramic Society, vol.89, issue.4, p.54, 2006.

H. Bessaies-bey, Polymères et propriétés rhéologiques d'une pâte de ciment : une approche physique générique, vol.44, p.47, 2015.

N. Roussel and P. Coussot, Fifty-cent rheometer for yield stress measurements: From slump to spreading flow, Journal of Rheology, vol.49, issue.3, p.46, 2005.

C. Jolicoeur, T. To, T. Nguyen, R. Hill, and M. Pagé, Mode of action of anionic surfactants for air entrainment in cement pastes w-w/o fly ash, 2009 World of Coal Ash (WOCA) Conference, p.48, 2009.

H. Atahan, J. C. Carlos, S. Chae, P. Monteiro, and J. Bastacky, The morphology of entrained air voids in hardened cement paste generated with different anionic surfactants, Cement & Concrete Composites, vol.30, p.48, 2008.

L. Tunstall, G. Scherer, and R. Prud&apos;homme, Studying AEA interaction in cement systems using tensiometry, Cement and concrete research, vol.92, p.49, 2017.

A. Zingg, F. Winnefeld, L. Holzer, J. Pakusch, S. Becker et al., Adsorption of polyelectrolytes and its influence on the rheology, zeta potential, and microstructure of various cement and hydrate phases, Journal of Colloid and Interface Science, vol.323, p.51, 2008.

F. J. Scamehorn, R. S. Schechter, and W. H. Wade, Adsorption of surfactants on mineral oxide surfaces from aqueous solutions, Journal of Colloid and Interface Science, vol.85, issue.2, p.51, 1982.

L. Koopal, E. Lee, and M. Böhmer, Adsorption of cationic and anionic surfactants on charged metal oxide surfaces, Journal of Colloid and Interface Science, vol.170, p.51, 1995.

R. Atkin, V. Craig, E. Wanless, and S. Biggs, Mechanism of cationic surfactant adsorption at the solid-aqueous interface, Advances in Colloid and Interface Science, vol.103, p.51, 2003.

S. Paria and K. Khilar, A review on experimental studies of surfactant adsorption at the hydrophilic solid-water interface, Advances in Colloid and Interface Science, vol.110, issue.3, p.51, 2004.

, EFFECTS OF SURFACTANTS ON THE YIELD STRESS OF CEMENT PASTE

B. Y. Zhu and T. Gu, Surfactant adsorption at solid-liquid interfaces, Advances in Colloid and Interface Science, vol.37, p.52, 1991.

R. Rixom and N. Mailvaganam, Chemical Admixtures for Concrete. E. & F.N. Spon Ltd

J. N. Israelachvili and R. M. Pashley, Measurement of the hydrophobic interaction between two hydrophobic surfaces in aqueous electrolyte solutions, Journal of Colloid and Interface Science, vol.98, issue.2, p.54, 1984.

E. Meyer, K. Rosenberg, and J. Israelachvili, Recent progress in understanding hydrophobic interactions, PNAS, vol.103, issue.43, p.54, 2006.

R. J. Flatt, Dispersion forces in cement suspensions, Cement and Concrete Research, vol.34, p.54, 2004.

C. Dame, Étude des relations entre la stabilité des mousses de décontamination nucléaire et leurs propriétés physico-chimiques, p.60, 2006.

N. Massoussi, E. Keita, and N. Roussel, The heterogeneous nature of bleeding in cement pastes, Cement and Concrete Research, vol.95, p.64, 2017.

G. Ovarlez, F. Bertrand, and S. Rodts, Local determination of the constitutive law of a dense suspension of noncolloidal particles through magnetic resonance imaging, Journal of Rheology, vol.50, p.68, 2006.
URL : https://hal.archives-ouvertes.fr/hal-00776443

F. Gorlier, Y. Khidas, and O. Pitois, Yielding of complex liquid foams, Journal of Rheology, vol.61, p.64, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01565292

P. Aïtcin, Entrained air in concrete: rheology and freezing resistance, Science and Technology of Concrete Admixtures, p.64, 2016.

I. Cantat, S. Cohen-addad, F. Elias, F. Graner, R. Höhler et al., Foams -Structure and dynamics, p.64, 2013.
URL : https://hal.archives-ouvertes.fr/hal-01390071

R. Rixom and N. Mailvaganam, Chemical Admixtures for Concrete. E. & F.N. Spon Ltd

X. Chateau, G. Ovarlez, and K. Trung, Homogenization approach to the behavior of suspensions of noncolloidal particles in yield stress fluids, Journal of rheology, vol.52, issue.2, p.76, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00490785

T. L. Nguyen-thi, L. Ducloué, G. Ovarlez, and X. Chateau, Rhéologie des suspensions de bulles dans un fluide à seuil, 21ème Congrès Français de Mécanique, vol.64, p.73, 2013.

L. Ducloué, O. Pitois, J. Goyon, X. Chateau, and G. Ovarlez, Rheological behaviour of suspensions of bubbles in yield stress fluids, Journal of Non-Newtonian Fluid Mechanics, vol.215, p.74, 2015.

R. J. Flatt and P. Bowen, Yodel: a yield stress model for suspensions, Journal of the American Ceramic Society, vol.89, issue.4, p.71, 2006.

B. Feneuil, O. Pitois, and N. Roussel, Effect of surfactants on the yield stress of cement paste, Cement and Concrete Research, vol.100, p.75, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01990783

H. Bessaies-bey, Polymères et propriétés rhéologiques d'une pâte de ciment : une approche physique générique, vol.66, p.76, 2015.

F. Mahaut, X. Chateau, P. Coussot, and G. Ovarlez, Yield stress and elastic modulus of suspensions of non-colloidal particles in yield stress fluids, Journal of Rheology, vol.52, p.77, 2008.

J. Goyon, F. Bertrand, O. Pitois, and G. Ovarlez, Shear induced drainage in foamy yield-stress fluids, Physical Review Letters, vol.104, p.68, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00467198

F. Mahaut, S. Mokéddem, X. Chateau, N. Roussel, and G. Ovarlez, Effect of coarse particle volume fraction on the yield stress and thixotropy of cementitious materials, Cement and Concrete Research, vol.38, p.77, 2008.

G. Ovarlez, F. Mahaut, F. Bertrand, and X. Chateau, Flows and heterogeneities with a vane tool: Magnetic resonance imaging measurements, Journal of rheology, vol.55, p.68, 2011.
URL : https://hal.archives-ouvertes.fr/hal-00507429

L. Ducloué, Comportement rhéologique des fluides à seuil aérés, p.75, 2014.

W. Ramsden, Separation of solids in the surface-layers of solutions and 'suspensions' -preliminary account, Proceedings of the Royal Society of London, vol.72, p.75, 1904.

S. U. Pickering, Emulsions, Journal of Chemical Society, vol.91, p.75, 1907.

B. P. Binks, Particles as surfactants -similarities and differences, Current Opinion in Colloid & Interface Science, vol.7, p.75, 2002.

M. Abkarian, A. B. Subramaniam, S. Kim, R. Larsen, S. Yang et al., Dissolution arrest and stability of armored bubbles, Physical Review Letters, vol.99, p.75, 2006.

O. Pitois, M. Buisson, and X. Chateau, On the collapse pressure of armored bubbles and drops, European Physical Journal E, vol.38, p.75, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01189021

N. Taccoen, F. Lequeux, D. Z. Gunes, and C. N. Baroud, Probing the mechanical strength of an armored bubble and its implication to particle-stabilized foams, Physical Review X, vol.6, issue.1, p.75, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01311171

, YIELD STRESS OF AERATED CEMENT PASTE

A. Stocco, E. Rio, B. Binks, and D. Langevin, Aqueous foams stabilized solely by particles, Soft Matter, vol.7, issue.4, p.77, 2011.
URL : https://hal.archives-ouvertes.fr/hal-00788618

S. Tcholakova, N. D. Denkov, and A. Lips, Comparison of solid particles, globular proteins and surfactants as emulsifiers, Physical Chemistry Chemical Physics, vol.10, p.76, 2008.

N. Roussel, A. Lemaître, R. J. Flatt, and P. Coussot, Steady state flow of cement suspensions: A micromechanical state of the art, Cement and Concrete Research, vol.40, p.76, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00622810

N. D. Denkov, I. B. Ivanov, and P. A. Kralchevski, A possible mechanism of stabilization of emulsions by solid particles, Journal of Colloids and Interface Science, vol.150, issue.2, p.76, 1992.

N. Ballard and S. A. Bon, Equilibrium orientations of non-spherical and chemically anisotropic particles at liquid-liquid interfaces and the effect on emulsion stability, Journal of Colloid and Interface Science, vol.448, p.82, 2010.

I. Lesov, S. Tcholakova, and N. Denkov, Factors controlling the formation and stability of foams used as precursors of porous materials, Journal of Colloid and Interface Science, vol.426, p.82, 2014.

I. Lesov, S. Tcholakova, and N. Denkov, Drying of particle-loaded foams for production of porous materials: mechanism and theoretical modeling, RSC Advances, vol.4, p.82, 2014.

R. J. Flatt and P. Bowen, Yodel: a yield stress model for suspensions, Journal of the American Ceramic Society, vol.89, issue.4, p.82, 2006.

R. J. Flatt and I. Schober, Superplasticizer and the rheology of concrete, Understanding the rheology of concrete, vol.82, p.93, 2012.

B. Feneuil, O. Pitois, and N. Roussel, Effect of surfactants on the yield stress of cement paste, Cement and Concrete Research, vol.100, p.93, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01990783

T. Zhang, S. Shang, F. Yin, A. Aishah, A. Salmiah et al., Adsorptive behavior of surfactants on surface of Portland cement, Cement and Concrete Research, vol.31, p.83, 2001.

F. Gorlier, Y. Khidas, A. Fall, and O. Pitois, Optimal strengthening of particle-loaded liquid foams, Physical Review E, vol.95, p.86, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01515554

N. Roussel, G. Ovarlez, S. Garrault, and C. Brumaud, The origins of thixotropy in fresh cement pastes, Cement and Concrete Research, vol.42, p.97, 2012.

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

T. G. Mason, J. Bibette, and D. A. Weitz, Yielding and flow of monodisperse emulsions, Journal of Colloid and Interface Science, vol.179, p.92, 1996.

A. Saint-jalmes and J. Durian, Vanishing elasticity for wet foams: Equivalence with emulsions and role of polydispersity, Journal of Rheology, vol.43, p.92, 1999.

M. D. Bolton, The strength and dilatancy of sands, Géotechnique, vol.36, issue.1, p.93, 1986.

A. Fall, G. Ovarlez, D. Hautemayou, C. Mézière, J. Roux et al., Dry granular flows: Rheological measurements of the µ(i )-rheology, Journal of rheology, vol.59, issue.4, p.93, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01165682

F. Gorlier, Y. Khidas, and O. Pitois, Yielding of complex liquid foams, Journal of Rheology, vol.61, p.99, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01565292

N. Roussel, A. Lemaître, R. J. Flatt, and P. Coussot, Steady state flow of cement suspensions: A micromechanical state of the art, Cement and Concrete Research, vol.40, p.94, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00622810

, Cellular Solids: Structure and Properties, p.96, 1997.

F. Gorlier, Y. Khidas, and O. Pitois, Coupled elasticity in soft solid foams, Journal of Colloid and Interface Science, vol.501, p.96, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01515587

V. Chaplain, P. Mills, G. Guiffant, and P. Cerasi, Model for the flow of a yield fluid through a porous medium, Journal de Physique II, vol.2, p.97, 1992.
URL : https://hal.archives-ouvertes.fr/jpa-00247795

N. Louvet, R. Höhler, and O. Pitois, Capture of particles in soft porous media, Physical Review E, vol.82, p.98, 2010.
URL : https://hal.archives-ouvertes.fr/hal-02086357

S. Wei, Z. Yunsheng, and M. Jones, Using the ultrasonic wave transmission method to study the setting behavior of foamed concrete, Construction and Building Materials, vol.51, p.98, 2014.

I. Cantat, S. Cohen-addad, F. Elias, F. Graner, R. Höhler et al., Foams -Structure and dynamics, vol.105, p.117, 2013.
URL : https://hal.archives-ouvertes.fr/hal-01390071

B. Feneuil, O. Pitois, and N. Roussel, Effect of surfactants on the yield stress of cement paste, Cement and Concrete Research, vol.100, p.125, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01990783

S. Guignot, S. Faure, M. Vignes-adler, and O. Pitois, Liquid and particles retention in foamed suspensions, Chemical Engineering Science, vol.65, p.117, 2010.

I. Lesov, S. Tcholakova, and N. Denkov, Factors controlling the formation and stability of foams used as precursors of porous materials, Journal of Colloid and Interface Science, vol.426, p.117, 2014.

H. Bey, F. Wintzenrieth, O. Ronsin, R. Höhler, and S. Cohen-addad, Stabilization of foams by the combined effects of an insoluble gas species and gelation, Soft Matter, vol.13, p.107, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01596063

H. Bessaies-bey, Polymères et propriétés rhéologiques d'une pâte de ciment : une approche physique générique, p.108, 2015.

N. Roussel and P. Coussot, Fifty-cent rheometer for yield stress measurements: From slump to spreading flow, Journal of Rheology, vol.49, issue.3, p.108, 2005.

R. J. Flatt and P. Bowen, Yodel: a yield stress model for suspensions, Journal of the American Ceramic Society, vol.89, issue.4, p.108, 2006.

A. Biance, A. Delbos, and O. Pitois, How topological rearrangements and liquid fraction control liquid foam stability, Physical Review Letters, vol.106, p.117, 2011.
URL : https://hal.archives-ouvertes.fr/hal-00790447

F. Rouyer, O. Pitois, E. Lorenceau, and N. Louvet, Permeability of a bubble assembly: from the very dry to the wet limit, CRITERION FOR FRESH CEMENT FOAMS, vol.22, p.43302, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00507028

N. Roussel, A. Lemaître, R. J. Flatt, and P. Coussot, Steady state flow of cement suspensions: A micromechanical state of the art, Cement and Concrete Research, vol.40, p.120, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00622810

O. Pitois, Foam ripening, Foam Engineering: Fundamentals and Applications, p.119, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00790460

F. Gorlier, Y. Khidas, and O. Pitois, Yielding of complex liquid foams, Journal of Rheology, vol.61, p.120, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01565292

N. Louvet, R. Höhler, and O. Pitois, Capture of particles in soft porous media, Physical Review E, vol.82, p.121, 2010.
URL : https://hal.archives-ouvertes.fr/hal-02086357

, Water imbibition of open-cell cement foams Sommaire 6.1 Introduction

D. .. Results,

.. .. Conclusion,

.. .. Bibliography,

C. Ma and B. Chen, Properties of foamed concrete containing water repellents, Construction and Building Materials, vol.123, p.127, 2016.

J. M. Bell and F. K. Cameron, The flow of liquids through capillary spaces, Journal of Physical Chemistry, vol.10, p.127, 1906.

, WATER IMBIBITION OF OPEN-CELL CEMENT FOAMS

R. Lucas, Ueber das zeitgesetz des kapillaren aufstiegs von flüssigkeiten, KolloidZeitschrift, vol.23, p.127, 1918.

E. W. Washburn, The dynamics of capillary flow, Physical Review, vol.17, p.132, 1921.

E. , K. Nambiar, and K. Ramamurthy, Air-void characterisation of foam concrete, Cement and Concrete Research, vol.37, p.127, 2007.

I. Ioannou, A. Hamilton, and C. Hall, Capillary absorption of water and n-decane by autoclaved aerated concrete, Cement and Concrete Research, vol.38, p.127, 2008.

K. Song, J. Mitchell, H. Jaffel, and L. Gladden, Magnetic resonance imaging studies of spontaneous capillary water imbibition in aerated gypsum, Journal of Physics D: Applied Physics, vol.44, p.127, 2011.
URL : https://hal.archives-ouvertes.fr/hal-00602612

B. Feneuil, O. Pitois, and N. Roussel, Effect of surfactants on the yield stress of cement paste, Cement and Concrete Research, vol.100, p.136, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01990783

I. Cantat, S. Cohen-addad, F. Elias, F. Graner, R. Höhler et al., Foams -Structure and dynamics, vol.129, p.130, 2013.
URL : https://hal.archives-ouvertes.fr/hal-01390071

C. Lusso and X. Chateau, Numerical modeling of disordered foam in 3d: Effective properties by homogenization
URL : https://hal.archives-ouvertes.fr/hal-01502566

M. Pereira and S. Ghabezloo, , vol.131, p.134, 2017.

H. M. Princen, Capillary phenomena in assemblies of parallel cylinders. ii. capillary rise in systems with more than two cylinders, Journal of Colloid and Interface Science, vol.30, p.133, 1969.

H. Wiklund and T. Uesaka, Microfluidics of imbibition in random porous media, Physical Review E -Statistical, Nonlinear, and Soft Matter Physics, vol.87, p.133, 2013.

H. Mehrabian, P. Gao, and J. Feng, Wicking flow through microchannels, Physics of fluids, vol.23, p.134, 2011.

Z. Sadjadi, M. Jung, R. Seemann, and H. Rieger, Meniscus arrest during capillary rise in asymmetric microfluidic pore junctions, Langmuir, vol.31, p.133, 2015.

V. Langlois, V. H. Trinh, C. Lusso, C. Perrot, X. Chateau et al., Permeability of solid foam: Effect of pore connections, Physical Review E, vol.97, p.135, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01818152