L. V. Bogdandy and H. J. , The Reduction of Iron Ores, 1971.
DOI : 10.1007/978-3-662-10400-2

J. Astier, Réduction Directe, Techniques de l'ingénieur, ME 1, M7580, 2004.

E. T. Turkdogan and J. V. Vinters, Gaseous reduction of iron oxides: Part I. Reduction of hematite in hydrogen, Metallurgical and Materials Transactions B, vol.11, issue.11, pp.3175-3188, 1971.
DOI : 10.1002/aic.690080404

E. R. Pescott, Kinetics of the gaseous direct reduction of iron ores in multi-component gas mixtures, 1976.

I. Gaballah, P. Bert, L. C. Dufour, and C. Gleitzer, Kinetics of the reduction of wustite by hydrogen and carbon monoxide + hydrogen mixtures. Observation of trichites, Memoires Scientifiques de la Revue de Metallurgie, pp.7-8, 1972.

M. Moukassi, P. Steinmetz, B. Dupre, and C. Gleitzer, Mechanism of reduction with hydrogen of pure wustite single crystals, Metallurgical Transactions B: Process Metallurgy, pp.14-125, 1983.

E. T. Turkdogan, R. G. Olsson, and J. V. Vinters, Gaseous reduction of iron oxides: Part II. Pore characteristics of iron reduced from hematite in hydrogen, Metallurgical and Materials Transactions B, vol.9, issue.11, pp.3189-3196, 1971.
DOI : 10.1002/aic.690090105

P. Hayes, The effect of adsorbed oxygen on the kinetics of chemical reactions on metal surfaces, Metallurgical Transactions B: Process Metallurgy, pp.489-96, 1979.

A. A. El-geassy and V. Rajakumar, Influence of particle size on the gaseous reduction of wustite at 900.apprx.1100 DegC, pp.25-1202, 1985.

O. Devisme, Contribution à l'étude de la réduction des oxydes de fer par l'hydrogène: Mécanisme et cinétique de la réaction, Mémoire présenté en vue d, 2005.

C. Wagner, Mechanism of the reduction of oxides and sulfides to metals, Journal of Metals, pp.214-220, 1952.

D. H. St-john and P. C. Hayes, Microstructural features produced by the reduction of wustite in hydrogen/water gas mixtures, Metallurgical Transactions B: Process Metallurgy, pp.13-117, 1982.

D. H. St, S. P. John, P. C. Matthew, and . Hayes, Establishment of product morphology during the initial stages of wustite reduction, Metallurgical Transactions B: Process Metallurgy, vol.4, pp.15-709, 1984.

E. T. Turkdogan and J. V. Vinters, Gaseous reduction of iron oxides: Part III. Reduction-oxidation of porous and dense iron oxides and iron, Metallurgical Transactions, vol.8, issue.3, p.1561, 1972.
DOI : 10.1002/bbpc.19650690108

J. F. Gransden and J. S. Sheasby, The sticking of iron ore during reduction by hydrogen in a fluidized bed, Canadian Metallurgical Quarterly, vol.227, issue.4, pp.649-657, 1974.
DOI : 10.1007/BF00550020

R. Nicolle and A. Rist, The mechanism of whisker growth in the reduction of wustite, Metallurgical Transactions B: Process Metallurgy, pp.429-467, 1979.

S. Moujahid and A. Rist, The nucleation of iron on dense wustite: A morphological study, Metallurgical Transactions B, vol.18, issue.5, pp.787-802, 1988.
DOI : 10.1007/BF02658451

D. H. St-john, S. P. Matthew, and P. C. Hayes, The Breakdown of Dense Iron Layers on Wustite in Co/Co2 and H2/H2o Systems, Metallurgical Transactions B-Process Metallurgy, vol.4, pp.15-701, 1984.

J. F. Gransden, J. S. Sheasby, and M. A. Bergougnou, Defluidization of iron ore during reduction by hydrogen in a fluidized bed, Chemical Engineering Progress Symposium Series, vol.105, pp.66-208, 1970.

S. P. Matthew, D. H. St, J. V. John, P. C. Hardy, and . Hayes, Techniques for the preparation and examination of partially reduced oxides, Metallography, pp.367-79, 1985.

Y. K. Rao, Mechanism and the intrinsic rates of reduction of metallic oxides, Metallurgical Transactions B: Process Metallurgy, pp.243-55, 1979.

S. K. El-rahaiby and Y. K. Rao, The kinetics of reduction of iron oxides at moderate temperatures, Metallurgical Transactions B: Process Metallurgy, pp.10-257, 1979.

W. Pluschkell and B. V. Sarma, Direct observation of the growth of iron on magnetite, Archiv fuer das Eisenhuettenwesen, pp.161-167, 1973.

H. W. Gudenau, M. Hirsch, H. Denecke, and R. Degel, Process technology problems during the direct reduction of fine iron ore in a fluidized-bed with hydrogen-rich gas, pp.91-99, 1997.

S. Hayashi and Y. Iguchi, Factors Affecting the Sticking of Fine Iron Ores during Fluidized Bed Reduction., ISIJ International, vol.32, issue.9, pp.962-71, 1992.
DOI : 10.2355/isijinternational.32.962

N. Towhidi and J. Szekely, Reduction kinetics of commercial low-silica hematite pellets with carbon monoxide-hydrogen mixtures over the temperature range 600-1234 °C, Ironmaking and Steelmaking, vol.8, issue.6, pp.237-286, 1981.

F. Patisson, B. Dussoubs, and D. Ablitzer, Using Sohn's law of additive reaction times for modeling a multiparticle reactor. The case of the moving bed furnace converting uranium trioxide into tetrafluoride, Advanced Processing of Metals and Materials, Sohn International Symposium, Proceedings, pp.141-153, 2006.

H. Y. Sohn, The law of additive reaction times in fluid-solid reactions, Metallurgical Transactions B: Process Metallurgy, pp.89-96, 1978.

J. R. Culham, M. M. Yovanovich, P. Teerlstra, C. S. Wang, G. Refai-ahmed et al., Simplified Analytical Models for Forced Convection Heat Transfer From Cuboids of Arbitrary Shape, Journal of Electronic Packaging, vol.9, issue.3, pp.182-188, 2001.
DOI : 10.2514/3.678

R. M. German, Sintering theory and practice, 1996.

S. Hébrard, Etude et modélisation des phénomènes de transport de matière couplés à la morphologie de la poudre lors de la pyrohydrolyse réductrice du difluorure d'uranyle, Thèse de doctorat, 2004.

Y. Hiram and A. Nir, A simulation of surface tension driven coalescence, Journal of Colloid and Interface Science, vol.95, issue.2, pp.95-462, 1983.
DOI : 10.1016/0021-9797(83)90206-0

J. B. Guillot, Modèles globaux de réacteurs gaz-solide, Actes de l'école d'été "Elaboration des matériaux et génie des procédés, édités par D. Ablitzer et J.P. Petitet, 2005.

J. Aguilar, R. Fuentes, and R. Viramontes, Simulation of iron ore reduction in a fixed bed, Modelling and Simulation in, Materials Science and Engineering, issue.3 2, pp.131-178, 1995.

Y. Hara, M. Sakawa, and S. Kondo, Mathematical Model of the Shaft Furnace for Reduction of Iron-Ore Pellet, Tetsu-to-Hagane, vol.62, issue.3, pp.315-338, 1976.
DOI : 10.2355/tetsutohagane1955.62.3_315

E. K. Kam and R. Hughes, A model for the direct reduction of iron ore by mixtures of hydrogen and carbon monoxide in a moving bed, Transactions of the Institution of Chemical Engineers, vol.3, pp.59-196, 1981.

E. D. Negri, O. M. Alfano, and M. G. Chiovetta, Moving-Bed Reactor Model for the Direct Reduction of Hematite, Parametric Study, Industrial & Engineering Chemistry Research, vol.12, pp.34-4266, 1995.

D. R. Parisi and M. A. Laborde, Modeling of counter current moving bed gas-solid reactor used in direct reduction of iron ore, Chemical Engineering Journal, vol.104, issue.1-3, pp.1-3, 2004.
DOI : 10.1016/j.cej.2004.08.001

Y. K. Rao and P. Pichestapong, Modeling of the Midrex direct-reduction ironmaking process: Mass transfer and virtual equilibrium at steady state, Symposium Series -South African Institute of Mining and Metallurgy, Proceedings -XVth CMMI Congress, pp.81-92, 1994.

R. H. Spitzer, F. S. Manning, and W. O. Philbrook, Improved mathematical model for gaseous reduction of hematite in a fixed bed, Proceedings], vol.32, pp.85-124, 1966.

R. Takahashi, Y. Takahashi, J. Yagi, and Y. Omori, Operation and simulation of pressurized shaft furnace for direct reduction., Transactions of the Iron and Steel Institute of Japan, vol.26, issue.9, pp.765-774, 1986.
DOI : 10.2355/isijinternational1966.26.765

Y. Takenaka, Y. Kimura, K. Narita, and D. Kaneko, Mathematical model of direct reduction shaft furnace and its application to actual operations of a model plant, Computers & Chemical Engineering, vol.10, issue.1, pp.10-67, 1986.
DOI : 10.1016/0098-1354(86)85047-5

Q. T. Tsay, W. H. Ray, and J. Szekely, The modeling of hematite reduction with hydrogen plus carbon monoxide mixtures: Part II. The direct reduction process in a shaft furnace arrangement, AIChE Journal, vol.22, issue.6, pp.22-1072, 1976.
DOI : 10.1002/aic.690220618

J. Yagi and J. Szekely, The effect of gas and solids maldistribution on the performance of moving-bed reactors: The reduction of iron oxide pellets with hydrogen, AIChE Journal, vol.25, issue.5, pp.25-800, 1979.
DOI : 10.1002/aic.690250508

J. Yagi and J. Szekely, A mathematical formulation for the reduction of iron oxide pellets in moving beds with non-uniform gas and solids flow, pp.17-569, 1977.

T. Yanagiya, J. Yagi, and Y. Omori, Reduction of iron ore pellets in moving bed, Ironmaking Steelmaking, vol.6, pp.93-100, 1979.

K. O. Yu and P. P. Gillis, Mathematical simulation of direct reduction, Metallurgical Transactions B: Process Metallurgy, pp.12-111, 1981.

C. Delcorso, S. Palella, and M. Castore, Mathematical and experimental simulation of the blast furnace stack region, Mathematiche Modelle des Hochofenprozesse, pp.93-101, 1971.

R. H. Spitzer, F. S. Manning, and W. O. Philbrook, Generalized model for the gaseous, topochemical reduction of porous hematite spheres, Transactions of the Metallurgical Society of AIME, pp.236-1715, 1966.

C. Y. Wen and L. T. Fan, Models for flow systems and chemical reactors, 1975.

G. F. Froment and K. B. Bischoff, Chemical reactor analysis and design, 1990.

N. Wakao and S. Kaguei, Heat and mass transfer in packed beds, Gordon and Breach science publishers, 1982.

S. Ergun, Fluid flow through packed columns, Chemical Engineering Progress, vol.48, issue.2, pp.89-94, 1952.

Z. Hashin and S. Shtrikman, A Variational Approach to the Theory of the Effective Magnetic Permeability of Multiphase Materials, Journal of Applied Physics, vol.70, issue.10, p.3125, 1962.
DOI : 10.1063/1.1702301

S. V. Patankar, Numerical heat transfer and fluid flow, 1980.

B. Dussoubs, J. Jourde, F. Patisson, J. L. Houzelot, and D. Ablitzer, Modeling of a moving bed furnace for the production of uranium tetrafluoride. Part 1: formulation of the model, Chemical Engineering Science, vol.12, pp.58-2617, 2003.

K. Lumsden and F. Patisson, The reduction of hematite pellets with hydrogen: thermogravimetric experiments and scanning electron microscope observations, Rapport LSG2M, déc, 2006.