@. L. Desgranges, H. Palancher, M. Gamaléri, J. S. Micha, V. Optasanu et al., Influence of the U3O7 domain structure on cracking during the oxidation of UO2, Influence of the U 3 O 7 domain structure on cracking during the oxidation of UO 2, pp.167-172, 2010.
DOI : 10.1016/j.jnucmat.2010.05.014

URL : https://hal.archives-ouvertes.fr/hal-00772188

@. L. Raceanu, V. Optasanu, T. Montesin, and N. Creton, Pre-Stressed Sub-Surface Contribution on Bulk Diffusion in Metallic Solids, Defect and Diffusion Forum, vol.309, issue.310, pp.309-310
DOI : 10.4028/www.scientific.net/DDF.309-310.149

URL : https://hal.archives-ouvertes.fr/hal-00771464

@. L. Raceanu, V. Optasanu, T. Montesin, and N. Creton, Pre-Strained surface contribution on volume diffusion in stressed solids, Materials with complex behaviour II, en preparation (4th International Conference on Advanced Computational Engineering and Experimenting, 2010.

@. L. Communications-orales-dans-des-congrès-internationaux, V. Raceanu, N. Optasanu, T. Creton, L. Montesin et al., Stress-diffusion coupling in UO 2 , EuroCorr The European Corrosion Congress, pp.6-10, 2009.

@. L. Raceanu, V. Optasanu, T. Montesin, and N. Creton, Pre-Strained surface contribution on volume diffusion in stressed solids, th International Conference on Advanced Computational Engineering and Experimenting, 2010.

@. L. Communications-orales-dans-des-congrès-nationaux, T. Raceanu, L. Montesin, V. Desgranges, and . Optasanu, Rôle de la contrainte mécanique sur l'interface interne du système UO 2 /U 3 O 7, 2009.

@. V. Optasanu, L. Raceanu, T. Montesin, and N. Creton, Influence de la précontrainte sur un processus de diffusion en volume dans un solide déformable, Journées d'Étude sur la Cinétique Hétérogène, Puy en Velay, p.31, 2010.

@. L. Raceanu, T. Montesin, and V. Optasanu, Influence de la précontrainte sur un processus de diffusion en volume dans un solide déformable, 11èmes Journées des Écoles Doctorales Louis Pasteur et Carnot, 2010.

H. Mehrer and N. A. Stolwijk, Heroes and Highlights in the History of Diffusion, Journal for the Basic Principles of Diffusion Theory, Experiment and Application, pp.1-32, 2009.

C. Tujin, On the history of models for solid state diffusion, Diffusion in Materials, DIMAT 96, pp.11-18, 1996.

J. Philibert, One and a Half Century of Diffusion: Fick, Einstein Before and Beyond, Journal for the Basic Principles of Diffusion Theory, Experiment and Application, pp.6-7, 2006.

T. N. Narasimhan, The dichotomous history of diffusion, Physics Today, vol.62, issue.7, pp.48-53
DOI : 10.1063/1.3177228

H. Mehrer, History and Bibliography of Diffusion, Diffusion in Solids Fundamentals, Methods, Materials, Diffusion-Controlled Processes, pp.1-23, 2007.

J. Philibert, Diffusion et transport de matière dans les solides, 1985.

H. Mehrer, Continuum Theory of Diffusion, Springer Series in Solid-State Sciences, 155, I, pp.27-36, 2007.

A. Fick and U. Diffusion, Ueber Diffusion, Annalen der Physik und Chemie, vol.91, issue.1, pp.59-86, 1855.
DOI : 10.1002/andp.18551700105

J. Philibert and . Loi-d, Arrhenius et activation thermique, e-materials, 2002.

S. Fayolle, Thermodiffusion de particules chargées 15 H. Mehrer, Solutions of the Diffusion Equation, Diffusion in Solids Fundamentals, Methods, Materials, Diffusion-Controlled Processes, pp.55-67, 2007.

L. Boltzmann, Zur Integration der Diffusionsgleichung bei variabeln Diffusionscoefficienten, Annalen der Physik, vol.86, issue.13, pp.959-964, 1894.
DOI : 10.1002/andp.18942891315

C. Matano, On the Relation between the Diffusion-Coefficients and Concentrations of Solid Metals (The Nickel-Copper System), Japan J. Phys, vol.8, p.109, 1933.

H. Mellottée, Combustion des métaux, prévention et lutte, Techniques de l'Ingénieur

W. Bollman, Crystal defects and crystalline interfaces, 1970.
DOI : 10.1007/978-3-642-49173-3

R. Bonnet, Etude expérimentale et théorique du joint entre deux phases cristallines, Thèse de Doctorat, 1974.

H. Li, M. G. Glavicic, and J. A. Szpunar, A model of texture formation in ZrO2 films, Materials Science and Engineering: A, vol.366, issue.1, pp.164-174, 2004.
DOI : 10.1016/S0921-5093(02)00787-6

V. I. Stelkov, A. D. Vasilev, and A. M. Medikova, Diffusion under stress along grain boundaries in concentration gradients, Fizika i himiâ obrabotki materialov, pp.102-105, 1986.

F. Nardou, L. Ranaivoniarivo, and M. Billy, Influence de la géométrie de l'échantillon sur l'oxydation du FeCrAl, J. Phys. Chem, vol.85, pp.7-8, 1988.

P. Marcus, Rôle des surfaces et des interfaces dans la corrosion sous contraintes, Corrosion sous contraintes, pp.101-128, 1990.

G. Beranger, J. C. Colson, and F. Dabosi, Rôle des contraintes en corrosion, Corrosion des matériaux à haute température, pp.227-269, 1985.

E. A. Gulbransen and K. F. Andrew, The Kinetics of Oxidation of High Purity Nickel, Journal of The Electrochemical Society, vol.101, issue.3, pp.128-140, 1954.
DOI : 10.1149/1.2781218

J. Rousselet, Influence d'une prédéformation et des impuretés S et C sur la résistance à l'oxydation d'un alliage Ni76Cr16Fe8, Métaux, Corrosion, Industrie, pp.767-773, 1989.

W. S. Gorsky, X-ray examination of transformations in the Cu-Au alloy, Phys. Z. Sowjetunion, vol.8, p.457, 1935.

A. H. Cottrell and B. A. Bilby, Dislocation Theory of Yielding and Strain Ageing of Iron, Proc. Phys. Soc, pp.49-62, 1949.
DOI : 10.1088/0370-1298/62/1/308

J. S. Koehler, Diffusion of Lattice Defects in a Stress Field, Physical Review, vol.181, issue.3, pp.1015-1019, 1969.
DOI : 10.1103/PhysRev.181.1015

G. Alefeld, J. Völlk, and G. Schauman, Elastic Diffusion Relaxation, physica status solidi (b), vol.156, issue.1, pp.337-351, 1970.
DOI : 10.1002/pssb.19700370139

F. Larché and J. W. Cahn, A linear theory of thermochemical equilibrium of solids under stress, Acta Metallurgica, vol.21, issue.8, pp.1051-1063, 1973.
DOI : 10.1016/0001-6160(73)90021-7

F. Larché, Equilibre et diffusion dans les solides a composants multiples sous contraintes, Thèse Académie de Montpellier, 1974.

F. Larché and J. W. Cahn, A nonlinear theory of thermochemical equilibrium of solids under stress, Acta Metallurgica, vol.26, issue.1, pp.53-60, 1977.
DOI : 10.1016/0001-6160(78)90201-8

F. Larché and J. W. Cahn, The effect of self-stress on diffusion in solids, Acta Metallurgica, vol.30, issue.10, pp.1835-1845, 1982.
DOI : 10.1016/0001-6160(82)90023-2

F. Larché and J. W. Cahn, Overview no. 41 The interactions of composition and stress in crystalline solids, Acta Metallurgica, vol.33, issue.3, pp.331-357, 1985.
DOI : 10.1016/0001-6160(85)90077-X

F. Larché and J. W. Cahn, Phase changes in a thin plate with non-local self-stress effects, Acta Metallurgica et Materialia, vol.40, issue.5, pp.947-955, 1992.
DOI : 10.1016/0956-7151(92)90071-L

A. M. Simon and Z. J. Grzywna, On the Larch??-Cahn theory for stress-induced diffusion, Acta Metallurgica et Materialia, vol.40, issue.12, pp.3465-3473, 1992.
DOI : 10.1016/0956-7151(92)90061-I

S. Y. Hu and L. Q. Chen, Diffuse-interface modeling of composition evolution in the presence of structural defects, Computational Materials Science, vol.23, issue.1-4, pp.270-282, 2002.
DOI : 10.1016/S0927-0256(01)00206-3

A. Adrover, M. Gioana, L. Capobianco, P. Tripodi, and V. Violante, Stress-induced diffusion of hydrogen in metallic membranes: cylindrical vs. planar formulation. I, Journal of Alloys and Compounds, vol.358, issue.1-2, pp.268-280, 2003.
DOI : 10.1016/S0925-8388(03)00035-5

A. Adrover, M. Gioana, L. Capobianco, P. Tripodi, and V. Violante, Stress-induced diffusion of hydrogen in metallic membranes: cylindrical vs. planar formulation. II, Journal of Alloys and Compounds, vol.358, issue.1-2, pp.157-167, 2003.
DOI : 10.1016/S0925-8388(03)00036-7

D. L. Beke, I. A. Szabo, Z. Erdélyi, and G. Opposits, Diffusion-induced stresses and their relaxation, Materials Science and Engineering: A, vol.387, issue.389, pp.387-389, 2004.
DOI : 10.1016/j.msea.2004.01.065

A. Adrover, M. Gioana, L. Capobianco, and V. Violante, Effects of self-stress on hydrogen diffusion in Pd membranes in the coexistence of ?? and ?? phases, Journal of Alloys and Compounds, vol.368, issue.1-2, pp.287-297, 2004.
DOI : 10.1016/j.jallcom.2003.06.003

F. Yang, Interaction between diffusion and chemical stresses, Materials Science and Engineering: A, vol.409, issue.1-2, pp.153-159, 2005.
DOI : 10.1016/j.msea.2005.05.117

C. H. Wu, Stress-driven diffusion in a deforming and evolving elastic circular tube of single component solid with vacancies, International Journal of Fracture, vol.49, issue.1-4, pp.227-234, 2007.
DOI : 10.1007/s10704-007-9168-0

S. Garruchet, T. Montesin, H. Sabar, M. Salazar, and G. Bertrand, Prise en compte des contraintes mécaniques dans la modélisation de la cinétique d'oxydation d'un métal, Proceedings du CMM 7, 2005.

S. Garruchet, Modélisation de phénomènes locaux : vers leur prise en compte dans la simulation de la cinétique d'oxydation d'un métal, 2006.

T. Christiansen, K. V. Dahl, and M. A. Somers, Nitrogen diffusion and nitrogen depth profiles in expanded austenite: experimental assessment, numerical simulation and role of stress, Materials Science and Technology, vol.8, issue.2, pp.24-26, 2008.
DOI : 10.1016/S0257-8972(03)00454-7

T. L. Christiansen and M. Somers, Low-temperature gaseous surface hardening of stainless steel: the current status, International Journal of Materials Research, vol.100, issue.10, pp.1361-1377, 2009.
DOI : 10.3139/146.110202

Z. Honggang, Q. J. Qu, and M. Cherkaoui, Finite element analysis of oxidation induced metal depletion at oxide?metal interface, Comp. Mater. Sci, vol.48, pp.842-847, 2010.

J. B. Leblond and D. Dubois, A general mathematical description of hydrogen diffusion in steels, Acta Met, vol.331, pp.1459-1478, 1983.

I. Moro, Fragilisation par l'hydrogène gazeux d'un acier ferrito-perlitique de grade API X80, 2009.

B. Pieraggi, R. A. Rapp, F. J. Van-loo, and J. P. Hirth, Interfacial dynamics in diffusion-driven phase transformations, Acta Metallurgica et Materialia, vol.38, issue.9, pp.1781-1788, 1990.
DOI : 10.1016/0956-7151(90)90020-H

I. Desvignes, Contraintes mécaniques, cohérence interfaciale et cinétique dans l'oxydation des métaux : application d'une modélisation au zirconium, 1999.

J. Favergeon, Anisotropie dans l'oxydation du zirconium et deses alliages Conésquences cinétiques, texturale et mécaniques.Apports expérimentaux et de modélisation, 2001.

F. Desserrey, Comportement mécano-chimique du nickel vis à vis de l'oxygène à haute température. Aspects expérimentaux et prévisionnels, 2002.

A. M. Huntz, M. Andrieux, and R. Molins, Relation between the oxidation mechanism of nickel, the microstructure and mechanical resistance of NiO films and the nickel purity, Materials Science and Engineering: A, vol.415, issue.1-2, pp.21-32, 2006.
DOI : 10.1016/j.msea.2005.08.225

URL : https://hal.archives-ouvertes.fr/hal-00154848

K. Messaoudi, A. M. Huntz, and L. D. Menza, Residual Stresses in Alumina Scales. Experiments, Modeling, and Stress-Relaxation Phenomena, Oxidation of Metals, vol.53, issue.1/2, pp.49-75, 2000.
DOI : 10.1023/A:1004530729859

A. M. Huntz, S. Daghigh, A. Piant, and J. L. Lebrun, Evidence of stress relaxation in thermally grown oxide layers???experiments and modelling, Materials Science and Engineering: A, vol.248, issue.1-2, pp.44-55, 1998.
DOI : 10.1016/S0921-5093(98)00519-X

C. Valot, Techniques de diffraction RX et dynamique spatio-temporelle de l'oxydation des métaux des groupes 4 et 5: application au zirconium, Thèse de Doctorat, 1995.

N. Pétigny, Comparaison de l'oxydation de deux alliages de zirconium par diffraction des rayons X in-situ et ex-situ: texture, phase, contrainte, Thèse de Doctorat, 1999.

G. Carlot, Diffusion de l'iode dans le zirconium : influence des éléments d'alliage et de l'hydruration, Thèse de Doctorat, 2000.

J. Debuigne, Contribution à l'étude de l'oxydation du zirconium et de la diffusion de l'oxygène dans l'oxyde et dans le métal, Thèse de Doctorat, 1966.

R. F. Domagala and D. J. Mcpherson, System zirconium-oxygen, J. Metals, Transactions of the AIME, pp.238-246, 1954.

P. Bossis, Mécanismes de corrosion du Zircaloy-4 et de l'alliage Zr-1Nb en eau pressurisée hors et sous irradiation : rôle des interfaces, Thèse de Doctorat, 1999.

L. Gosmain, Contraintes mécaniques et réactivité lors de l'oxydation des alliages Zy-4 et Zr1%NbO -Analyses in-situ par diffraction des rayons X, Thèse de Doctorat, 2001.

J. P. Abriata, J. Garcés, and R. Versaci, The O-Zr (Oxygen-Zirconium) system, Bulletin of Alloy Phase Diagrams, pp.116-128, 1986.

B. Cox and J. P. Pemsler, Diffusion of oxygen in growing zirconia films, Journal of Nuclear Materials, vol.28, issue.1, pp.73-78, 1968.
DOI : 10.1016/0022-3115(68)90058-5

E. De-paula, E. Silva, J. Com-nougué, G. Béranger, and P. Lacombe, Relation entre la cinetique de vieillissement apres deformation du zirconium-?? et la diffusion anisotrope de l'oxygene a courte distance, Scripta Metallurgica, vol.5, issue.9, pp.795-800, 1971.
DOI : 10.1016/0036-9748(71)90166-9

K. Veevers, W. B. Rotsey, and K. U. Snowden, Applications related phenomena in zirconium and its alloys, ASTM STP, p.458, 1969.

I. G. Ritchie, H. E. Rosinger, and A. Atrens, Anelastic relaxation and the diffusion of oxygen in alpha-zirconium, Journal of Nuclear Materials, vol.62, issue.1, pp.1-8, 1976.
DOI : 10.1016/0022-3115(76)90278-6

D. David, G. Amsel, P. Boisot, and G. Beranger, A Study of the Diffusion of Oxygen in Alpha-Zirconium by Means of Nuclear Microanalysis, Journal of The Electrochemical Society, vol.122, issue.3, p.388, 1969.
DOI : 10.1149/1.2134221

M. Dechamps, Contribution à l'étude des interactions solide-gaz. Cas de l'oxydation du zirconium, du titane et titane-zirconium sous pression réduite d'oxygène, Thèse de Doctorat, 1972.

G. Beranger and P. Lacombe, Contribution a l'etude de la cinetique de l'oxydation du zirconium ?? et de la diffusion de l'oxygene dans le metal sous-jacent a l'oxyde, Journal of Nuclear Materials, vol.16, issue.2, p.190, 1965.
DOI : 10.1016/0022-3115(65)90052-8

I. G. Ritchie and A. Atrens, The diffusion of oxygen in alpha-zirconium, Journal of Nuclear Materials, vol.67, issue.3, pp.254-264, 1977.
DOI : 10.1016/0022-3115(77)90097-6

R. Stevens, Zirconia ans Zirconia Ceramics, 1986.

P. Kofstad, High temperature corrosion, 1988.

B. Cox and C. Roy, Transport of Oxygen in Oxide Films on Zirconium determined by the nuclear reaction 17 O ( 3 H,?) 16 O, Canadian Report, p.2350, 1965.

B. Cox and A. Donner, The morphology of thick oxide films on Zircaloy-2, Journal of Nuclear Materials, vol.47, issue.1, pp.72-78, 1973.
DOI : 10.1016/0022-3115(73)90188-8

B. Cox, The zirconium ? zirconia interface, Journal of Australian Institute of Metals, vol.29, pp.50-66, 1969.

H. E. Evans, D. J. Norfolk, and T. Swan, Perturbation of Parabolic Kinetics Resulting from the Accumulation of Stress in Protective Oxide Layers, Journal of The Electrochemical Society, vol.125, issue.7, pp.1180-1185, 1978.
DOI : 10.1149/1.2131644

C. Dollins and M. Jursich, A model for the oxidation of zirconium-based alloys, Journal of Nuclear Materials, vol.113, issue.1, pp.19-24, 1983.
DOI : 10.1016/0022-3115(83)90161-7

J. Godlewski, J. P. Gros, M. Lambertin, J. F. Wadier, and H. Weidinger, Raman spectroscopy study of the tetragonal-to-monoclinic transition in zirconium oxide scales and determination of overall oxygen diffusion by nuclear microanalysis of the O 18, Zirconium In the Nuclear Industry, 9th international symposium, pp.416-436, 1991.

E. M. Levin and H. F. Mcmurdie, Phase Diagrams for Ceramists, Am. Ceram. Soc. Bull, INC, vol.3, pp.76-77, 1975.

A. Métivier, Etude expérimentale et théorique de l'évolution texturale et structurale des poudres de zircone pures et dopées, Thèse de l'Institut National Polytechnique de Grenoble, 1992.

H. Tomaszewski and K. Godwod, Influence of oxygen partial pressure on the metastability of undoped zirconia dispersed in alumina matrix, Journal of the European Ceramic Society, vol.15, issue.1, pp.17-23, 1995.
DOI : 10.1016/0955-2219(95)91295-Y

S. Block, J. A. Da-jordana, and G. J. Piermarini, Pressure-Temperature Phase Diagram of Zirconia, Journal of the American Ceramic Society, vol.3, issue.9, pp.497-499, 1985.
DOI : 10.1107/S0365110X62003114

J. Godlewski, Oxydation d'alliages de zirconium en vapeur d'eau : influence de la zircone tétragonale sur le mécanisme de croissance de l'oxyde, 1990.

G. David, R. Geschier, and C. Roy, Etude de la croissance de l'oxyde sur le zirconium et le zircaloy-2, Journal of Nuclear Materials, vol.38, issue.3, pp.329-339, 1971.
DOI : 10.1016/0022-3115(71)90062-6

D. H. Bradhurst and P. M. Heuer, The influence of oxide stress on the breakaway oxidation of zircaloy-2, Journal of Nuclear Materials, vol.37, issue.1, pp.35-47, 1970.
DOI : 10.1016/0022-3115(70)90180-7

O. Gebhardt, A. Hermann, G. Bart, H. Blank, F. Garzarolli et al., Investigation of inpile grown corrosion films on Zirconium-based alloys, Zirconium in the Nuclear Industry, Eleventh International Symposium, American Society for Testing Materials (ASTM) special technical publication, pp.218-241, 1996.

B. Hutchinson and B. Lehtinen, A theory of the resistance of Zircaloy to uniform corrosion, Journal of Nuclear Materials, vol.217, issue.3, pp.243-249, 1994.
DOI : 10.1016/0022-3115(94)90373-5

P. Boisot, G. Béranger, and R. Penelle, Etude quantitative des textures développées par la zircone formée par oxydation à 850°C du zirconium polycristallin, pp.257-260, 1970.

A. I. Evstyukhin, I. I. Korobkov, and V. V. Osipov, Intermetallic compounds of zirconium and their influence on the corrosion properties of zirconium alloys, Soviet Atomic Energy, vol.3, issue.3, pp.262-267, 1970.
DOI : 10.1007/BF01403912

N. Niku-lari, J. Lu, and J. F. Flavenot, Caractérisation de solides cristallisés par diffraction X, Techniques de l'Ingénieur, http://www.techniques-ingenieur.fr, 17 p. 101 A Measurement of residual stress distribution by the incremental hole-drilling method, Advances in surface treatments, pp.199-217, 1978.

J. P. Laude and P. Chapon, Techniques de l'Ingénieur, http://www.techniques-ingenieur.fr, 18 p. 104 G. Anciaux, Simulation multi-échelles des solides par une approche couplée dynamique moléculaire/éléments finis, GDOS et GDMS), vol.1, 2007.

J. P. Nougier, Méthodes de calcul numérique, p.328, 1993.

O. C. Zienkiewicz and Y. K. Cheung, The finite element method for analysis of elastic isotropic and orthotropic slabs, Proc. Inst. Civ. Eng, vol.28, pp.471-88, 1964.

K. J. Bathe, Finite Element Procedures, p.1037, 1996.

M. Rappaz, M. Bellet, and M. Deville, Modélisation numérique en science et génie des matériaux, Traité des Matériaux, tome 10, Presses Polytechniques et Universitaires Romandes, p.551, 1998.

M. Bonnet and A. Frangi, Analyse des solides déformables par la méthode des éléments fini, p.298, 2006.

N. Creton, V. Optasanu, T. Montesin, S. Garruchet, and L. Desgranges, A Thermodynamic Approach of the Mechano-Chemical Coupling during the Oxidation of Uranium Dioxide, Defect and Diffusion Forum, vol.289, issue.292, pp.289-292, 2009.
DOI : 10.4028/www.scientific.net/DDF.289-292.447

URL : https://hal.archives-ouvertes.fr/hal-00416172

N. Montesin and . Creton, Influence of the U 3 O 7 domain structure on cracking during the oxidation of UO 2, J. Nucl. Mater, vol.402, pp.2-3, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00772188

. Dejardin, Internal Interface Strains Effects on UO 2 /U 3 O 7 Oxidation Behaviour, Defect Diffus Forum, pp.297-301, 2010.

K. K. Bae, B. G. Kim, Y. W. Lee, H. S. Yang, and P. , Oxidation behavior of unirradiated UO2 pellets, Journal of Nuclear Materials, vol.209, issue.3, pp.274-279, 1994.
DOI : 10.1016/0022-3115(94)90263-1

J. Godlewski, P. Bouvier, G. Lucazeau, and L. Fayette, Stress Distribution Measured by Raman Spectroscopy in Zirconia Films Formed by Oxidation of Zr-Based Alloys, pp.877-887, 1354.
DOI : 10.1520/STP14332S

A. Adrover, M. Giona, L. Capobianco, P. Tripodi, and V. Violante, Stress-induced diffusion of hydrogen in metallic membranes: cylindrical vs. planar formulation. I, Journal of Alloys and Compounds, vol.358, issue.1-2, pp.268-280, 2003.
DOI : 10.1016/S0925-8388(03)00035-5

J. Favergeon, T. Montesin, and G. Bertrand, Mechano-Chemical Aspects of High Temperature Oxidation: A Mesoscopic Model Applied to Zirconium Alloys, Oxidation of Metals, vol.216, issue.217, pp.253-279, 2005.
DOI : 10.1007/s11085-005-6563-7

A. K. Jha, S. Manwatkar, and K. Sreekumar, Hydrogen-induced intergranular stress corrosion cracking (HI-IGSCC) of 0.35C-3.5Ni-1.5Cr-0.5Mo steel fastener, Eng. Failure Anal, pp.17-21, 2010.

A. Niepce and . Poulesquen, On the origin of the sigmoid shape in the UO 2 oxidation weight gain curves, J. Eur. Ceram. Soc, vol.29, pp.2791-2798, 2009.
URL : https://hal.archives-ouvertes.fr/hal-00489435

G. Rousseau, L. Desgranges, J. C. Niepce, G. Baldinozzi, and J. F. Berar, A detailed study of UO 2 to U 3 O 8 oxidation phases and the associated rate-limiting steps, J. Phys. IV, vol.118, pp.127-134, 2004.
URL : https://hal.archives-ouvertes.fr/hal-00115276

R. J. Mceachern and P. Taylor, A review of the oxidation of uranium dioxide at temperatures below 400??C, Journal of Nuclear Materials, vol.254, issue.2-3, pp.87-121, 1998.
DOI : 10.1016/S0022-3115(97)00343-7

N. Montesin and . Creton, Influence of the U 3 O 7 domain structure on cracking during the oxidation of UO 2, J. Nucl. Mater, vol.402, pp.167-172, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00772188

P. Taylor, E. A. Burgess, and D. G. Owen, An X-ray diffraction study of the formation of ??-UO2.33 on UO2 pellet surfaces in air at 229 to 275??C, Journal of Nuclear Materials, vol.88, issue.1, pp.153-160, 1980.
DOI : 10.1016/0022-3115(80)90395-5

I. Salles-desvignes, T. Montesin, C. Valot, J. Favergeon, G. Bertrand et al., Near-coincidence lattice method for the determination of epitaxy strains during oxidation of metals, Acta Materialia, vol.48, issue.7, pp.1505-1515, 2000.
DOI : 10.1016/S1359-6454(99)00446-2

W. Breitung, Oxygen self and chemical diffusion coefficients in, Journal of Nuclear Materials, vol.74, issue.1, pp.10-18, 1978.
DOI : 10.1016/0022-3115(78)90527-5

M. Dodé and B. Touzelin, Direct study in X-rays in controlled atmosphere of equilibrium of uranium oxides oxidation from 1150 till 1200 °C, Inorg. Chem. Rev, vol.9, pp.139-152, 1972.

V. Retel-guicheret, F. Trivaudey, M. L. Boubakar, and P. Thevenin, Elastic and viscoplastic pellets fragmentation modeling using an axisymmetrical 1D finite element code, Nuclear Engineering and Design, vol.232, issue.3, pp.249-262, 2004.
DOI : 10.1016/j.nucengdes.2004.07.003

H. R. Hoekstra, A. Santoro, and S. Siegel, The low temperature oxidation of UO2 and U4O9, Journal of Inorganic and Nuclear Chemistry, vol.18, pp.166-178, 1961.
DOI : 10.1016/0022-1902(61)80384-9

G. C. Allen and N. R. Holmes, A mechanism for the UO 2 to ?-U 3 O 8 phase transformation, J. Nucl. Mater, vol.223, pp.223-231, 1995.

H. R. Hoekstra, A. Santoro, and S. Siegel, The low temperature oxidation of UO2 and U4O9, Journal of Inorganic and Nuclear Chemistry, vol.18, pp.166-178, 1961.
DOI : 10.1016/0022-1902(61)80384-9

Y. F. Ma and J. Y. Li, Magnetoelastic domains and magnetic field-induced strains in ferromagnetic shape memory alloys by phase-field simulation, Appl. Phys. Lett, vol.90, pp.10-1063, 2007.

J. C. Niepce and G. Watelle, Structural transformation of the brucite hydroxides type decomposition reaction, J. Chim. Phys, vol.87, pp.1285-1306, 1990.

C. Valot, D. Ciosmak, and M. Lallemant, Spatiotemporal dynamics in the oxidation of groups IV-V metals: study of zirconium, Solid State Ionics, pp.769-774, 1997.

S. Garruchet, T. Montesin, H. Sabar, M. Salazar, and G. Bertrand, An Interfacial Thermodynamic Model for the Oxidation Kinetics of a Metal: Epitaxial Stress Effects, Materials Science Forum, vol.461, issue.464, pp.461-464, 2004.
DOI : 10.4028/www.scientific.net/MSF.461-464.611

C. Wagner, Oxidation of Alloys Involving Noble Metals, Journal of The Electrochemical Society, vol.103, issue.10, p.571, 1956.
DOI : 10.1149/1.2430159

W. Bollman, Crystal Defects and Crystalline Interfaces, 1970.
DOI : 10.1007/978-3-642-49173-3

K. Ammar, B. Appolaire, G. Cailletaud, F. Feyel, and S. Forest, Finite element formulation of a phase field model based on the concept of generalized stresses, Computational Materials Science, vol.45, issue.3, pp.800-805, 2009.
DOI : 10.1016/j.commatsci.2008.09.015

URL : https://hal.archives-ouvertes.fr/hal-00379237

J. Godlewski, Oxydation d'alliages de zirconium en vapeur d'eau : influence de la zircone tétragonale sur le mécanisme de croissance de l'oxyde, Thèse de Doctorat, 1990.

A. Denis and E. A. Garcia, Diffusion in a semi-infinite system with a moving interphase considering solvent density change: application to the oxidation of zirconium, Journal of Nuclear Materials, vol.96, issue.1-2, pp.127-140, 1981.
DOI : 10.1016/0022-3115(81)90226-9

P. Bossis, Mécanismes de corrosion du Zircaloy-4 et de l'alliage Zr-1Nb en eau pressurise hors et sous irradiation : rôle des interfaces, Thèse de Doctorat, 1999.

M. Parise, Mécanismes de corrosion des alliages de zirconium Etude des cinétiques initiales d'oxydation et du comportement mécanique du système métal/oxyde, Thèse de Doctorat, 1996.

N. Pétigny, Comparaison de l'oxydation de deux alliages de zirconium par diffraction des rayons X in-situ et ex-situ : texture, phase, contrainte, Thèse de Doctorat, 1999.

L. Gosmain, Contraintes mécaniques et reactivité lors de l'oxydation des alliages Zy-4 et Zr1%NbO Analyses in-situ par diffraction des rayons X, Thèse de Doctorat, 2001.

N. B. Pilling and R. E. Bedworth, The oxidation of metals at high temperatures, J. Inst. Metals, vol.29, pp.529-591, 1923.

L. B. Freund, Evolution of waviness on the surface of a strained elastic solid due to stress-driven diffusion, International Journal of Solids and Structures, vol.32, issue.6-7, pp.911-923, 1995.
DOI : 10.1016/0020-7683(94)00168-V

I. Demoulin, D. Ciosmak, and M. Lallemant, Ondulation de l'interface metal/oxide dans le cas des alliages Ti-Zr, Journal de Physique IV, vol.3, pp.115-122, 1993.

J. Barralis, L. Castex, and G. Maeder, Précontraintes et traitements superficiels, Techniques de l'Ingénieur, traité Matériaux métalliques, CETIM Senlis, 1976.

D. Li, H. N. Chen, and H. Xu, The effect of nanostructured surface layer on the fatigue behaviors of a carbon steel, Applied Surface Science, vol.255, issue.6, pp.3811-3816, 2009.
DOI : 10.1016/j.apsusc.2008.10.037

J. Lu, Traitements de surface mécaniques, Techniques de l'Ingénieur

I. Lillamand, Evolution d'une couche grenaillée sous sollicitations thermiques et mécaniques, cas de la fatigue oligocyclique, Thèse ENSAM, 1998.

G. Liu, J. Lu, and K. Lu, Surface nanocrystallization of 316L stainless steel induced by ultrasonic shot peening, Materials Science and Engineering: A, vol.286, issue.1, pp.91-95, 2000.
DOI : 10.1016/S0921-5093(00)00686-9

G. Amsel, D. David, G. Béranger, and P. Boisot, Applications métallurgiques de microanalyse par l'observation directe de réactions nucléares, pp.373-386, 1968.

T. A. Hayes, M. E. Kassner, D. Amick, and R. S. Rosen, The thermal stability of surface deformed zirconium, Journal of Nuclear Materials, vol.246, issue.1, pp.60-69, 1997.
DOI : 10.1016/S0022-3115(97)00034-2

J. Lu, Fatigue des alliages ferreux, Techniques de l'Ingénieur

D. Charquet, Traitements thermiques du zirconium et hafnium, Techniques de l'Ingénieur, p.336, 1998.

D. Tabor, The hardness of metals, p.175, 2000.