, Dans un premier temps, l'évolution de température d'une plaque de gadolinium insérée dans l'entrefer et la mesure de l'EMC du gadolinium à l'aide d'une caméra thermique et de thermocouples sont comparées aux résultats de leur simulation par notre modèle magnétostatique semi-analytique pour une première validation. Par la suite, différents essais sont réalisés dans le but d'observer l'ensemble des phénomènes se déroulant au coeur du régénérateur magnétocalorique implanté dans l'électroaimant. À cet effet, l'évolution de l'induction magnétique, le déplacement hydraulique, l'évolution des températures et des pressions mesurés aux extrémités du régénérateur pendant les cycles AMR font l'objet d'une investigation spécifique plus précise, Résumé Ce chapitre expose les résultats expérimentaux obtenus sur le banc magnétocalorique développé au sein du département Energie du laboratoire FEMTO-ST

A. Aharoni, Demagnetizing factors for rectangular ferromagnetic prisms, Applied physics, vol.83, issue.6, pp.3432-3434, 1998.

F. Allab, A. Kedous-lebouc, J. Fournier, and J. Yonnet, Numerical modeling for active magnetic regenerative refrigeration, IEEE Trans. Magn, vol.41, issue.10, pp.3757-3759, 2005.
URL : https://hal.archives-ouvertes.fr/hal-00164210

M. Almanza, A. Kedous-lebouc, J. P. Yonnet, U. Legait, and J. Roudaut, Magnetic refrigeration: recent developments and alternative configurations, European Physical Journal: Ap-plied Physics, vol.71, issue.1, p.10903, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01315678

M. Almanza, A. Pasko, F. Mazaleyrat, and M. Lo-bue, First vs second order magnetocaloric material for thermomagnetic energy conversion, IEEE Transactions on Magnetics, vol.53, issue.11, pp.1-6, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01514750

M. Almanza, A. Pasko, F. Mazaleyrat, L. Bue, and M. , Numerical study of thermomagnetic cycle, J. Magn. Magn. Mater, vol.426, pp.64-69, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01790625

S. Amrane, Développement d'un capteur pour la mesure simultanée de température et d'humidité, 2014.

C. Aprea, A. Greco, and A. Maiorino, A numerical analysis of an active magnetic regenerative cascade system, Third International Conference on Magnetic Refrigeration at Room Temperature, pp.259-265, 2009.

C. Aprea and A. Maiorino, A flexible numerical model to study an active magnetic refrigerator for near room temperature applications, 2010.

. Arcel, Electronique de puissance, assemblages de puissance

, Asensor Technology AB, Linear High Precision Analog Hall sensors

A. Bagnérés and S. Durbiano, Calcul du champ démagnétisant dans un matériau magnétique de géométrie quelconque par une technique de transformée de Fourier et la méthode du domaine fictif, 1997.

C. Bahl, T. F. Petersen, N. Pryds, and S. A. , A versatile magnetic refrigeration test device. The Review of scientific instruments, vol.79, p.93906, 2008.

C. R. Bahl, K. Engelbrecht, D. Eriksen, J. A. Lozano, R. Bjørk et al., Development and experimental results from a 1 kW prototype AMR, International Journal of Refrigeration, vol.37, pp.78-83, 2014.

M. Balli, O. Sari, C. Mahmed, . Besson-ch, . Bonhote-ph et al., A pre-industrial magnetic cooling system for room temperature application, Applied Energy, vol.98, pp.556-561, 2012.

M. Balli, S. Jandl, P. Fournier, and A. Kedous-lebouc, Advanced materials for magnetic cooling: Fundamentals and practical aspects, Applied Physics Reviews, vol.4, p.21305, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01591159

C. B. Barber, D. P. Dobkin, and H. T. Huudanpaa, The Quickhull algorithm for convex hulls, ACM Transactions on Mathematical Software, vol.22, issue.4, pp.469-483, 1996.

J. A. Barclay and W. A. Steyert, Active magnetic regenerator, Brevet US4332135, 1982.

J. A. Barclay, Magnetic refrigeration -A review of a developing technology, Adv. Cryog. Eng, vol.33, pp.719-731, 1988.

R. Bjørk, C. R. Bahl, A. Smith, D. V. Christensen, and N. Pryds, An optimized magnet for magnetic refrigeration, Journal of Magnetism and Magnetic Materials, vol.322, pp.3324-3328, 2010.

R. Bjørk, , 2014.

P. E. Blumenfeld, F. C. Prenger, A. Sternberg, and C. B. Zimm, High temperature superconducting magnetic refrigeration, Advances in Cryogenic Engineering, vol.47, pp.1019-1026, 2002.

J. Bouchard, H. Nesreddine, and N. Galanis, Model of a porous regenerator used for magnetic refrigeration at room temperature, Int. J. Heat Mass Transf, vol.52, issue.5-6, pp.1223-1229, 2009.

S. Bour, . Hamm-jl, H. Michot, and C. Muller, Experimental and numerical analysis of a reciprocating room temperature active magnetic regenerator, Proceedings of the Third International Conference on Magnetic Refrigeration at Room Temperature, pp.415-424, 2009.

B. Bourret, Les échangeurs de chaleur, Cours du département de Génie Civil

F. Toulouse,

P. Brissonneau, Magnétisme et matériaux magnétiques pour l'électrotechnique, 1997.

. Paris, , 1997.

G. V. Brown, Magnetic heat pumping near room temperature, Journal of Applied Physics, vol.47, pp.3673-3680, 1976.

G. V. Brown, Practical and efficient magnetic heat pump, NASA Tech. Brief, vol.3, pp.190-191, 1978.

Y. A. Çengel, M. A. Boles, and M. Lacroix, Thermodynamique : une approche pragmatique, 2014.

D. X. Chen, J. A. Brug, and R. Goldfarb, Demagnetizing factors for cylinders, IEEE Transactions on Magnetics, vol.27, issue.4, pp.3601-3619, 1991.

Y. Chen, E. Luo, and W. Dai, Heat transfer characteristics of oscillating flow regenerator filled with circular tubes or parallel plates, Cryogenics, vol.47, pp.40-48, 2007.

Y. G. Chen, Y. B. Tang, B. M. Wang, Q. X. Xue, and M. J. Tu, A permanent magnet rotary magnetic refrigerator, Proceedings of the Second International Conference on Magnetic Refrigeration at Room Temperature, pp.309-315, 2007.

Z. Cheng, H. Jiaohong, Y. Hongwei, J. Peiyu, C. Juan et al., Design and research of the room temperature magnetic wine cabinet, Proceedings of the Seventh International Conference on Magnetic Refrigeration at Room Temperature, pp.63-66, 2016.

A. A. Coelho, S. Gama, A. Magnus, and G. Carvalho, Prototype of a Gd-based rotaring magnetic refrigerator for work around room temperature, Proceedings of the Third International Conference on Magnetic Refrigeration at Room Temperature, pp.381-386, 2009.

W. Dai, B. G. Shen, D. X. Li, and Z. X. Gao, Application of high-energy Nd-Fe-B magnets in the magnetic refrigeration, J. Magn. Magn. Mat, vol.218, pp.25-30, 2000.

S. Dan'kov, . Yu, A. M. Tishin, V. K. Pecharsky, and K. A. Gschneidner, Magnetic phase transitions and the magnetothermal properties of gadolinium, Physical Review B, vol.57, issue.6, pp.3478-3490, 1997.

J. Darby, Experiments on the production of very low temperatures by two-stage demagnetization, Proc. Phys. Soc. A, vol.64, issue.10, p.861, 1951.

P. Debye, Einige bemerkungen zur magnetisierung bei tiefer temperatur, Ann. Phys. (Berlin), vol.81, pp.1154-1160, 1926.

J. Dikeos, A. Rowe, and A. Tura, Numerical analysis of an active magnetic regenerator (AMR) refrigeration cycle, AIP Conf. Proc, vol.823, issue.1, pp.993-1000, 2006.

D. P. Hydraulique-automatisme, Spécialiste de la machine hydraulique offshore en France

C. Dupuis, Matériaux à effet magnétocalorique géant et systèmes de réfrigération magnétique, 2009.

E. T. , Pyromagnetic Motor.US PatentUS380100, 1888.

E. T. , Pyromagnetic Generator.US PatentUS476983, p.1892

, Répartition de la consommation d'électricité au sein d'un foyer français, Appareils domestiques, 2017.

K. Engelbrecht, A Numerical Model of an Active Magnetic Regenerator Refrigerator with Experimental Validation, 2008.

K. Engelbrecht, C. R. Bahl, and K. K. Nielsen, Experimental results for a magnetic refrigerator using three different types of magnetocaloric aterial regenerators, International Journal of Refrigeration, vol.34, pp.1132-1140, 2011.

K. Engelbrecht, D. Eriksen, C. Bahl, R. Bjørk, J. Geyti et al., Experimental results for a novel rotary active magnetic regenerator, International Journal of Refrigeration, vol.35, issue.6, pp.1498-1505, 2012.

M. Feidt, Thermodynamique et optimisation énergétique des systèmes et procédés. Tec & Doc (editions), 2016.

. Flir-systems and . Titanium,

V. Franco, A. Conde, J. M. Romero-enrique, Y. I. Spichkin, V. I. Zverev et al., Field dependence of the adiabatic temperature change in second order phase transition materials: Application to Gd, Journal of Applied Physics, vol.106, 2009.

D. Gedeon, Mean-parameter modeling of oscillating flow, ASME. J. Heat transfer, vol.108, issue.3, pp.513-518, 1986.

K. A. Gschneidner, A. O. Pecharsky, V. K. Pecharsky, T. A. Lograsso, and D. L. Schlagel, Production of the giant magnetocaloric effect Gd5(SixGe1-x)4 magnetic refrigerant materials from commercial gadolinium metal, Rare Earths and Actinides: Science, Technology and Applications Iv, pp.63-72, 2000.

K. A. Gschneidner, V. K. Pecharsky, and A. O. Tsokol, Recent developments in magnetocaloric materials, Reports on Progress in Physics, vol.68, issue.6, pp.1479-1539, 2005.

G. Green, J. Chafe, J. Stevens, and J. Humphrey, A gadolinium-terbium active magnetic regenerator, Advances in Cryogenic Engineering, vol.35, p.1165, 1990.

R. Grossinger, M. Haas, and R. Sato-turtelli, Magnetocaloric versus thermoelectric effect -new systems for thermal applications, Thermag IV : Fourth International Conference on Magnetic Refrigeration at Room Temperature, pp.15-29, 2010.

C. V. Heer and J. G. Daunt, Heat flow in metals below 1°K and a new method for magnetic cooling, Phys. Rev, vol.76, issue.6, pp.854-855, 1949.

C. V. Heer, C. B. Barnes, and J. G. Daunt, Magnetic refrigerator for maintaining temperatures below 1°K, Phys. Rev, vol.91, issue.2, pp.412-413, 1953.

C. V. Heer, C. B. Barnes, and J. G. Daunt, The design and operation of a magnetic refrigerator for maintaining temperatures below 1°K, Rev. Sci. Instr, vol.25, issue.11, pp.1088-1098, 1954.

J. H. Huang, J. R. Liu, P. Y. Jin, H. W. Yan, J. F. Qiu et al., Development of permanent magnetic refrigerator at room temperature, Rare Metals, vol.25, issue.6, pp.641-644, 2006.

. Huber, Ministat 230 Cryothermostat compact à bain et à circulation

F. P. Incropera and D. P. De-witt, Fundamentals of heat and mass transfer, 1990.

S. Jacobs, J. Auringer, A. Boeder, J. Chell, L. Komorowski et al., The performance of a large-scale rotary magnetic refrigerator, International Journal of Refrigeration, vol.37, pp.84-91, 2014.

H. Johra, K. Filonenko, P. Heiselberg, C. T. Veje, S. Engelbrecht et al., Active magnetic regenerators implemented as a magnetocaloric heat pump for residential buildings, Proceedings of the Eighth International Conference on Caloric Cooling, Thermag VIII, 2018.

T. Kawanami, K. Chiba, K. Sakurai, and M. Ikegawa, Optimization of a magnetic refrigerator at room temperature for air cooling systems, Int. J. Refrigeration, vol.29, issue.8, pp.1294-1301, 2006.

T. Kawanami, Heat transfer characteristics and cooling performance of an active magnetic regenerator. In Magnetic Refrigeration at Room Temperature, Portoroz. International Institute of Refrigeration, pp.23-34, 2007.

W. M. Kays and A. L. London, Compact heat exchangers, 1984.

D. B. Kopeliovich, A. Y. Lysikov, Y. P. Melnikov, and Y. I. Et-spichkin, Setup for express measurements of the magnetocaloric effect, dans 3rd International Conference on Magnetic Refrigeration at Room Temperature, 2009.

A. Kedous-lebouc, , 2014.

Y. Kim and S. Jeong, Investigation on the room temperature active magnetic regenerative refrigerator with permanent magnetic array, Proceedings of the Third International Conference on Magnetic Refrigeration at Room Temperature, pp.393-400, 2009.

L. D. Kirol and M. W. Dacus, Rotary recuperative magnetic heat pump, Cryogenic Engineering Conference, pp.757-765, 1987.

L. D. Kirol, Rotary Magnetic Heat Pump, 1988.

A. Kitanovski, P. W. Egolf, F. Gendre, O. Sari, and C. Besson, A rotary heat exchanger magnetic refrigerator, First International Conference on Magnetic Refrigeration at Room Temperature, pp.297-307, 2005.

. Krohne, leader mondial dans la fabrication et la fourniture de solutions complètes pour l'instrumentation de process industriels

J. Lagasse, Les inductances de fuites et les phénomènes de résonance, vol.17, pp.1-95, 1953.

J. Lagasse, Etude des circuits électriques, Tome 1, Méthodes Générales d'Analyse, 1965.

P. Langevin, Magnétisme et théorie des électrons, Ann. Chim. et Phys, vol.8, pp.70-127, 1905.

T. De-larochelambert and P. Nika, Analytical heat transfer and friction assessment of alternating incompressible flows between parallel plates -II: Phase lags, scale analysis and annular effect

A. Lebouc, F. Allab, J. M. Fournier, and J. P. Yonnet, Réfrigération magnétique, pp.1-16, 2005.

U. Legait, Caractérisation et modélisation magnétothermique appliquée à la réfrigération magnétique, 2011.

P. Li, M. Gong, G. Yao, and J. Wu, A practical model for analysis of active magnetic regenerative refrigerators for room temperature applications, Int. J. Refrigeration, vol.29, pp.1259-1266, 2006.

S. Lionte, C. Vasile, and M. Siroux, Numerical analysis of a reciprocating active magnetic regenerator, Applied Thermal Engineering, vol.75, pp.871-879, 2014.

D. W. Lu, X. N. Xu, H. B. Wu, and J. X. , A permanent magnet magnetorefrigerator study using Gd/Gd-SiGe/Gd-SiGe-Ga alloys, Proceedings of First International Conference on Magnetic Refrigeration of Room Temperature, pp.291-296, 2005.

M. J. , Cours de thermique, école d'ingénieur de Genève, 2004.

M. A. Mira, Modélisation et conception optimale d'un système de réfrigération magnétocalorique, 2016.

M. A. Mira, T. De-larochelambert, C. Espanet, S. Giurgea, P. Nika et al., Influence of magnetization on the applied magnetic field in various AMR regenerators, Journal of Applied Physics, vol.122, p.133901, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02392699

B. Monfared and B. Palm, New magnetic refrigeration prototype with application in household and professional refrigerator, Proceedings of the Seventh International Conference on Magnetic Refrigeration at Room Temperature, pp.146-149, 2016.

A. H. Morrish, The Physical Principles of Magnetism, vol.1, 1965.

, National Instruments : Systèmes de test automatique et de mesure automatique

K. K. Nielsen, C. R. Bahl, A. Smith, R. Bjørk, N. Pryds et al., Detailed numerical modeling of a linear parallel-plate active magnetic regenerator, Int. J. Refrigeration, vol.32, issue.6, pp.1478-1486, 2009.

K. K. Nielsen, J. Tu?ek, K. Engelbrecht, S. Schopfer, A. Kitanovski et al., Review on numerical modeling of active magnetic regenerators for room temperature applications, International Journal of Refrigeration, vol.34, pp.603-616, 2011.

. Novaplest, Société Nouvelle Pour l'Application des Plastiques de l'Est. Spécialiste des matières plastiques et composites

T. Okamura, K. Yamada, N. Hirano, and N. Nagay, Proceedings of the First International Conference on Magnetic Refrigeration at Room Temperature, pp.319-324, 2005.

T. Okamura, R. Rachi, N. Hirano, and S. Nagaya, Improvement of 100 W class room temperature magnetic refrigerator, Proceedings of the Second International Conference on Magnetic Refrigeration at Room Temperature, pp.377-382, 2007.

P. A. Oliveira, P. V. Trevizoli, J. R. Barbosa, and A. T. Prata, A 2D hybrid model of the fluid flow and heat transfer in a reciprocating active magnetic regenerator, international journal of refrigeration, vol.35, pp.98-114, 2012.

, Bulletin de l'OMM sur les gaz à effet de serre n°11, Organisation Météorologique Mondiale, vol.9, 2015.

V. K. Pecharsky and K. A. Et-gschneidner, Giant Magnetocaloric Effect in Gd5(Si2Ge2), Phys. Rev. Lett., v, vol.78, issue.23, pp.4494-4497, 1997.

A. Plait, S. Giurgea, T. De-larochelambert, P. Nika, and C. Espanet, Magnetocaloric bench: analytical model for gadlinium characteristics, Proceedings of the Seventh IIF-IIR International Conference on Magnetic Refrigeration at Room Temperature. Thermag VII, pp.33-36, 2016.

A. Plait, P. Nika, S. Giurgea, T. De-larochelambert, and C. Espanet, Modélisation thermo-fluidique d'un écoulement alterné de fluide pour le couplage multiphysique, Proceedings of the 25 éme Congrès Français de Thermique, Thermique, Mers et Océans, pp.491-498, 2017.

A. Plait, S. Giurgea, T. De-larochelambert, P. Nika, and C. Espanet, Adopting magnetocaloric heat pumping and refrigeration for electrical vehicle, Proceedings of 14th IEEE Vehicle Power and Propulsion Conference (VPPC 2017), p.6, 2017.
URL : https://hal.archives-ouvertes.fr/hal-02300467

A. Plait, S. Giurgea, T. De-larochelambert, P. Nika, and C. Espanet, Lowcomputational cost semi-analytical magnetostatic model for magnetocaloric refrigeration systems, AIP Advances, vol.8, p.95204, 2018.

A. Plait, S. Giurgea, T. De-larochelambert, P. Nika, and C. Espanet, Twodimensional multiphysics modeling of a magnetocaloric device and parametric study, Proceedings of the Eighth IIF-IIR International Conference on Caloric Cooling, 2018.

V. Thermag and G. Darmstadt, , pp.68-73

T. F. Petersen, N. Pryds, A. Smith, J. Hattel, H. Schmidt et al., Twodimensional mathematical model of a reciprocating room-temperature active magnetic regenerator, International Journal of Refrigeration, vol.31, pp.432-443, 2008.

M. A. Richard, A. M. Rowe, and R. Chahine, Magnetic refrigeration: single and multimaterial active magnetic regenerator experiments, Journal of Applied Physics, vol.95, pp.2146-2150, 2004.

E. G. Richardson and E. Tyler, The transverse velocity gradient near the mouth of pipe in which an alternating or continuous flow of air is established, Proc. Phys. Soc. London, vol.42, pp.1-15, 1929.

M. Risser, C. Vasile, B. Keith, T. Engel, and C. Muller, Numerical simulation of magnetocaloric system behaviour for an industrial application, International Journal of Refrigeration, vol.33, issue.5, pp.973-981, 2010.
URL : https://hal.archives-ouvertes.fr/hal-00697139

M. Risser, C. Vasile, B. Keith, T. Engel, and C. Muller, Construction of consistent magnetocaloric materials data for modelling magnetic refrigerators, International Journal of Refrigeration, vol.35, issue.2, pp.459-467, 2012.
URL : https://hal.archives-ouvertes.fr/hal-00707367

M. Risser, C. Vasile, C. Muller, and N. A. , Improvement and application of a numerical model for optimizing the design of magnetic refrigerators, International Journal of Refrigeration, vol.36, issue.3, pp.950-957, 2013.
URL : https://hal.archives-ouvertes.fr/hal-00803236

M. Rosca, Matériaux de type LaFe13-xSix a fort pouvoir magnétocalorique -Synthèse et optimisation de composés massifs et hypertrempés -Caractérisations fondamentales, 2012.

J. Roudaut, Modélisation et conception de systèmes de réfrogération magnétique autour de la température ambiante, 2011.

A. M. Rowe and J. A. Barclay, Design of an active magnetic regenerator test apparatus, Advances in Cryogenic Engineering, vol.47, issue.8, pp.995-1002, 2002.

A. M. Rowe and J. A. Barclay, Ideal magnetocaloric effect for active magnetic regenerators, Journal of Applied Physics, vol.93, issue.3, pp.1672-1676, 2003.

A. Rowe, J. Dikeos, and A. Tura, Experimental studies of near room-temperature magnetic refrigeration, Proceedings of the First International Conference on Magnetic Refrigeration at Room Temperature, pp.325-333, 2005.

A. Rowe and A. Tura, Experimental investigation of a three material layered active magnetic regenerator, International Journal of Refrigeration, vol.29, pp.1286-1293, 2006.

A. T. Saito and H. Nakagome, Room temperature magnetic refrigeration: from basic research to development for application, Proceedings of the Seventh International Conference on Magnetic Refrigeration at Room Temperature, pp.297-302, 2016.

A. Sarlah and A. Poredos, Regenerator for magnetic cooling in shape of honeycomb, First International Conference on Magnetic Refrigeration at Room Temperature, pp.283-290, 2005.

M. G. Schroeder and E. Brehob, A flexible numerical model of a multistage active magnetocaloric regenerator, International Journal of Refrigeration, vol.65, pp.250-257, 2016.

S. Cho, Y. Chul-min, H. Min-sook, L. Kyeongsup, K. Jaeyeong et al., Magnetocaloric Effect of Perovskite Manganites of La0.8A0.2MnO3 (A = Ca, Sr, Ba), Journal of the Korean Physical Society, vol.57, issue.61, p.1893, 2010.

B. Siddikov, B. Wade, and D. Schultz, Numerical simulation of the active magnetic regenerator, Computers Mathematics with Applications, vol.49, pp.1525-1538, 2005.

D. Silva, B. Bordalo, A. M. Pereira, J. Ventura, and A. J. , Solid state magnetic refrigerator, Applied Energy, vol.93, pp.570-574, 2012.

A. Smailli and R. Chahine, Thermodynamic investigations of optimum active magnetic regenerators, Cryogenics, vol.38, pp.247-252, 1998.

A. Smith, Who discovered the manetocaloric effect? Warburg, Weiss, and the connection between magnetism and heat, The European Physical Journal H, vol.38, pp.507-517, 2013.

J. Stefan, Ueber thermomagnetische Motoren, Ann. Phys, vol.274, pp.427-440, 1889.

W. A. Steyert, Stirling-cycle rotating magnetic refrigerators and heat engines for use near room temperature, J. Appl. Phys, vol.49, issue.3, pp.1216-1226, 1978.

L. A. Tagliafico, F. Scarpa, F. Valsuani, and J. Tagliafico, Preliminary experimental results from a linear reciprocating magnetic refrigerator prototype, Applied Thermal Engineering, vol.52, pp.492-497, 2013.

Y. B. Tang, A. O. Pecharsky, D. Schlagel, T. A. Lograsso, V. K. Pecharsky et al., , 2003.

, Gd5(Si1.95Ge2.05) single crystal and the anisotropic magnetocaloric effect, Journal of Applied Physics, vol.93, issue.10, pp.8298-8300

S. A. Tc, Capteurs de température, mesure et régulation

N. Tesla, Thermo-Magnetic Motor.US PatentUS396121, 1889.

N. Tesla, Pyromagneto-Electric Generator, 1890.

, TE2M, solutions magnétiques. Gaussmètre à effet Hall GN 206

R. Teyber, P. V. Trevizoli, T. V. Christiaanse, P. Govindappa, I. Niknia et al., Performance evaluation of two-layer active magnetic regenerators with secondorder magnetocaloric materials, Applied Thermal Engineering, vol.106, pp.405-414, 2016.

A. Tishin and Y. Spichkin, The magnetocaloric effect and its applications, 2003.

J. Tisserand, Convection thermique : transport et melange, 2010.
URL : https://hal.archives-ouvertes.fr/tel-00612953

B. Torregrossa-jaime, J. M. Corberan, J. Paya, and K. Engelbrecht, An efficient numerical scheme for the simulation of parallel-plate active magnetic regenerators, International Journal of Refrigeration, vol.58, pp.121-130, 2015.

P. V. Trevizoli, J. Barbosa, and R. T. Ferreira, Experimental evaluation of a Gd based linear reciprocating active magnetic regenerator test apparatus, International Journal of Refrigeration, vol.34, issue.6, pp.1518-1526, 2011.

A. Tura and A. Rowe, Progress in the characterization and optimization of a permanent magnet magnetic refrigerator, Proceedings of the Third International Conference on Magnetic Refrigeration at Room Temperature, pp.387-392, 2009.

J. R. Van-geuns, A study of a new magnetic refrigerating cycle, Phillips Res. Rep. Suppl, vol.6, issue.1, 1966.

C. Vasile and C. Müller, A new system for a magnetocaloric refrigerator, Proceedings of First International Conference on Magnetic Refrigeration at Room Temperature, pp.357-366, 2005.

C. Vasile and C. Müller, Innovative design of a magnetocaloric system, International Journal of Refrigeration, vol.29, issue.8, pp.1318-1326, 2006.

D. Vuarnoz and T. Kawanami, Numerical analysis of a reciprocating active magnetic regenerator made of gadolinium wires, Applied Thermal Engineering, vol.37, pp.388-395, 2012.

D. Vuarnoz and T. Kawanami, Experimental validation of a coupled magnetothermal model for a flat-parallel-plate active magnetic regenerator, Applied Thermal Engineering, vol.54, pp.433-439, 2013.

E. Warburg, Magnetische Untersuchungen: Annalen der Physik, vol.249, pp.141-164, 1881.

P. Weiss and A. Et-piccard, J. Phys. (Paris), vol.5, pp.103-109, 1917.

J. R. Womersley, Oscillatory motion of a viscous liquid in a thin-walled elastic tube -I: the linear approximation for long waves, Phil. Mag. Series, vol.7, pp.199-221, 1955.

G. H. Yao, M. Q. Gong, and J. F. Wu, Experimental study on the performance of a room temperature magnetic refrigerator using permanent magnets, International Journal of Refrigeration, vol.29, pp.1267-1273, 2006.

Y. You, Z. Wu, S. Xiao, H. Li, and X. Xu, A comprehensive two-dimensional numerical study on unsteady conjugate heat transfer in magnetic refrigerator with Gd plates, International Journal of Refrigeration, vol.79, pp.217-225, 2017.

B. Yu, M. Liu, P. W. Egolf, and A. Kitanovski, A review of magnetic refrigerator and heat pump prototypes built before the year, International Journal of Refrigeration, vol.33, pp.1029-1060, 2010.

C. Zimm, A. Jastrab, A. Sternberg, V. K. Pecharsky, K. A. Gschneidner et al., Description and performance of a near-room temperature magnetic refrigerator, Advances in Cryogenic Engineering, vol.43, pp.1759-1766, 1998.

C. Zimm, A. Sternberg, A. G. Jastrab, A. M. Boeder, L. M. Lawton et al., Rotating bed magnetic refrigeration apparatus, US Patent No, 2003.

C. Zimm, A. Boeder, J. Chell, A. Sternberg, A. Fujita et al., Design and performance of a permanent magnet rotary refrigerator, Proceedings of the First International Conference on Magnetic Refrigeration at Room Temperature, pp.367-376, 2005.

C. Zimm, A. Boeder, J. Chell, A. Sternberg, A. Fujita et al., Design and performance of a permanent magnet rotary refrigerator, International Journal of Refrigeration, vol.29, issue.8, pp.1302-1306, 2006.

C. Zimm, J. Auringer, A. Boeder, J. Chells, S. Russek et al., Design and initial performance of a magnetic refrigerator with a rotating permanent magnet, Proceedings of the Second International Conference on Magnetic Refrigeration at Room Temperature, 2007.