A. J. Crandall, B. D. Cook, and E. A. Hiedemann, « Measurement of the Velocity of Sound in Water by Optical Methods, J. Acoust. Soc. Am, vol.44, issue.1, pp.387-387

A. Travelli and «. U. , reduced enrichment research and test reactor (RERTR) program: accomplishments, plans, and schedules, 1980.

, Office of Nuclear Reactor Regulation, p.1313, 1988.

A. Travelli, Proceedings of the XXII International Meeting on Reduced Enrichment for Research and Test Reactors, pp.3-8, 1999.

A. Travelli, International Meeting on Reduced Enrichment for Research and Test Reactors, 1998.

H. J. Ryu, Y. S. Kim, J. M. Park, H. T. Chae, and C. K. Kim, Performance Evaluation of U-Mo/Al Dispersion Fuel by Considering a Fuel-Matrix Interaction, Nuclear Engineering and Design, vol.40, issue.5, pp.409-418, 2008.

K. I. Kihwan, L. E. Bae, K. I. Chang-kyu, I. H. Kuk, K. W. Baek et al., XA9745724 ALLOY FUELS BY CENTRIFUGAL ATOMIZATION », Stud. Fuels Low Fission Gas Release, p.77, 1997.

S. Van-den-berghe, W. Van-renterghem, and E. A. Leenaers, « Transmission electron microscopy investigation of irradiated U-7wt%Mo dispersion fuel, J. Nucl. Mater, vol.375, issue.3, pp.340-346, 2008.

J. Gan, D. D. Keiser, D. M. Wachs, B. D. Miller, and T. R. Allen, Characterization of RERTR Fuel, 2008.

A. Begeron, A. Tentner, and J. Stevens, « Feasibility Analyses for HEU to LEU Fuel Conversion of the Laue Langevin Insitute (ILL) High Flux Reactor (RHF), 2010.

«. Hfir-|, High Flux Isotope Reactor | ORNL

D. Sur,

, « Neutrons For Science -Annual Report, 2014.

D. Sur,

S. Van-den-berghe, A. Leenaers, E. Koonen, and L. Sannen, « From High to Low Enriched Uranium Fuel in Research Reactors, Adv. Sci. Technol, vol.73, pp.78-90, 2010.

A. Leenaers, « Surface-engineered low-enriched Uranium-Molybdenum fuel for research reactors, 2014.

J. M. Beeston, R. R. Hobbins, G. W. Gibson, W. C. Francis, and *. , « Development and Irradiation Performance of Uranium Aluminide Fuels in Test Reactors, Nucl. Technol, vol.49, issue.1, pp.136-149, 1980.

U. S. , P. Challenges, U. S. Opportunities-for-converting, ;. , R. S. Board et al., Russian Reactors from Highly Enriched to Low Enriched Uranium Fuel, Progress, Challenges, and Opportunities for Converting U.S. and Russian Research Reactors:: A Workshop, 2012.

W. Dienst, S. Nazaré, and F. Thümmler, « Irradiation behaviour of UAlx-Al dispersion fuels for thermal high flux reactors », J. Nucl. Mater, vol.64, issue.2, pp.1-13, 1977.

K. H. Kim, D. B. Lee, C. K. Kim, G. L. Hofman, and K. W. Paik, « Thermal compatibility of centrifugally atomized U-Mo powders with aluminium in a dispersion fuel, Nucl. Eng. Des, vol.178, issue.1, pp.111-117, 1997.

M. K. Meyer, J. Gan, J. F. Jue, D. D. Keiser, E. Perez et al., Nucl. Eng. Technol, vol.46, issue.2, pp.169-182, 2014.

A. Yacout«, . Low, . Uranium, . Development, and . Nnsa/m3-role», PRESENTATION TO THE NATIONAL ACADEMY OF SCIENCE, PANEL APRIL 16, 2015.

J. Gan, D. D. Keiser, D. M. Wachs, A. B. Robinson, B. D. Miller et al., « Transmission electron microscopy characterization of irradiated U-7Mo/Al-2Si dispersion fuel », J. Nucl. Mater, vol.396, issue.2-3, pp.234-239, 2010.

D. L. Porter and A. Ewh, « Interaction Layer Characteristics in U-xMo Dispersion/Monolithic Fuels, Funding organisation: DOE-NA (United States), 2010.

A. Leenaers, S. Van-den-berghe, W. Van-renterghem, F. Charollais, P. Lemoine et al., « Irradiation behavior of ground U(Mo) fuel with and without Si added to the matrix », J. Nucl. Mater, vol.412, issue.1, pp.41-52, 2011.

Y. S. Kim and G. L. Hofman, « Fission product induced swelling of U-Mo alloy fuel, J. Nucl. Mater, vol.419, pp.291-301, 2011.

Y. S. Kim, G. L. Hofman, and J. S. Cheon, « Recrystallization and fission-gas-bubble swelling of U-Mo fuel », J. Nucl. Mater, vol.436, pp.14-22, 2013.

A. Leenaers, S. Van-den-berghe, E. Koonen, C. Jarousse, F. Huet et al., Post-irradiation examination of uranium-7 wt% molybdenum atomized dispersion fuel », J. Nucl. Mater, vol.335, issue.1, pp.39-47, 2004.

L. T. Liu-xiao, « Modeling the swelling performance of UMo alloys for Al-matrix dispersion fuel, J. Alloys Compd. -J ALLOYS Compd, vol.509, issue.23, pp.6589-6594, 2011.

D. M. Dowling, R. J. White, and M. O. Tucker, « The effect of irradiation-induced resolution on fission gas release, J. Nucl. Mater, vol.110, issue.1, pp.37-46, 1982.

T. A. Stevens, « Feasibility analyses for HEU to LEU fuel conversion of the LAUE Langivin Institute (ILL) High Flux Reactor (RHF), 2010.

Y. Calzavara, F. Frery, F. Thomas, H. Guyon, A. Bergeron et al., TOUTATIS: ILL CONVERSION FEASIBILITY STUDY ». 32nd INTERNATIONAL MEETING ON REDUCED ENRICHMENT FOR RESEARCH AND TEST REACTORS (RERTR), 2010.

A. Tentner, Thermal-Hydraulic safety analyses for conversion of the Laue Langevin Institute (ILL) High Flux Reactor (RHF) from HEU to LEU fuel, XXXII RERTR International meeting, 2010.

H. Breitkreutz, R. Jungwirth, A. Roehrmoser, W. Petry, D. Berghe et al., The development of disperse UMO as a high performance research reactor fuel in Europe, 2013.

G. L. Yeon-soo and . Kim, « Oxidation of aluminum alloy cladding for research and test reactor fuel », J. Nucl. Mater, vol.378, issue.2, pp.220-228, 2008.

A. Leenaers, E. Koonen, Y. Parthoens, and P. Lemoine, Van den Berghe, « Postirradiation examination of AlFeNi cladded U3Si2 fuel plates irradiated under severe conditions, J. Nucl. Mater, vol.375, issue.2, pp.243-251, 2008.

S. Van-den-berghe, Y. Parthoens, G. Cornelis, A. Leenaers, E. Koonen et al., « Swelling of U(Mo) dispersion fuel under irradiation -Nondestructive analyses of the SELENIUM plates, J. Nucl. Mater, vol.442, pp.60-68, 2013.

S. Van-den-berghe, Y. Parthoens, F. Charollais, Y. S. Kim, A. Leenaers et al., « Swelling of U(Mo)-Al(Si) dispersion fuel under irradiationNon-destructive analyses of the LEONIDAS E-FUTURE plates, J. Nucl. Mater, vol.430, pp.246-258, 2012.

A. Alghem, M. Kadouma, and R. Benaddad, Abstracts of 17th World Conference on Non-Destructive Testing, 2008.

L. Sannen, L. Borms, C. De-raedt, and E. A. Gys, « Gamma-spectrometric determination of the fission power of fuel rods », Proceeding of a Technical Committee meeting, 2001.

H. Seo, J. Oh, H. Shin, H. Kim, S. K. Lee et al., Burnup Measurement of Spent Fuel Assembly by CZT-based Gamma-Ray Spectroscopy for Input Nuclear Material Accountability of Pyroprocessing, IEEE Trans. Nucl. Sci, vol.61, issue.4, pp.2169-2174, 2014.

L. W. Campbell, L. E. Smith, and A. C. Misner, High-Energy Delayed Gamma Spectroscopy for Spent Nuclear Fuel Assay, vol.58, pp.231-240, 2011.
DOI : 10.1109/tns.2010.2095039

S. J. Reed, Electron Microprobe Analysis and Scanning Electron Microscopy in Geology, 2005.
DOI : 10.1017/cbo9780511610561

A. Leenaers, S. Van-den-berghe, J. Van-eyken, E. Koonen, F. Charollais et al., « Microstructural evolution of U(Mo)-Al(Si) dispersion fuel under irradiation -Destructive analyses of the LEONIDAS E-FUTURE plates, J. Nucl. Mater, vol.441, pp.439-448, 2013.

, « Electron probe micro-analyzer (EPMA) », Techniques

D. Sur,

B. T. Bradbury, J. T. Demant, P. M. Martin, and D. M. Poole, « Electron probe microanalysis of irradiated UO2 », J. Nucl. Mater, vol.17, issue.3, pp.227-236, 1965.

«. , ray Powder Diffraction (XRD) », Techniques

D. Sur,

T. Roth, C. Detlefs, I. Snigireva, and A. Snigirev, X-ray diffraction microscopy based on refractive optics, vol.340, pp.33-38, 2015.
DOI : 10.1016/j.optcom.2014.11.094

URL : http://arxiv.org/pdf/1409.6117.pdf

R. James and «. Diffraction, , 2014.

D. F. Sears, K. T. Conlon, J. Mason, A. Davidson, and C. Buchanan, Post-irradiation examination of uranium-molybdenum dispersion fuel irradiated to high burn-up in NRU, 2006.

Y. B. Chun, D. K. Min, G. S. Kim, K. P. Hong, J. R. Park et al., Underwater Fuel Inspection for Irradiated LWR Fuels in Korea, 2009.

B. N. Society, Remote Techniques for Nuclear Plant: Proceedings of the Conference Organized by the British Nuclear Energy Society, Held at Stratford-uponAvon on 10-13, 1993.

, Proceedings of the International Conference Organized by the British Nuclear Energy Society and, pp.20-22, 1995.

A. S. Morris, Measurement and instrumentation principles, 2001.
DOI : 10.1088/0957-0233/12/10/702

D. L. Arenberg, Ultrasonic Solid Delay Lines, J. Acoust. Soc. Am, vol.20, issue.1, pp.1-26, 1948.

I. L. Auerbach, J. P. Eckert, R. F. Shaw, and C. B. Sheppard, « Mercury Delay Line Memory Using a Pulse Rate of Several Megacycles, Proc. IRE, vol.37, pp.855-861

A. E. Benfield, A. G. Emslie, and H. B. Huntington, Massachusetts Institute of Technology, et Radiation Laboratory, On the theory and performance of liquid delay lines, 1945.

A. L. Zijlstra, C. M. Van-der, and . Burgt, «ISOPAUSTIC GLASSES FOR ULTRASONIC DELAY liNES IN COLOUR TELEVISION RECEIVERS AND IN DIGITAL APPLICATIONS», 1967.

V. Camara and D. Laux, « Moisture content in honey determination with a shear ultrasonic reflectometer, J. Food Eng, vol.96, issue.1, pp.93-96

R. W. Mebs, J. H. Darr, and J. D. Grimsley, Metal Ultrasonic Delay Lines, Journal of research of the National Bureau of Standards, vol.51, issue.5, 1953.

H. B. Huntington, A. G. Emslie, and V. W. Hughes, « Ultrasonic delay lines. I. », J. Frankl. Inst, vol.245, issue.1, pp.1-23, 1948.

A. G. Emslie and R. L. Mcconnell, Radar system engineering, 1, chap. 16, 1947.

M. Amini, T. Coyle, and E. T. Sinclair, « Porous ceramics as backing element for hightemperature transducers, IEEE Trans. Ultrason. Ferroelectr. Freq. Control, vol.62, issue.2, pp.360-372, 2015.

F. El-tantawy and Y. K. Sung, « A novel ultrasonic transducer backing from porous epoxy resin-titanium-silane coupling agent and plasticizer composites », Mater. Lett, vol.58, issue.2, pp.154-158, 2004.

S. K. Jain, R. Gupta, and E. S. Chandra, « Evaluation of acoustical characteristics of ultrasonic transducer backing materials at high hydrostatic pressures, Ultrasonics, vol.36, pp.37-40, 1998.

N. T. Nguyen, M. Lethiecq, B. Karlsson, and F. Patat, Highly attenuative rubber modified epoxy for ultrasonic transducer backing applications », Ultrasonics, vol.34, pp.669-675, 1996.

R. W. King, Transducer backing material. Google Patents, 1997.

C. R. Trzaskos, Ultrasonic transducer and process to obtain high acoustic attenuation in the backing, U.S. Patent 4382201 A, 1983.

M. J. Lowe, « Matrix techniques for modeling ultrasonic waves in multilayered media, IEEE Trans. Ultrason. Ferroelectr. Freq. Control, vol.42, issue.4, pp.525-542, 1995.

J. S. Sastry and M. L. , « A transfer matrix approach for evaluation of the response of a multi-layer infinite plate to a two-dimensional pressure excitation, J. Sound Vib, vol.182, issue.1, pp.109-128, 1995.

M. Lam, E. L. Clézio, H. Amorín, M. Algueró, J. Holc et al., Acoustic wave transmission through piezoelectric structured materials, vol.49, pp.424-431, 2009.
URL : https://hal.archives-ouvertes.fr/hal-00469003

W. T. Thomson, « Transmission of Elastic Waves through a Stratified Solid Medium, J. Appl. Phys, vol.21, issue.2, pp.89-93

N. A. Haskell, « The dispersion of surface waves on multilayered media, Bull. Seismol. Soc. Am, vol.43, issue.1, pp.17-34

D. L. Folds and C. D. Loggins, « Transmission and reflection of ultrasonic waves in layered media, J. Acoust. Soc. Am, vol.62, issue.5, pp.1102-1109, 1977.

C. Lee and Y. Xu, « A modified transfer matrix method for prediction of transmission loss of multilayer acoustic materials, J. Sound Vib, vol.326, issue.2, pp.290-301, 2009.

P. Cervenka and P. Challande, A new efficient algorithm to compute the exact reflection and transmission factors for plane waves in layered absorbing media (liquids and solids), J. Acoust. Soc. Am, vol.89, issue.4, pp.1579-1589, 1991.

M. L. , Response Of A Multi-layered Infinite Plate To An Oblique Plane Wave By Means Of Transfer Matrices, J. Sound Vib, vol.162, issue.2, pp.333-343

B. Hosten, « Bulk heterogeneous plane waves propagation through viscoelastic plates and stratified media with large values of frequency domain, Ultrasonics, vol.29, issue.6, pp.445-450, 1991.

R. J. Da-fonseca, L. Ferdj-allah, G. Despaux, A. Boudour, L. Robert et al., « Scanning Acoustic Microscopy-recent applications in materials science, Adv. Mater, vol.5, pp.508-519, 1993.

K. K. Liang, S. D. Bennett, B. T. Khuri-yakub, and G. S. Kino, Precise Phase Measurements with the Acoustic Microscope, vol.32, pp.266-273, 1985.

P. R. Hoskins, K. Martin, A. Thrush, and U. «diagnostic, Physics and Equipment, 2010.

«. Pxi-platform,

D. Sur, , pp.17-2015

J. C. Jackson, R. Summan, G. I. Dobie, S. M. Whiteley, S. G. Pierce et al., « Time-of-flight measurement techniques for airborne ultrasonic ranging, IEEE Trans. Ultrason. Ferroelectr. Freq. Control, vol.60, issue.2, pp.343-355, 2013.

T. M. Frederiksen and W. M. Howard, « A single-chip monolithic sonar system, IEEE J. Solid-State Circuits, vol.9, issue.6, pp.394-403

B. Barshan, Fast processing techniques for accurate ultrasonic range measurements, Meas. Sci. Technol, vol.11, issue.1, p.45, 2000.

A. ?. Sekmen and B. Barshan, « Estimation of object location and radius of curvature using ultrasonic sonar, Appl. Acoust, vol.62, issue.7, pp.841-865, 2001.

C. Knapp and G. C. Carter, « The generalized correlation method for estimation of time delay, IEEE Trans. Acoust. Speech Signal Process, vol.24, issue.4, pp.320-327, 1976.

W. Jinjin, Y. Dong, and C. Ping, « Range resolution of ultrasonic distance measurement using single bit cross correlation for robots, 2010 IEEE International Conference on Information and Automation (ICIA), pp.917-923, 2010.

Y. Xu, Y. Li, Z. Qu, S. Jin, C. Jiang et al., Estimation Method for Underwater Acoustic Signal in Confined Underwater Space?, J. Comput. Inf. Syst, vol.8, issue.4, pp.1689-1696, 2012.

R. Queiros, F. C. Alegria, P. S. Girao, and A. C. Serra, « Cross-Correlation and SineFitting Techniques for High-Resolution Ultrasonic Ranging, IEEE Trans. Instrum. Meas, vol.59, pp.3227-3236, 2010.

B. Barshan and R. Kuc, « A bat-like sonar system for obstacle localization », Syst. Man Cybern, IEEE Trans. On, vol.22, issue.4, pp.636-646, 1992.

B. Barshan, R. Kuc, and «. Robat, A sonar-based mobile robot for bat-like prey capture, Robotics and Automation, 1992. Proceedings., 1992 IEEE International Conference on, pp.274-279, 1992.

W. G. Mamullen, B. A. Delaughe, and J. S. Bird, « A simple rising-edge detector for time-of-arrival estimation, Instrum. Meas. IEEE Trans. On, vol.45, issue.4, pp.823-827, 1996.

W. H. Press and . Éd, Numerical recipes in C: the art of scientific computing, 1992.

M. Parrilla, J. J. Anaya, and C. Fritsch, « Digital signal processing techniques for high accuracy ultrasonic range measurements, IEEE Trans. Instrum. Meas, vol.40, issue.4, pp.759-763, 1991.

K. Nakahira, T. Kodama, S. Morita, and E. S. Okuma, Distance measurement by an ultrasonic system based on a digital polarity correlator, vol.50, pp.1748-1752, 2001.

.. .. Principle, The experimental set-up, vol.87

. .. List-of-figures,

.. .. Reference,

M. Nau, Mesure électrique de la température, 2003.

A. J. Crandall, B. D. Cook, and E. A. Hiedemann, « Measurement of the Velocity of Sound in Water by Optical Methods, J. Acoust. Soc. Am, vol.44, issue.1, pp.387-387, 1968.

X. Li, S. Lin, J. Liang, Y. Zhang, H. Oigawa et al., Optic Temperature Sensor Based on Difference of Thermal Expansion Coefficient Between Fused Silica and Metallic Materials », IEEE Photonics J, vol.4, issue.1, pp.155-162

G. Zaz, Y. Calzavara, E. L. Clézio, and E. G. Despaux, « Adaptation of a High Frequency Ultrasonic Transducer to the Measurement of Water Temperature in a Nuclear Reactor, Phys. Procedia, vol.70, pp.195-198, 2015.

I. Y. Kuo, B. Hete, and K. K. Shung, « A novel method for the measurement of acoustic speed, J. Acoust. Soc. Am, vol.88, issue.4, pp.1679-1682, 1990.

P. Labes, J. L. Daridon, B. Lagourette, and H. , Saint-Guirons, « Measurement and prediction of ultrasonic speed under high pressure in natural gases, Int. J. Thermophys, vol.15, issue.5, pp.803-819, 1994.

P. and S. Mayevskyy, « Precise measurement of ultrasonic velocity, AIP Conference Proceedings, vol.557, pp.1587-1591, 2001.

S. C. Rogers and G. N. Miller, Ultrasonic Level, Temperature, and Density Sensor, vol.29, pp.665-668, 1982.

A. Briggs, Acoustic microscopy, 2010.
URL : https://hal.archives-ouvertes.fr/jpa-00223404

N. Bilaniuk and G. S. Wong, « Speed of sound in pure water as a function of temperature, J. Acoust. Soc. Am, vol.93, issue.3, pp.1609-1612, 1993.

J. A. Capp and L. T. Robinson, « Thermocouples and resistance coils for the determination of local temperatures in electrical machines, Am. Inst. Electr. Eng. Proc. Of, vol.32, issue.3, pp.701-708, 1913.

J. Liu, L. Ma, and J. Yang, « Methods and techniques of temperature measurement, 2011 International Conference on Electrical and Control Engineering (ICECE), pp.5332-5334, 2011.

C. Canali, G. De-cicco, B. Morten, M. Prudenziati, and A. Taroni, « A Temperature Compensated Ultrasonic Sensor Operating in Air for Distance and Proximity Measurements, IEEE Trans. Ind. Electron, issue.4, pp.336-341, 1982.

A. S. Morris, Measurement and instrumentation principles

, Boston: Butterworth-Heinemann, 2001.

S. Basu and A. Debnath, Power Plant Instrumentation and Control Handbook: A Guide to Thermal Power Plants, 2014.

, Lesson 4: Temperature Measurement, Version 2 EE IIT

R. Usamentiaga, P. Venegas, J. Guerediaga, L. Vega, J. Molleda et al., Infrared Thermography for Temperature Measurement and Non-Destructive Testing », Sensors, vol.14, pp.12305-12348, 2014.

J. H. Ling, A. A. Tay, K. F. Choo, W. Chen, and D. Kendig, « Measurement of MMIC gate temperature using infrared and Thermoreflectance thermography, Electronics Packaging Technology Conference (EPTC), pp.515-518, 2012.

F. F. Farkhani and F. A. Mohammadi, « Temperature and power measurement of modern dual core processor by infrared thermography, Proceedings of 2010 IEEE International Symposium on Circuits and Systems (ISCAS), pp.1603-1606, 2010.

M. Harker, P. O'leary, M. S. Kharicha, and E. S. Eck, « Calibration, Measurement and Error Analysis of Optical Temperature Measurement via Laser Induced Fluorescence, IEEE Instrumentation and Measurement Technology Conference Proceedings, pp.1-6, 2007.

J. Sakakibara and R. J. Adrian, « Whole field measurement of temperature in water using two-color laser induced fluorescence, Exp. Fluids, vol.26, issue.2, pp.7-15, 1999.

T. Kubota, M. Nara, and T. Yoshino, « Interferometer for measuring displacement and distance, Opt. Lett, vol.12, issue.5, pp.310-312, 1987.

R. Bommareddi, « Applications of Optical Interferometer Techniques for Precision Measurements of Changes in Temperature, Growth and Refractive Index of Materials », Technologies, vol.2, pp.54-75, 2014.

G. Jakins, Fiber-optic temperature and positioning sensors

. «-resistance and . Thermometer, Wikipedia, the free encyclopedia, pp.25-2015

P. Thermocouple, The purpose of this application note is to explore the more common temperature measurement techniques, and introduce procedures for improving their accuracy

C. J. Bell, S. Reid, J. Faller, G. D. Hammond, J. Hough et al., « Experimental results for nulling the effective thermal expansion coefficient of fused silica fibres under a static stress, Class. Quantum Gravity, vol.31, issue.6, p.65010, 2014.

A. Grisard, « Lasers guides d'onde dans le niobate de lithium dopé erbium, 1997.

U. Rössler, Solid State Theory: An Introduction, 2013.

F. Pignatiello, M. Rosa, P. Ferraro, S. Grilli, P. Natale et al., « Measurement of the thermal expansion coefficients of ferroelectric crystals by a moiré interferometer, Opt. Commun, vol.277, issue.1, pp.14-18, 2007.

R. T. Smith and F. S. Welsh, « Temperature Dependence of the Elastic, Piezoelectric, and Dielectric Constants of Lithium Tantalate and Lithium Niobate, J. Appl. Phys, vol.42, issue.6, pp.2219-2230, 1971.

J. D. James, J. A. Spittle, S. G. Brown, and R. W. Evans, « A review of measurement techniques for the thermal expansion coefficient of metals and alloys at elevated temperatures », Meas. Sci. Technol, vol.12, issue.3, p.1, 2001.

S. C. Abrahams, H. J. Levinstein, and J. M. Reddy, Ferroelectric lithium niobate. 5. Polycrystal X-ray diffraction study between 24° and 1200°C, vol.27, pp.1019-1026, 1966.

J. ,

. Szilard, Ultrasonic testing non-conventional testing techniques, 1982.

M. Sgalla and D. Vangi, « A device for measuring the velocity of ultrasonic waves: An application to stress analysis, Exp. Mech, vol.44, issue.1, pp.85-90, 2004.

. .. Rhf, 101 1. The experimental set-up

, Temperature measurements of the first water channel

, Water channel distance measurements post-irradiations

, The first water channel thickness measurements post-irradiations

, 2 The second water channel thickness measurements post-irradiations

. .. List-of-figures,

.. .. Reference,

Y. Calzavara, F. Frery, F. Thomas, H. Guyon, A. Bergeron et al., ILL CONVERSION FEASIBILITY STUDY

K. H. Zografski, Research Reactor Fuel Management », 10 th International Topical Meeting on Research Reactor Fuel Management, 2006.

W. H. Cubberly, Tool and Manufacturing Engineers Handbook Desk Edition. Society of Manufacturing Engineers, 1989.