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Relation between Gamma Decomposition and Powder Formation of γ-U8Mo Nuclear Fuel Alloys via Hydrogen Embrittlement and Thermal Shock

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Gamma uranium-molybdenum alloys have been considered as the fuel phase in plate type fuel elements for material and test reactors (MTR), due to their acceptable performance under irradiation. Regarding their usage as a dispersion phase in aluminum matrix, it is necessary to convert the as cast structure into powder, and one of the techniques considered for this purpose is the hydration-dehydration (HDH). This paper shows that, under specific conditions of heating and cooling, γ-UMo fragmentation occurs in a non-reactive predominant mechanism, as shown by the curves of hydrogen absorption/desorption as a function of time and temperature. Our focus was on the experimental results presented by the addition of 8% weight molybdenum. Following the production by induction melting, samples of the alloys were thermally treated under a constant flow of hydrogen for temperatures varying from 500°C to 600°C and for times of 0.5 to 4 h. It was observed that, even without a massive hydration-dehydration process, the alloys fragmented under specific conditions of thermal treatment during the thermal shock phase of the experiments. Also, it was observed that there was a relation between absorption and the rate of gamma decomposition or the gamma phase stability of the alloy.
Cite this paper
Oliveira, F. and Andrade, D. (2014) Relation between Gamma Decomposition and Powder Formation of γ-U8Mo Nuclear Fuel Alloys via Hydrogen Embrittlement and Thermal Shock. World Journal of Nuclear Science and Technology, 4, 177-188. doi: 10.4236/wjnst.2014.44023
 

[1] Powell, G.L., Koger, J.W., Bennett, R.K., Williamson, A.L. and Hemperly, V.C. (1976) Internal Hydrogen Embrittlement of Gamma-Stabilized Uranium Alloys. Corrosion NACE, 32, 442-450.
http://dx.doi.org/10.5006/0010-9312-32.11.442
[2] Clark, C.R., Meyer, M.K. and Strauss, J.T. (1998) Fuel Powder Production from Ductile Uranium Alloys. Proceedings of the International Meeting on Reduced Enrichment for Research and Test Reactors, São Paulo, 18-23 October 1998, 8 p.
[3] Wiencek, T. and Prokofiev, L.G. (2000) Low-Enriched Uranium-Molybdenum Fuel Plate Development. Proceedings of the International Meeting on Reduced Enrichment for Research and Test Reactors, Las Vegas, 1-6 October 2000, 12 p.
[4] Balart, S., Bruzzoni, P., Granovsky, M., Gribaudo, L., Hermida, J., Ovejero, J., Rubiolo, G. and Vicente, E. (2000) U-Mo Alloy Power Obtained by a Hydride-Dehydride Process. Proceedings of the International Meeting on Reduced Enrichment for Research and Test Reactors, Las Vegas, 1-6 October 2000, 6 p.
[5] Solonin, M.I., Vatulin, A.V., Stetsky, Y.A., Trifonov, Y.I. and Rogozkin, B.D. (2000) Development of the Method of High Density Fuel Comminution by Hydride-Dehydride Processing. Proceedings of the International Meeting on Reduced Enrichment for Research and Test Reactors, Las Vegas, 1-6 October 2000, 10 p.
[6] Pasqualini, E.E., López, M., Helzel García, L.J., Echenique, P. and Adelfang, P. (2002) Scaling up the Production Capacity of U-Mo Powder by HMD Process. Proceedings of the International Meeting on Reduced Enrichment for Research and Test Reactors, Bariloche, 3-8 November 2002, 7 p.
[7] Pasqualini, E.E. and López, M. (2004) Increasing the Performance of U-Mo Fuels. Proceedings of the International Meeting on Reduced Enrichment for Research and Test Reactors, Vienna, 7-12 November 2004, 3 p.
[8] Kim, K.-H., Kwon, H.-J., Lee, J.-S., Ryu, H.-J., Park, J.-M. and Kim, C.-K. (2000) An Investigation of the Fuel-Matrix Reaction Behavior of UMo/Al Dispersion Fuels Prepared with Centrifugal Atomization. Proceedings of the 13th RERTR Meeting, Las Vegas, 1-6 October 2000, 10 p.
[9] Meyer, M.K., et al. (1999) Irradiation Behavior of Uranium-Molybdenum Dispersion Fuel: Fuel Performance Data from RERTR-1 and RERTR-2. Proceedings of the 12th RERTR Meeting, Budapest, 3-8 October 1999, 12 p.
[10] Hofman, G.L., Meyer, M.K., Snelgrove, J.L., Dietz, M.L. Strain, R.V. and Kim, K-H. (1999) Initial Assessment of Radiation Behavior of Very-High Density Low-Enriched Uranium Fuels. Proceedings of the 12th RERTR Meeting, Budapest, 3-8 October 1999, 14 p.
[11] Oliveira, F.B.V. (2008) Desenvolvimento de um combustível de alta densidade à base de liga Uranio-Molibdênio com alta compatibilidade em altas temperaturas. Ph.D. Thesis, Nuclear and Energy Research Institute IPEN-CNEN/SP, São Paulo.
http://www.teses.usp.br/teses/disponiveis/85/85134/tde-10062008-144005/en.php.
[12] Van Thyne, R.J. and McPherson, D.J. (1957) Transformation Kinetics of Uranium-Niobium and Ternary Uranium-Molybdenum Base Alloys. Transactions: American Society for Metals, 49, 576-597.
[13] Van Thyne, R.J. and McPherson, D.J. (1957) Transformation Kinetics of Uranium-Molybdenum Alloys. Transactions: American Society for Metals, 49, 598-621.
[14] McGeary, R.K. (1955) Development and Properties of Uranium-Base Alloys Resistant in High Temperature Water. USAEC Report WAPD-127-I.
[15] Cabané, G. and Donzé, G. (1959) Stabilisation de la Phase γ dans les Alliages Ternaires a Base D’uranium-Molybdene. Journal of Nuclear Materials, 4, 364-373.
[16] Christian, J.W. (1965) The Theory of Transformations in Metals and Alloys. Pergamon Press, New York.
[17] Hofman, G.L., Meyer, M.K. and Ray, A. (1998) Design of γ-Phase High-Density Uranium Alloys for LEU Dispersion Fuel Applications. Proceedings of the International Meeting on Reduced Enrichment for Research and Test Reactors, São Paulo, 18-23 October 1998, 12 p.
[18] Waldron, M.B., Burnett, R.C. and Pough, S.F. (1958) The Mechanical Properties of Uranium-Molybdenum Alloys. AERE-M/R Report 2554.
[19] Saller, H.A., Dickerson, R.F. and Murr, W.E. (1955) Uranium Alloys for High Temperature Applications. Battelle Memorial Institute Report BMI-1098.
[20] Repas, P.E., et al. (1964) Transformation Characteristics of U-Mo and U-Mo-Ti Alloys. Transactions: American Society for Metals, 57, 150-163.
[21] Blackledge, A. and Libowitz, C. (1965) Metal Hydrides. 2nd Edition, Pergamon Press, New York.
[22] Oliveira, F.B.V. and Andrade, D.A. (2013) Stability of Gamma-UMo Nuclear Fuel Alloys by Thermal Analysis. In: Mesquita, A.Z., Ed., Current Research in Nuclear Reactor Technology in Brazil and Worldwide, Intech Science Publishing, 91-115.
http://dx.doi.org/10.5772/53340
[23] Hofman, G.L., Meyer, M.K. and Park, J.-M. (2000) Observations on the Irradiation Behavior of U-Mo Alloys Dispersion Fuels. Proceedings of the 23rd RERTR Meeting, Las Vegas, 1-6 October 2000, 13 p.      eww141010lx

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