Radiation re-solution of fission gas in non-oxide nuclear fuel
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[1] Ivan Chakarov,et al. An investigation of collision propagation in energetic ion initiated cascades in copper , 1995 .
[2] C. Ronchi,et al. Calculations on the in-pile behavior of fission gas in oxide fuels , 1971 .
[3] Werner Brandt,et al. Effective stopping-power charges of swift ions in condensed matter , 1982 .
[4] M. Verwerft,et al. In-pile Xe diffusion coefficient in UO2 determined from the modeling of intragranular bubble growth and destruction under irradiation , 2008 .
[5] V.Kh. Ferleger,et al. On non-binary nature of the collisions of heavy hyperthermal particles with solid surfaces , 2000 .
[6] Robin W. Grimes,et al. Molecular dynamics study of Xe bubble re-solution in UO2 , 2012 .
[7] H. Matzke,et al. The effect of fission spikes on fission gas re-solution , 1973 .
[8] Donald R. Olander,et al. Fundamental Aspects of Nuclear Reactor Fuel Elements , 1976 .
[9] Daniel Schwen,et al. Molecular dynamics simulation of intragranular Xe bubble re-solution in UO2 , 2009 .
[10] R. J. White,et al. A new fission-gas release model , 1983 .
[11] H. Blank,et al. Properties of Fission Spikes in UO2 and UC Due to Electronic Stopping Power , 1972, April 16.
[12] C. Ronchi,et al. Swelling analysis of highly rated MX-type LMFBR fuels. I. Restructuring and porosity behaviour , 1975 .
[13] Robin W. Grimes,et al. Predicting the probability for fission gas resolution into uranium dioxide , 2009 .
[14] K. Une,et al. High resolution TEM observation and density estimation of Xe bubbles in high burnup UO2 fuels , 1998 .
[15] R. W. Schleicher,et al. The Energy Multiplier Module: Advancing the Nuclear Fuel Cycle through Technology Innovations , 2013 .
[16] C. Ronchi,et al. Fission-Fragment Spikes in Uranium Dioxide. , 2002 .
[17] Hj. Matzke,et al. Science of advanced LMFBR fuels , 1986 .
[18] Gerhard Hobler,et al. On the useful range of application of molecular dynamics simulations in the recoil interaction approximation , 2001 .
[19] Donald R. Olander,et al. Re-solution of fission gas : A review: Part. I. Intragranular bubbles , 2006 .
[20] M. V. Speight,et al. A Calculation on the Migration of Fission Gas in Material Exhibiting Precipitation and Re-solution of Gas Atoms Under Irradiation , 1969 .
[21] J. A. Turnbull,et al. A review of irradiation induced re-solution in oxide fuels , 1980 .
[22] Hubert Blank,et al. Nonoxide Ceramic Nuclear Fuels , 2006 .
[23] Gary S. Was,et al. Fundamentals of Radiation Materials Science: Metals and Alloys , 2007 .
[24] M. Posselt,et al. Comparison of BC and MD simulations of low-energy ion implantation , 1995 .
[25] K. Une,et al. Microstructural change and its influence on fission gas release in high burnup UO2 fuel , 1992 .
[26] R. S. Nelson. The stability of gas bubbles in an irradiation environment , 1969 .
[27] C. Ronchi,et al. Swelling analysis of highly-rated MX-type LMFBR fuels: II. Microsopic swelling behaviour , 1978 .
[28] C. Ronchi,et al. Radiation re-solution of fission gas in uranium dioxide and carbide , 1986 .
[29] Giovanni Pastore,et al. Modelling of fission gas swelling and release in oxide nuclear fuel and application to the TRANSURANUS code , 2012 .
[30] J. A. Turnbull,et al. The distribution of intragranular fission gas bubbles in UO2 during irradiation , 1971 .
[31] Giovanni Pastore,et al. Physics-based modelling of fission gas swelling and release in UO2 applied to integral fuel rod analysis , 2013 .
[32] C. Ronchi,et al. Extrapolated equation of state for rare gases at high temperatures and densities , 1981 .