Barry H. Rabin
Idaho National Laboratory
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Featured researches published by Barry H. Rabin.
Archive | 2015
Francine J. Rice; Walter J. Williams; A.B. Robinson; Jason M. Harp; Mitch Meyer; Barry H. Rabin
The following report contains the results and conclusions for the post irradiation examinations performed on RERTR-12 Insertion 2 experiment plates. These exams include eddy-current testing to measure oxide growth; neutron radiography for evaluating the condition of the fuel prior to sectioning and determination of fuel relocation and geometry changes; gamma scanning to provide relative measurements for burnup and indication of fuel- and fission-product relocation; profilometry to measure dimensional changes of the fuel plate; analytical chemistry to benchmark the physics burnup calculations; metallography to examine the microstructural changes in the fuel, interlayer and cladding; and microhardness testing to determine the material-property changes of the fuel and cladding. These characterization activities are tailored specifically to define: • The mechanical response of fuel meat, cladding, and interlayers, including diffusion barrier integrity • Whether geometry is stable and predictable; that changes in channel gap do not compromise ability to cool fuel • That fuel performance is known and predictable • A limited set of physical properties that are important for the analysis of fuel burnup limits • Whether swelling is stable and predictable.
Journal of Nuclear Engineering and Radiation Science | 2015
Hakan Ozaltun; Pavel Medvedev; Barry H. Rabin
Monolithic plate-type fuels comprise of a high density, low enrichment, U10Mo fuel foil encapsulated in a cladding material. This concept generates several fabrication challenges such as flatness, centering or thickness variation. There are concerns, if these parameters have implications on overall performance. To investigate these inquiries, the effects of the foil flatness were studied. For this, a representative plate was simulated for an ideal case. The simulations were repeated for additional cases with various foil curvatures to evaluate the effects on the irradiation performance. The results revealed that the stresses and strains induced by fabrication process are not affected by the flatness of the foil. Furthermore, fabrication stresses in the foil are relieved relatively fast in the reactor. The effects of the foil flatness on peak irradiation stressstrains are minimal. There is a slight increase in temperature for the case with maximum curvature. The major impact is on the displacement characteristics. Furthermore, while the case with a flat foil produces a symmetrical swelling, if the foil is curved, more swelling occurs on the thin-cladding side and the plate bows during irradiation.
Journal of Nuclear Materials | 2014
Y. Park; J. Yoo; K. Huang; Dennis D. Keiser; Jan-Fong Jue; Barry H. Rabin; Glenn A. Moore; Yongho Sohn
Materials Characterization | 2015
Y. Park; N. Eriksson; Dennis D. Keiser; Jan-Fong Jue; Barry H. Rabin; Glenn A. Moore; Yongho Sohn
Journal of Nuclear Materials | 2013
D.W. Brown; Maria A. Okuniewski; J.D. Almer; L. Balogh; B. Clausen; John Okasinski; Barry H. Rabin
Nuclear Engineering and Design | 2018
Pavel Medvedev; Hakan Ozaltun; A.B. Robinson; Barry H. Rabin
Journal of Nuclear Materials | 2018
Jason Schulthess; Randy Lloyd; Barry H. Rabin; Michael Heighes; Tammy L. Trowbridge; Emmanuel Perez
Archive | 2012
Daniel M. Wachs; Francine J. Rice; Irina Glagalenko; A.B. Robinson; Barry H. Rabin; Mitch Meyer
international conference on fuel cell science engineering and technology fuelcell collocated with asme international conference on energy sustainability | 2017
Hakan Ozaltun; Barry H. Rabin
Journal of Nuclear Materials | 2017
Jan Fong Jue; Dennis D. Keiser; B.D. Miller; James W. Madden; A.B. Robinson; Barry H. Rabin