Image fusion of Secondary Ion Mass Spectrometry and Energy-dispersive X-Ray Spectroscopy data for the characterization of uranium-molybdenum fuel foils

被引:1
|
作者
Willingham, David [1 ]
Naes, Benjamin E. [1 ]
Tarolli, Jay G. [1 ]
Schemer-Kohrn, Alan [1 ]
Rhodes, Mark [1 ]
Dahl, Michael [1 ]
Guzman, Anthony [1 ]
Burkes, Douglas E. [1 ]
机构
[1] Pacific Northwest Natl Lab, 902 Battelle Blvd, Richland, WA 99352 USA
关键词
U-MO; NUCLEAR; ALLOY;
D O I
10.1016/j.jnucmat.2017.10.028
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Uranium-molybdenum (U-Mo) monolithic fuels represent one option for converting civilian research and test reactors operating with high enriched uranium (HEU) to low enriched uranium (LEU), effectively reducing the threat of nuclear proliferation world-wide. However, processes associated with fabrication of U-Mo monolithic fuels result in regions of elemental heterogeneity, observed as bands traversing the cross-section of representative samples. Isotopic variations (e.g., U-235 and U-238) could also be introduced because of associated processing steps, particularly since HEU feedstock is melted with natural or depleted uranium diluent to produce LEU. This study demonstrates the utility of correlative analysis of Energy-Dispersive X-ray Spectroscopy (EDS) and Secondary Ion Mass Spectrometry (SIMS) with their image data streams using image fusion, resulting in a comprehensive microanalytical characterization toolbox. Elemental and isotopic measurements were made on a sample from the Advanced Test Reactor (ATR) Full-sized plate In-center flux trap Position (AFIP)-7 experiment and compared to previous optical and electron microscopy results. The image fusion results are characteristic of SIMS isotopic maps, but with the spatial resolution of EDS images and, therefore, can be used to increase the effective spatial resolution of the SIMS imaging results to better understand homogeneity or heterogeneity that persists because of processing selections. Visual inspection using the image fusion methodology indicated slight variations in the 235U/238U ratio and quantitative analysis using the image intensities across several FoVs revealed an average 235U atom percent value of 17.9 +/- 2.4%, which was indicative of a non-uniform U isotopic distribution in the area sampled. Further development of this capability is useful for understanding the connections between the properties of LEU fuel alternatives and the ability to predict performance under irradiation. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:348 / 354
页数:7
相关论文
共 50 条
  • [21] SURFACE-ANALYSIS OF PULVERIZED FUEL ASH BY SECONDARY ION MASS-SPECTROMETRY AND X-RAY PHOTOELECTRON-SPECTROSCOPY
    ALLEN, GC
    JONES, AR
    WARNER, AG
    PARTICLE CHARACTERIZATION, 1986, 3 (02): : 89 - 95
  • [22] AB-PLS-DA: Pansharpening tailored for scanning electron microscopy and energy-dispersive X-ray spectrometry multimodal fusion
    Sihvonen, Tuomas
    Duma, Zina-Sabrina
    Reinikainen, Satu-Pia
    MICRON, 2024, 177
  • [23] Application of Scanning Electron Microscopy/Energy-Dispersive X-Ray Spectroscopy for Characterization of Detrital Minerals in Karst Cave Speleothems
    Zupancic, Nina
    Miler, Milos
    Sebela, Stanka
    Jarc, Simona
    MICROSCOPY AND MICROANALYSIS, 2016, 22 (01) : 87 - 98
  • [24] Quantitative analysis of energy-dispersive X-ray fluorescence spectroscopy based on machine learning and a generative data enhancement technique
    Zhao, Wei
    Ai, Xianyun
    Zhao, Hui
    APPLIED OPTICS, 2023, 62 (36) : 9476 - 9485
  • [25] Characterization of insulin adsorption in the presence of albumin by time-of-flight secondary ion mass spectrometry and X-ray photoelectron spectroscopy
    Henry, M.
    Dupont-Gillain, C.
    Bertrand, P.
    LANGMUIR, 2008, 24 (02) : 458 - 464
  • [26] Image enhancement and microstructure characterization of energy dispersive X-ray spectroscopy images of blended cement pastes
    Li, Lihui
    Yang, Jian
    EXPERT SYSTEMS WITH APPLICATIONS, 2024, 247
  • [27] Optimizing energy dispersive X-Ray Spectroscopy (EDS) image fusion to Scanning Electron Microscopy (SEM) images
    Duma, Zina-Sabrina
    Sihvonen, Tuomas
    Havukainen, Jouni
    Reinikainen, Ville
    Reinikainen, Satu-Pia
    MICRON, 2022, 163
  • [28] Secondary ion mass spectrometry and x-ray photoelectron spectroscopy correlation study of nitrided gate oxide
    Bradbury, CA
    Blackmer, C
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A-VACUUM SURFACES AND FILMS, 2000, 18 (04): : 1056 - 1060
  • [29] SECONDARY ION MASS-SPECTROMETRY AND X-RAY PHOTOELECTRON-SPECTROSCOPY OF DERIVATIZED COAL SURFACES
    MARTIN, RR
    MCINTYRE, NS
    MACPHEE, JA
    AYE, KT
    ENERGY & FUELS, 1988, 2 (02) : 118 - 121
  • [30] Calcium induced oxidation of PPV studied with X-ray photoelectron spectroscopy and secondary ion mass spectrometry
    Andersson, GG
    van Gennip, WJH
    Niemantsverdriet, JW
    Brongersma, HH
    CHEMICAL PHYSICS, 2002, 278 (2-3) : 159 - 167