Low-temperature irradiation behavior of uranium-molybdenum alloy dispersion fuel

被引:213
|
作者
Meyer, MK
Hofman, GL
Hayes, SL
Clark, CR
Wiencek, TC
Snelgrove, JL
Strain, RV
Kim, KH
机构
[1] Argonne Natl Lab, Idaho Falls, ID 83403 USA
[2] Argonne Natl Lab, Argonne, IL 60439 USA
[3] Korea Atom Energy Res Inst, Yusong Ku, Taejon 305600, South Korea
关键词
D O I
10.1016/S0022-3115(02)00850-4
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Irradiation tests have been conducted to evaluate the performance of a series of high-density uranium-molybdenum (U-Mo) alloy, aluminum matrix dispersion fuels. Fuel plates incorporating alloys with molybdenum content in the range of 4-10 wt% were tested. Two irradiation test vehicles were used to irradiate low-enrichment fuels to approximately 40 and 70 at.% U-235 burnup in the Advanced Test Reactor at fuel temperatures of approximately 65 degreesC. The fuel particles used to fabricate dispersion specimens for most of the test were produced by generating filings from a cast rod. In general, fuels with molybdenum contents of 6 wt% or more showed stable in-reactor fission gas behavior, exhibiting a distribution of small, stable gas bubbles. Fuel particle swelling was moderate and decreased with increasing alloy content. Fuel particles with a molybdenum content of 4 wt% performed poorly, exhibiting extensive fuel-matrix interaction and the growth of relatively large fission gas bubbles. Fuel particles with 4 or 6 wt% molybdenum reacted more rapidly with the aluminum matrix than those with hi.-her-alloy content. Fuel particles produced by an atomization process were also included in the test to determine the effect of fuel particle morphology and microstructure on fuel performance for the U-10Mo composition. Both of the U-10Mo fuel particle types exhibited good irradiation performance, but showed visible differences in fission gas bubble nucleation and growth behavior. (C) 2002 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:221 / 236
页数:16
相关论文
共 50 条
  • [21] Radiation resistance of high-density uranium-molybdenum dispersion fuel for nuclear research reactors
    Vatulin, AV
    Morozov, AV
    Suprun, VB
    Petrov, YI
    Trifonov, YI
    ATOMIC ENERGY, 2006, 100 (01) : 37 - 46
  • [22] MEASUREMENT OF THE VOLUME, PRESSURE, AND COMPOSITION OF GASES INSIDE A BULGE IN IRRADIATED FUEl ELEMENTS WITH URANIUM-MOLYBDENUM DISPERSION FUEL
    Golosov, O. A.
    Nikolkin, V. N.
    Lyutikova, M. S.
    Bedin, V. V.
    D'yakov, A. A.
    ATOMIC ENERGY, 2017, 121 (04) : 265 - 268
  • [23] CERTAIN PECULIARITIES IN BEHAVIOR OF URANIUM DURING FORMATION OF URANIUM-MOLYBDENUM DEPOSITS
    MELNIKOV, IV
    BERZINA, IG
    ATOMNAYA ENERGIYA, 1973, 35 (01): : 3 - 9
  • [24] Particulars of the Behavior Under Irradiation of Dispersion Fuel Elements with the Uranium Dioxide + Aluminum Alloy Fuel Composition
    G. V. Kulakov
    A. V. Vatulin
    S. A. Ershov
    Yu. V. Konovalov
    A. V. Morozov
    V. I. Sorokin
    V. V. Fedotov
    V. Yu. Shishin
    V. A. Ovchinnikov
    Atomic Energy, 2015, 117 : 251 - 256
  • [25] Prospective Accident-Tolerant Uranium-Molybdenum Metal Fuel
    L. A. Karpyuk
    A. V. Lysikov
    A. A. Maslov
    E. N. Mikheev
    V. V. Novikov
    V. K. Orlov
    A. O. Titov
    Atomic Energy, 2021, 130 : 156 - 160
  • [26] INTERACTION OF URANIUM-MOLYBDENUM FUEL WITH AN ALUMINUM MATRIX WITH DEEP BURNUP
    Baranov, V. G.
    Nechaev, V. V.
    Produvalov, B. V.
    Shornikov, D. P.
    ATOMIC ENERGY, 2010, 108 (05) : 349 - 356
  • [27] Interaction of uranium-molybdenum fuel with an aluminum matrix with deep burnup
    V. G. Baranov
    V. V. Nechaev
    B. V. Produvalov
    D. P. Shornikov
    Atomic Energy, 2010, 108 : 349 - 356
  • [28] Prospective Accident-Tolerant Uranium-Molybdenum Metal Fuel
    Karpyuk, L. A.
    Lysikov, A., V
    Maslov, A. A.
    Mikheev, E. N.
    Novikov, V. V.
    Orlov, V. K.
    Titov, A. O.
    ATOMIC ENERGY, 2021, 130 (03) : 156 - 160
  • [29] METALLOGRAPHIC INVESTIGATION OF CORROSION CRACKING IN A URANIUM-MOLYBDENUM ALLOY.
    Fishman, Steven G.
    Crowe, C.Robert
    Praktische Metallographie/Practical Metallography, 1976, 13 (04): : 184 - 190
  • [30] Effect of Heat Treatment Process on Microstructure of Uranium-molybdenum Alloy
    Kang S.
    Zhang X.
    Yang Z.
    He Y.
    Dong Q.
    Yuanzineng Kexue Jishu/Atomic Energy Science and Technology, 2019, 53 (03): : 546 - 551