Positron annihilation study and computational modeling of defect production in neutron-irradiated reactor pressure vessel steels

被引:10
|
作者
Kwon, J.
Mohamed, H. F. M.
Kim, Y.-M.
Kim, W.
机构
[1] Korea Atom Energy Res Inst, Taejon 305353, South Korea
[2] Menia Univ, Fac Sci, Dept Phys, El Minia, Egypt
关键词
positron annihilation; Doppler broadening; reactor pressure vessel; molecular dynamics; point defect kinetics;
D O I
10.1016/j.nimb.2007.05.022
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Positron annihilation spectroscopy (PAS) and a computer simulation were used to investigate a defect production in reactor pressure vessel (RPV) steels irradiated by neutrons. The RPV steels were irradiated at 250 degrees C in a high-flux advanced neutron application reactor. The PAS results showed that mainly single vacancies were created to a great extent as a result of a neutron irradiation. Formation of vacancies in the irradiated materials was also confirmed by a coincidence Doppler broadening measurement. For estimating the concentration of the point defects in the RPV steels, we applied computer simulation methods, including molecular dynamics (MD) simulation and point defect kinetics model calculation. MD simulations of displacement cascades in pure Fe were performed with a 4.7 keV primary knock-on atom to obtain the parameters related to displacement cascades. Then, we employed the point defect kinetics model to calculate the concentration of the point defects. By combining the positron trapping rate from the PAS measurement and the calculated vacancy concentrations, the trapping coefficient for the vacancies in the RPV steels was determined, which was about 0.97 x 10(15) s(-1). The application of two techniques, PAS and computer simulation, provided complementary information on radiation-induced defect production. (c) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:255 / 260
页数:6
相关论文
共 50 条
  • [21] Characterization of defect accumulation in neutron-irradiated Mo by positron annihilation spectroscopy
    Eldrup, M.
    Li, Meimei
    Snead, L. L.
    Zinkle, S. J.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION B-BEAM INTERACTIONS WITH MATERIALS AND ATOMS, 2008, 266 (16): : 3602 - 3606
  • [22] A STUDY OF DEFECT STATES IN NEUTRON-IRRADIATED ZIRCONIUM USING POSITRON-ANNIHILATION SPECTROSCOPY
    CARPENTER, GJC
    EASTERDAY, HT
    MCKEE, BTA
    JOURNAL OF NUCLEAR MATERIALS, 1983, 116 (2-3) : 277 - 286
  • [23] POINT-DEFECT PRODUCTION AND ANNIHILATION IN NEUTRON-IRRADIATED ZIRCONIUM
    MACEWEN, SR
    ZEE, RH
    BIRTCHER, RC
    ABROMEIT, C
    JOURNAL OF NUCLEAR MATERIALS, 1984, 123 (1-3) : 1036 - 1040
  • [24] Positron annihilation measurements on nuclear reactor pressure vessel steels
    1600, Editions de Physique, Les Ulis, France (05):
  • [25] A REVIEW OF MECHANICAL PROPERTIES OF NEUTRON-IRRADIATED PRESSURE VESSEL STEELS
    BERGGREN, RG
    MATERIALS RESEARCH AND STANDARDS, 1968, 8 (05): : 61 - &
  • [26] POSITRON-ANNIHILATION IN NEUTRON-IRRADIATED GERMANIUM
    BARTENEV, GM
    BARDYSHEV, II
    ERCHAK, DP
    STELMAKH, VF
    TSYGANOV, AD
    FIZIKA TVERDOGO TELA, 1979, 21 (04): : 1185 - 1188
  • [27] Effect of Neutron Flux on Magnetic Hysteresis in Neutron-Irradiated Pressure Vessel Steels
    Kobayashi, Satoru
    Yamamoto, Takuya
    Klingensmith, Doug
    Odette, G. Robert
    Kikuchi, Hiroaki
    Kamada, Yasuhiro
    IEEE TRANSACTIONS ON MAGNETICS, 2014, 50 (04)
  • [28] NEUTRON EMBRITTLEMENT OF REACTOR PRESSURE-VESSEL STEELS - A CHALLENGE TO POSITRON-ANNIHILATION AND OTHER METHODS
    BRAUER, G
    POPP, K
    PHYSICA STATUS SOLIDI A-APPLIED RESEARCH, 1987, 102 (01): : 79 - 90
  • [29] An object kinetic Monte Carlo model for the microstructure evolution of neutron-irradiated reactor pressure vessel steels
    Messina, Luca
    Chiapetto, Monica
    Olsson, Par
    Becquart, Charlotte S.
    Malerba, Lorenzo
    PHYSICA STATUS SOLIDI A-APPLICATIONS AND MATERIALS SCIENCE, 2016, 213 (11): : 2974 - 2980
  • [30] Prediction of the brittle fracture toughness of neutron-irradiated reactor pressure vessel steels. Part 2
    Margolin B.Z.
    Shvetsova V.A.
    Gulenko A.G.
    Strength of Materials, 2001, Springer Science and Business Media, LLC (33) : 201 - 206