Probability of fracture and life extension estimate of the high-flux isotope reactor vessel

被引:2
|
作者
Chang, SJ [1 ]
机构
[1] Oak Ridge Natl Lab, Res Reactors Div, Oak Ridge, TN 37831 USA
来源
JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME | 1998年 / 120卷 / 03期
关键词
D O I
10.1115/1.2842060
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
The state of the vessel steel embrittlement as a result of neutron irradiation can be measured by its increase in ductile-brittle transition temperature (DBTT)for fracture, often denoted by RTNDT for carbon steel. This transition temperature can be calibrated by the drop-weight rest and, sometimes, by the Charpy impact test. The life extension for the high-flux isotope reactor (HFIR) vessel is calculated by using the method of fracture mechanics that is incorporated with the effect of the DBTT change. The failure probability of the HEIR vessel is limited as the life of the vessel by the reactor core melt probability of 10(-4). The operating safety of the reactor is ensured by periodic hydrostatic pressure test (hydrotest). The hydrotest is performed in order to determine a safe vessel static pressure. The fracture probability as a result of the hydrostatic pressure test is calculated and is used to determine the life of the vessel. Failure to perform hydrotest imposes the limit on the life of the vessel. The conventional method of fracture probability calculations such as that used by the NRC-sponsored PRAISE CODE and the FAVOR CODE developed in this Laboratory are based on the Monte Carlo simulation. Heavy computations are required. An alternative method of fracture probability calculation by direct probability integration is developed in this paper. The present approach offers simple and expedient ways to obtain numerical results without losing any generality. This approach provides a clear analytical expression on the physical random variables to be integrated, yet requires much less computation time. In this paper, numerical results on I) the probability of vessel fracture, 2) the hydrotest time interval, and 3) the hydrotest pressure as a result of the DBTT increase are obtained. Limiting the probabilities of the vessel fracture as a result of hydrotest to 10-4 implies that the reactor vessel life can be extended up to 50 EFPY (100 MW) with the minimum vessel operating temperature equal to 85 degrees F.
引用
收藏
页码:290 / 296
页数:7
相关论文
共 50 条
  • [41] HIGH-FLUX REACTOR PIK AND THE ASSOCIATED RESEARCH-PROGRAM
    SEREBROV, AP
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 1989, 284 (01): : 212 - 215
  • [42] RESEARCH-PROGRAM AT LNPI HIGH-FLUX REACTOR PIK
    OKOROKOV, AI
    PHYSICA B, 1991, 174 (1-4): : 443 - 450
  • [43] PROJECT 139 FOR THE IRRADIATION OF STEELS IN THE PETTEN HIGH-FLUX REACTOR
    ZEISSER, P
    MASON, F
    ATOMKERNENERGIE-KERNTECHNIK, 1982, 40 (03): : 179 - 184
  • [44] DEVELOPMENT OF ALUMINUM-BASE EU2O3 CONTROL RODS FOR HIGH-FLUX ISOTOPE REACTOR
    BEAVER, RJ
    LEITTEN, CF
    ADAMSON, GM
    TRANSACTIONS OF THE AMERICAN NUCLEAR SOCIETY, 1967, 10 (01): : 137 - &
  • [45] Optimization of ray-tracing simulations to confirm performance of the GP-SANS instrument at the High-Flux Isotope Reactor
    Rogers, James M.
    Frost, Matthew J.
    Debeer-Schmitt, Lisa M.
    NUCLEAR INSTRUMENTS & METHODS IN PHYSICS RESEARCH SECTION A-ACCELERATORS SPECTROMETERS DETECTORS AND ASSOCIATED EQUIPMENT, 2024, 1069
  • [46] THE TRISTAN ONLINE MASS SEPARATOR AT THE BROOKHAVEN HIGH-FLUX BEAM REACTOR
    BRENNER, DS
    APRAHAMIAN, A
    MARTEL, M
    CHRIEN, RE
    CHU, YY
    GILL, RL
    GOWDY, GM
    LIOU, HI
    SHMID, M
    STELTS, ML
    CLARK, DD
    GOLDHABER, GS
    YEH, TR
    GREENWOOD, R
    JOHNSON, L
    HILL, JC
    SISTEMICH, K
    WOHN, FK
    YAMAMOTO, H
    MEYER, RA
    CHUNG, C
    WALTERS, WB
    REHFIELD, D
    DEJBAKHSH, H
    PETRY, RF
    REEDER, PL
    WARNER, RA
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1981, 182 (AUG): : 46 - NUCL
  • [47] A MAGNETIC MULTIPOLE REACTOR FOR HIGH-FLUX REACTIVE-ION ETCHING
    KUYPERS, AD
    GRANNEMAN, EHA
    HOPMAN, HJ
    JOURNAL OF APPLIED PHYSICS, 1988, 63 (06) : 1899 - 1903
  • [48] NEW DIFFRACTOMETERS AT THE IBR-2 HIGH-FLUX PULSED REACTOR
    BALAGUROV, AM
    PHYSICA B, 1991, 174 (1-4): : 542 - 545
  • [49] OPTIMUM SM-149 BURNUP IN SHUTDOWN OF A HIGH-FLUX REACTOR
    ZARITSKA.TS
    RUDIK, AP
    SOVIET ATOMIC ENERGY-USSR, 1969, 26 (05): : 513 - &
  • [50] MATERIALS TESTING METHODS IN SM-2 HIGH-FLUX REACTOR
    TSYKANOV, VA
    SAMSONOV, BV
    SOVIET ATOMIC ENERGY-USSR, 1971, 30 (02): : 285 - +