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Development of CONTHAC-3D and hydrogen distribution analysis of HPR1000

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摘要 An in-house code,CONTHAC-3D,was developed to calculate and analyze thermal-hydraulic phenomena in containments during severe accidents.CONTHAC-3D is a three-dimensional computational fluid dynamics code that can be applied to predict gas flow,diffusion,and steam condensation in a containment during a severe hypothetical accident,as well as to obtain an estimate of the local hydrogen concentration in various zones of the containment.CONTHAC-3D was developed using multiple models to simulate the features of the proprietary systems and equipment of HPR1000 and ACP100,such as the passive cooling system,passive autocatalytic recombiners and the passive air cooling system.To validate CONTHAC-3D,a GX6 test was performed at the Battelle Model Containment facility.The hydrogen concentration and temperature monitored by the GX6 test are accurately predicted by CONTHAC-3D.Subsequently,the hydrogen distribution in the HPR1000 containment during a severe accident was studied.The results show that the hydrogen removal rates calculated using CONTHAC-3D for different types of PARs agree well with the theoretical values,with an error of less than 1%.As the accident progresses,the hydrogen concentration in the lower compartment becomes higher than that in the large space,which implies that the lower compartment has a higher hydrogen risk than the dome and large space at a later stage of the accident.The amount of hydrogen removed by the PARs placed on the floor of the compartment is small;therefore,raising the installation height of these recombiners appropriately is recommended.However,we do not recommend installing all autocatalytic recombiners at high positions.The study findings in regard to the hydrogen distribution in the HPR1000 containment indicate that CONTHAC-3D can be applied to the study of hydrogen risk containment.
出处 《Nuclear Science and Techniques》 SCIE EI CAS CSCD 2024年第2期210-221,共12页 核技术(英文)
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  • 1HIRT C, AMSDEN A, COOK J. An arbitrary Lagrangian-Eulerian computing method for all flow speeds[J]. Journal of Computational Phys- ics, 1997, 135(2): 203-216.
  • 2LAUNDER B E, SPALDING D B. Lectures in mathematical models of turbulence [M]. USA: Academic Press, 1972.
  • 3XIAO J, JORDAN T, SPORE J W, et al. GAS- FLOW: A computational fluid dynamics code for gases, aerosols and combustion, Volume I: The- ory and computational model [R]. Karlsruhe: KIT and LANL, 2014.
  • 4BIRD R B, STEWART W E, LIGHTFOOT E N. Transport phenomena[M]. New York: John Wiley I% Sons, 1960.
  • 5ROHSENOW W M, CHOI H. Heat, mass and momentum transfer[M]. New Jersey: Prentice- Hall, 1961.
  • 6KANZLEITER T. Hyjet pacos tests in the mod- el containment[R]. Frankfurt: Battelle Institu- te, 1996.
  • 7ROYL P, TRAVIS J R, JONGTAE K, et al. GASFLOW: A computational fluid dynamics code for gases, aei"osols and combustion, Volume 3: Assessment manual[R]. Karlsruhe: FZK and Korean Atomic Energy Research Institute, 2008.
  • 8WOLF L, VALENCIA L. Results of the prelim inary hydrogen distribution experiment HDR and future experiments for phase 11 [C]//16th Water Reactor Safety Information Meeting. Gaithers- burg, Maryland: US NRC, 1988: 189-222.
  • 9Long He,Cheng-Gang Yu,Rui-Min Ji,Wei Guo,Ye Dai,Xiang-Zhou Cai.Development of a dynamics model for graphite-moderated channel-type molten salt reactor[J].Nuclear Science and Techniques,2019,30(1):145-155. 被引量:2
  • 10陈美兰,林继铭,白伟.氢气安全分析软件CYCAS的研发及初步验证[J].原子能科学技术,2016,50(2):295-300. 被引量:3

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