Numerical investigation on the formation of focusing effect in the IVR strategy

被引:0
|
作者
Yu, Peng [1 ]
Guo, Qiang [1 ]
Yu, Jingyi [1 ]
Yuan, Yidan [1 ]
Ma, Weimin [2 ]
机构
[1] China Nucl Power Engn Co LTD, CNNC Key Lab Severe Accid Res Nucl Power Safety, Beijing 100840, Peoples R China
[2] Royal Inst Technol KTH, S-10691 Stockholm, Sweden
关键词
Natural convection; Metal layer; In-vessel retention; Focusing effect; CFD; NATURAL-CONVECTION; RETENTION; NUMBER;
D O I
10.1016/j.pnucene.2024.105476
中图分类号
TL [原子能技术]; O571 [原子核物理学];
学科分类号
0827 ; 082701 ;
摘要
The "focusing effect" is the main challenging issue to the success of the IVR strategy, since the heat flux to the RPV wall could be significantly larger in the thin metal layer region than that in the oxide layer region. This paper numerically investigates the formation of focusing effect using validated CFD approach. The influences of the top cooling condition, layer height and material properties on the formation of focusing effect are investigated. Results indicate that, enhancing the top cooling mitigates the focusing effect. For the insufficiently-cooled top radiation situation, reducing the pool height significantly increases the focusing effect. For the sufficientlycooled top surface (e.g., with top water cooling), the focusing effect is not formed for all the cases regardless of the pool height. It demonstrates/supports the benefit of adding in-vessel flooding to IVR strategy as a supplementary measurement. It means that once the in-vessel flooding could be established in engineering to allow for a sufficient top cooling, the focusing effect would not likely be formed regardless of the pool height. It also confirms enhancing top cooling condition an efficient way to reduce focusing effect. As two main influential material properties, the effects of thermal conductivity and viscosity are also investigated. Either decreasing the thermal conductivity or increasing the viscosity (e.g., by addition of other materials) may reduce the focusing effect. Since IVR is a widely adopted severe accident mitigation strategy, this study could provide some insights in the formation of focusing effect and help inspiring or supporting possible new engineering features for a safety IVR design.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Investigation on the optical focusing effect of Fresnel biprism
    ZHANG Yingtao
    LI Hongguo
    Optoelectronics Letters, 2023, 19 (03) : 151 - 154
  • [32] NUMERICAL INVESTIGATION OF FORMATION OF TORMAC EQUILIBRIA
    SLEEPER, A
    BERK, HL
    JARDIN, SC
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1978, 23 (07): : 859 - 859
  • [33] Numerical investigation of the effect of injection strategy on a high-pressure isobaric combustion engine
    Liu, Xinlei
    Aljabri, Hammam
    Al-lehaibi, Moaz
    AlRamadan, Abdullah S.
    Badra, Jihad
    Im, Hong G.
    INTERNATIONAL JOURNAL OF ENGINE RESEARCH, 2023, 24 (02) : 595 - 609
  • [34] Numerical Investigation of the AFRODITE Transition Control Strategy
    Camarri, S.
    Fransson, J. H. M.
    Talamelli, A.
    PROGRESS IN TURBULENCE V, 2014, 149 : 65 - 69
  • [35] Experimental investigation of 3-D ERVC process for IVR strategy - CHF limits and visualization of boiling phenomena
    Lu, Wei
    Cheung, F. B.
    Hu, Teng
    Liu, Hao
    Zhang, Xiang
    Chang, Huajian
    NUCLEAR ENGINEERING AND DESIGN, 2017, 322 : 240 - 255
  • [36] Study on in-vessel injection strategy for IVR improvement
    Zheng, Mingguang
    Yan, Jinquan
    Cao, Kemei
    Lu, Wei
    Shi, Guobao
    Wang, Jiayun
    Zhang, Kun
    ANNALS OF NUCLEAR ENERGY, 2025, 213
  • [37] Study on Passive IVR Strategy Based on Steam Turbine
    Ma R.
    Sheng T.
    Yuan Y.
    Ma W.
    Hedongli Gongcheng/Nuclear Power Engineering, 2020, 41 (04): : 41 - 44
  • [38] Numerical investigations of the porosity effect on the shock focusing process
    K. Balasubramanian
    V. Eliasson
    Shock Waves, 2013, 23 : 583 - 594
  • [39] Numerical investigations of the porosity effect on the shock focusing process
    Balasubramanian, K.
    Eliasson, V.
    SHOCK WAVES, 2013, 23 (06) : 583 - 594
  • [40] Numerical investigation on detonation initiation using toroidal shock wave focusing
    Chen, Xiang
    Zhao, Ningbo
    Jia, Xiongbin
    Liu, Shizheng
    Zheng, Hongtao
    Li, Zhiming
    AEROSPACE SCIENCE AND TECHNOLOGY, 2019, 92 : 300 - 313