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Thermal-hydraulic study of air-cooled passive decay heat removal system for APR+ under extended station blackout

  • Kim, Do Yun (Korea Advanced Institute of Science & Technology (KAIST), Department of Nuclear and Quantum Engineering) ;
  • NO, Hee Cheon (Korea Advanced Institute of Science & Technology (KAIST), Department of Nuclear and Quantum Engineering) ;
  • Yoon, Ho Joon (Department of Nuclear Engineering, Khalifa University of Science, Technology & Research (KUSTAR)) ;
  • Lim, Sang Gyu (Korea Hydro and Nuclear Power Co.-Central Research Institute)
  • Received : 2018.05.01
  • Accepted : 2018.09.12
  • Published : 2019.02.25

Abstract

The air-cooled passive decay heat removal system (APDHR) was proposed to provide the ultimate heat sink for non-LOCA accidents. The APDHR is a modified one of Passive Auxiliary Feed-water system (PAFS) installed in APR+. The PAFS has a heat exchanger in the Passive Condensate Cooling Tank (PCCT) and can remove decay heat for 8 h. After that, the heat transfer rate through the PAFS drastically decreases because the heat transfer condition changes from water to air. The APDHR with a vertical heat exchanger in PCCT will be able to remove the decay heat by air if it has sufficient natural convection in PCCT. We conducted the thermal-hydraulic simulation by the MARS code to investigate the behavior of the APR + selected as a reference plant for the simulation. The simulation contains two phases based on water depletion: the early phase and the late phase. In the early phase, the volume of water in PCCT was determined to avoid the water depletion in three days after shutdown. In the late phase, when the number of the HXs is greater than 4089 per PCCT, the MARS simulation confirmed the long-term cooling by air is possible under extended Station Blackout (SBO).

Keywords

References

  1. INPO, Special Report on the Nuclear Accident at the Fukushima Daiichi Nuclear Power Station, 2011. Revision 0.
  2. Y.P. Zhang, S.Z. Qiu, G.H. Su, W.X. Tian, Design and transient analyses of emergency passive residual heat removal system of CPR1000, Nucl. Eng. Des. 242 (2012) 247-256. https://doi.org/10.1016/j.nucengdes.2011.09.036
  3. M. Wang, H. Zhao, Y. Zhang, G. Su, W. Tian, S. Qiu, Research on the designed emergency passive residual heat removal system during the station blackout scenario for CPR1000, Ann. Nucl. Energy 45 (2012) 86-93. https://doi.org/10.1016/j.anucene.2012.03.004
  4. M. Xi, Y. Wu, W. Tian, G.H. Su, S. Qiu, The influence of ocean conditions on thermal-hydraulic characteristics of a passive residual heat removal system, Prog. Nucl. Energy 85 (2015) 573-587. https://doi.org/10.1016/j.pnucene.2015.08.010
  5. S. Kim, B.U. Bae, Y.J. Cho, Y.S. Park, K.H. Kang, B.J. Yun, An experimental study on the validation of cooling capability for the Passive Auxiliary Feedwater System (PAFS) condensation heat exchanger, Nucl. Eng. Des. 260 (2013) 54-63. https://doi.org/10.1016/j.nucengdes.2013.03.016
  6. B.U. Bae, S. Kim, Y.S. Park, K.H. Kang, Integral effect test and code analysis on the cooling performance of the PAFS (passive auxiliary feedwater system) during an FLB (feedwater line break) accident, Nucl. Eng. Des. 275 (2014) 249-263. https://doi.org/10.1016/j.nucengdes.2014.05.023
  7. Y.J. Cho, S.W. Bae, B.U. Bae, S. Kim, K.H. Kang, B.J. Yun, Analytical studies of the heat removal capability of a passive auxiliary feedwater system (PAFS), Nucl. Eng. Des. 248 (2012) 306-316. https://doi.org/10.1016/j.nucengdes.2012.03.046
  8. M.S. Kim, J. Cheon, S.H. Kang, The development of a passive auxiliary feedwater system in APR+, in: Proceedings of ICAPP, 10, 2010 (San Deigo, CA, USA).
  9. J. Cheon, et al., The development of a passive auxiliary feedwater system in APR+ Track 1: water-cooled reactor programs & issues, in: Proceedings of ICAPP'10, June 13-17, 2010 (San Diego, CA, USA).
  10. K.H. Kang, S. Kim, B.U. Bae, Y.J. Cho, Y.S. Park, B.J. Yun, Separate and integral effect tests for validation of cooling and operational performance of the APR+ passive auxiliary feedwater system, Nucl. Eng. Technol. 44 (6) (2012) 597-610. https://doi.org/10.5516/NET.02.2012.710
  11. B.U. Bae, B.J. Yun, S.W. Bae, C.H. Song, Design of horizontal condensation heat exchanger for PAFS (passive auxiliary feedwater system) in APR+, in: International Conference of Multiphase Flow in Industrial Plants, September, 2010, September, pp. 21-23.
  12. KAERI, MARS Code Manual volume II: input Requirements, 2009. http://www.iaea.org/inis/collection/NCLCollectionStore/_Public/36/095/36095321.pdf?r=1.
  13. KAERI, MARS Code Manual volume V: models and Correlations, 2009. http://www.iaea.org/inis/collection/NCLCollectionStore/_Public/42/004/42004666.pdf?r=1.
  14. S.H. Kang, H.R. Moon, Y.S. Park, Safety analysis of APR+ PAFS for CDF evaluation, J. Korean Soc. Saf. 28 (3) (2013) 123-128. June 2013. https://doi.org/10.14346/JKOSOS.2013.28.3.123
  15. C.H. Song, T.S. Kwon, B.J. Yun, K.Y. Choi, H.Y. Kim, H.G. Jun, Thermal-hydraulic R&Ds for the APR+ Developments in Korea, ICONE18, Xi'an, China, 2010.
  16. American Nuclear Society, Draft ANS-5.1/N18.5, Decay Energy Release Rates Following Shutdown of Uranium Fueled Thermal Reactors, October 1973.
  17. Korea Hydro and Nuclear Power Company, APR+, November 2013. https://aris.iaea.org/PDF/APR.pdf.
  18. U.S. Nuclear Regulatory Commission, State-of-the-Art Reactor Consequence Analyses (SOARCA) Project: Sequoyah Integrated Deterministic and Uncertainty Analyses, 2016 draft Report, https://www.nrc.gov/docs/ML1715/ML17156A270.pdf.
  19. D.Y. Kim, H.C. No, A CFD-based design optimization of air-cooled passive decay heat removal system, Nucl. Eng. Des. 337 (2018) 351-363. https://doi.org/10.1016/j.nucengdes.2018.07.008
  20. D.Y. Kim, H.C. No, H.S. Kim, Optimization methodology for large scale fin geometry on the steel containment of a Public Acceptable Simple SMR (PASS), Nucl. Eng. Des. 293 (2015) 304-312. https://doi.org/10.1016/j.nucengdes.2015.07.044
  21. B.U. Bae, S. Kim, Y.J. Cho, B.D. Kim, K.H. Kang, Experimental Study on Validation of Cooling Capability for PAFS (Passive Auxiliary Feedwater System) Condensation Heat Exchanger with PASCAL Facility, Korea Atomic Energy Research Institute, Korea, 2011. KAERI/TR-4419/2011.
  22. Westinghouse Electric Company, AP1000 Design Control Document, 2011. Revision 17.