DOI QR코드

DOI QR Code

THREE-DIMENSIONAL CORE DESIGN OF A SUPER FAST REACTOR WITH A HIGH POWER DENSITY

  • Cao, Liangzhi (School of Nuclear Science and Technology, Xi'an Jiaotong University) ;
  • Oka, Yoshiaki (Nuclear Professional School, The University of Tokyo) ;
  • Ishiwatari, Yuki (Department of Nuclear Engineering and Management, The University of Tokyo) ;
  • Ikejiri, Satoshi (Nuclear Professional School, The University of Tokyo) ;
  • Ju, Haitao (Nuclear Professional School, The University of Tokyo)
  • Published : 2010.02.28

Abstract

The SuperCritical Water-cooled Reactor (SCWR) pursues high power density to reduce its capital cost. The fast spectrum SCWR, called a super fast reactor, can be designed with a higher power density than thermal spectrum SCWR. The mechanism of increasing the average power density of the super fast reactor is studied theoretically and numerically. Some key parameters affecting the average power density, including fuel pin outer diameter, fuel pitch, power peaking factor, and the fraction of seed assemblies, are analyzed and optimized to achieve a more compact core. Based on those sensitivity analyses, a compact super fast reactor is successfully designed with an average power density of 294.8 W/$cm^3$. The core characteristics are analyzed by using three-dimensional neutronics/thermal-hydraulics coupling method. Numerical results show that all of the design criteria and goals are satisfied.

Keywords

References

  1. Y. Oka, Y. Ishiwatari, et al., "Research Program of a Super Fast Reactor", Proc. ICAPP'06, Paper 6353, Reno, NV, USA, June 4-8, 2006.
  2. K. Yamada, et al., "Recent Activities and Future Plan of Thermal-Spectrum SCWR Development in Japan", Proc. 3rd Int. Symposium on SCWR-Design and Technology, Paper No.SCR2007-P054, Shanghai, China, March 12-15,2007.
  3. J. Starflinger, Y. Schulengerg, et al., European Research Activities within the Project: High Performance Light Water Reactor Phase 2. Proc. ICAPP2007, Paper 7146, Nice, France, May 13-18,2007.
  4. Y. Y. Bae, et al., "SCWR Research in Korea", Proc. 3rd Int. Symposium on SCWR-Design and Technology, Paper No.SCR2007-P006, Shanghai, China, March 12-15,2007.
  5. Y. Ishiwatari, Y. Oka, S. Koshizuka, "Safety of the Super LWR", Nuclear Engineering and Technology, 39(4), pp257- 272 (2007). https://doi.org/10.5516/NET.2007.39.4.257
  6. L. Cao, Y. Oka, Y. Ishiwatari, et al., "Fuel, core design and subchannel analysis of a Super Fast Reactor", J. Nucl. Sci. Technol, 45(2), pp1-11, (2008). https://doi.org/10.3327/jnst.45.1
  7. L. Cao, Y. Oka, Y. Ishiwatari, et al., "Three-Dimensional Core Analysis on a Super Fast Reactor with Negative Local Void Reactivity", Nuclear Engineering and Design, 239(2), pp408-417(2009). https://doi.org/10.1016/j.nucengdes.2008.10.021
  8. K. Okumura, T. Kugo, K. Kaneko, et al., SRAC (Ver.2002); The comprehensive neutronics calculation code system, Department of Nuclear Energy System, Japan Atomic Energy Research Institute (JAERI), (2002).
  9. S. Uchikawa, T. Okubo, T. Kugo, et al., "Conceptual design of innovative water reactor for Flexible Fuel Cycle (FLWR) and its recycle characteristics", J. Nucl. Sci. Technol.,44(3), p277-284(2007). https://doi.org/10.3327/jnst.44.277
  10. A. E. Waltar and A. B. Reynolds, "Fast Breeder Reactors", Pergamon Press (1980).
  11. J. Yoo, Y. Ishiwatari, Y. Oka, et al., "Conceptual design of compact supercritical water-cooled fast reactor with thermal hydraulic coupling", Ann. Nucl. Energy, 33, pp945-956(2006). https://doi.org/10.1016/j.anucene.2006.07.004
  12. T. Tanabe, S. Koshizuka and Y. Oka et al., "A subchannel analysis code for supercritical-pressure LWR with downward flowing water rods", Proceedings of the ICAPP04, Pittsburgh, USA, June 13-17, 2004.