596
Views
15
CrossRef citations to date
0
Altmetric
Article

Sedimentation behavior of mixed solid particles

ORCID Icon, , , , , , , & show all
Pages 623-633 | Received 21 Sep 2017, Accepted 13 Dec 2017, Published online: 04 Jan 2018

References

  • Tentner AM, Parma E, Wei T, et al. Severe accident approach-final report evaluation of design measures for severe accident prevention and consequence mitigation. Lemont (IL): Argonne National Laboratory; 2010. ( ANL-GENIV-128).
  • Nakai R, Suzuki T, Kamiyama K, et al. Development of level 2 PSA methodology for sodium-cooled fast reactors (1) Overview of evaluation technology development. Proceedings of 8th International Topical Meeting on Nuclear Thermal Hydraulics, Operation and Safety; 2010 Oct 10–14; Shanghai, China. N8P0095.
  • Yakush S, Kudinov P, Dinh TN. Modeling of two phase natural convection flows in a water pool with a decay-heated debris bed. Proceedings of International Congress on Advances in Nuclear Power Plants (ICAPP 2008); 2008 June 8–12; Anaheim, CA, USA: American Nuclear Society. p. 1141–1150.
  • Ma W, Dinh TN, Buck M, et al. Analysis of the effect of bed inhomogeneity on debris coolability. Proceedings of 15th International Conference on Nuclear Engineering (ICONE15-10752); 2007 Apr 22–26; Nagoya, Japan. [CD-ROM].
  • Bürger M, Buck M, Schmidt W, et al. Validation and application of the WABE code: investigation of constitutive laws and 2D effects on debris coolability. Nucl Eng Des. 2006;236:2164–2188.
  • Yakush S, Kudninov P. Simulation of ex-vessel debris bed formation and coolability in a LWR severe accident. Proceedings of Implementation of Severe Accident Management Measures (ISAMM 2009); 2009 Oct 26–28; Schloss Böttstein, Switzerland.
  • Karbojian A, Ma W M, Kudinov P, et al. A scoping study of debris bed formation in the DEFOR test facility. Nucl Eng and Des. 2009;239:1653–1659.
  • Weimin MA, Truc-Nam D. The effects of debris bed's prototypical characteristics on corium coolability in a LWR severe accident. Nucl Eng and Des. 2010;240:598–608.
  • Zhang B, Harada T, Hirahara D, et al. Self-leveling onset criteria in debris bed. J Nucl Sci Technol. 2010;47:384–395.
  • Alvarez D, Amblard M. Fuel levelling. In: Mueller U, Guenther C. Proceedings of 5th Information Exchange Meeting on Post-Accident Debris Cooling; 1982 July 28–30; Karlsuhe, Germany: G. Braun; p. 28–3 3.
  • Shamsuzzaman M, Horie T, Fuke F, et al. Experimental evaluation of debris bed characteristics in particulate debris sedimentation behaviour. Proceedings of 21st International Conference on Nuclear Engineering (ICONE21); 2013 July 29–Aug 2; Chengdu, China. [CD-ROM].
  • Sheikh MAR, Son E, Kamiyama M, et al. Experimental investigation on characteristics of mixed particle debris in sedimentation and bed formation behavior. Proceedings of 11th International Topical Meeting on Nuclear Reactor Thermal Hydraulics, Operation and Safety (NUTHOS-11); 2016 Oct 9–13; Gyeongju, Korea. [CD-ROM].
  • Guo L, Morita K, Tagami H, et al. Numerical simulation of a self-leveling experiment using a hybrid method. Mech Eng J. 2014;1(4):TEP0024–TEP0024.
  • Guo L, Morita K, Tobita Y. Numerical simulation of gas-solid fluidized beds by coupling a fluid-dynamics model with the discrete element method. Ann Nucl Energy. 2014;72:31–38.
  • Tagami H, Tobita Y. Numerical simulation for debris bed behavior in sodium cooled fast reactor. Proceedings of 10th International Topical Meeting on Nuclear Thermal-Hydraulics, Operation and Safety; 2014 Dec 14–18; Okinawa, Japan. NUTHOS10-1141.
  • Guo L, Morita K, Tobita Y. Numerical simulations of gas-liquid-particle three-phase flows using a hybrid method. J Nucl Sci Technol. 2016;53(2):271–280.
  • Tobita Y, Kondo SA, Yamano H, et al. The development of SIMMER-III, an advanced computer program for LMFR safety analysis and its application to sodium experiments. Nucl Technol. 2006;153(3):245–255.
  • Yamano H, Tobita Y, Fujita S, et al. First 3-D calculation of core disruptive accident in a large-scale sodium-cooled fast reactor. Ann Nucl Energy. 2009;36(1):337–343.
  • Wen, CY, Yu, YH. Mechanics of fluidization. Chem Eng Prog Symp Ser. 1966;62(62):100–111.
  • Morita K, Matsumoto T, Nishi S, et al. A new empirical model for self-leveling behavior of cylindrical particle beds. J Nucl Sci Technol. 2016;53(5):713–725.
  • Fauske HK, Koyama K. Assessment of fuel coolant interactions (FCIs) in the FBR core disruptive accident (CDA). J Nucl Sci Technol. 2002;39(6):608–614.
  • Shamsuzzaman M, Horie T, Fuke F, et al. Experimental study on debris bed characteristics for the sedimentation behavior of solid particles used as simulant debris. Ann Nucl Energy. 2018;111:474–486.
  • Kvalseth TO. Cautionary note about R2. Am Stat. 1985;39(4):279–285.
  • Shamsuzzaman M, Horie T, Fuke F, et al. Experimental investigation on debris sedimentation behaviour on bed formation characteristics. Proceeding of the Eighth Japan–Korea Symposium on Nuclear Thermal Hydraulics and Safety (NTHAS8); 2012 Dec 9–12; Beppu, Japan. [CD-ROM].

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.