7
Views
0
CrossRef citations to date
0
Altmetric
Technical Paper

General Formulation of an HCDA Bubble Rising in a Sodium Pool and the Effect of Nonequilibrium on Fuel Transport

&
Pages 23-39 | Published online: 12 May 2017

References

  • D. D. STEPNEWSKI, G. L. FOX, R. D. PEAK and K. R. MERCKS, “Mechanical Consequences of Hypothetical Core Disruptive Accidents,” HEDL-TME 71-50, Hanford Engineering Development Laboratory (1971).
  • T. G. THEOFANUS and H. K. FAUSKE, “The Effect of Noncondensables on the Rate of Sodium Vapor Condensation from a Single-Rising HCDA Bubble,” Nucl. Technol., 19, 132 (1973).
  • M. F. KENNEDY and A. B. REYNOLDS, “Methods for Calculating Vapor and Fuel Transport to the Secondary Containment in an LMFBR Accident,” Nucl. Technol., 20, 149 (1973).
  • M. N. OZISIK and T. S. KRESS, “Effects of Internal Circulation Velocity and Noncondensable Gas on Vapor Condensation from a Rising Bubble,” Nucl. Sci. Eng., 66, 397 (1978).
  • G. J. VAUGHAN and F. J. MUSTOE, “Post-HCDA Pressurization,” Proc. Int. Topl. Mtg. LMFBR Safety and Related Design and Operational Aspects, Lyons, France, July 19–23, 1982, Vol. 4, p. 23.
  • J. E. BOUDREAU, “The Mechanistic Analysis of LMFBR Accident Energetics,” Nucl. Safety, 20, 402 (1979).
  • S. H. CHAN and D. H. CHO, “A Calculational Method for Transient Radiation Heat Transfer in an Absorbing-Emitting Medium and Its Application to LMFBR Accident Analysis,” Trans. Am. Nucl. Soc., 21, 323 (1975).
  • S. H. CHAN and D. H. CHO, “Effect of Radiation Cooling on HCDA Radiological Consequences During Buoyancy Period,” Trans. Am. Nucl. Soc., 26, 340 (1977).
  • D. H. CHO and S. H. CHAN, “Effects of Internal Thermal Radiation on the Contact Interface Temperatures,” Lett. Heat and Mass Transfer, 4, 6, 465 (1977).
  • .S. H. CHAN, “Attenuation of Radiological Consequences from CDA’s by Radiation,” CDO-4040-4, The University of Wisconsin-Milwaukee (1979).
  • T. C. HUANG, J. W. MCDONALD and R. K. STILL, “Fuel Vapor Transport Through a Sodium Pool,” Trans. Am. Nucl. Soc., 27, 623 (1977).
  • M. L. TOBIAS, “Analysis of the Heat and Mass Transfer Processes of a UO2 Bubble in Sodium,” Proc. Int. Mtg. Fast Reactor Safety Technology, Seattle, Washington, August 19–23, 1979, Vol. 4, p. 1830, American Nuclear Society (1979).
  • D. H. CHO and M. EPSTEIN, “Work Potential Resulting from a Mechanical Disassembly of the Voided FFTF Core,” ANL/RAS 74-17, Argonne National Laboratory (1974).
  • D. W. PLOEGER and D. J. CAGLIOSTRO, “Development and Characterization of a Liquid-Vapor Bubble Source for Modeling HCDA Bubbles,” Technical Report 2, PYU-2939, Stanford Research Institute (1977).
  • M. L. CORRADINI, W. M. ROHSENOW and N. E. TODREAS, “The Effects of Sodium Entrainment and Heat Transfer with Two-Phase UOz During a Hypothetical Core Disruptive Accident,” Nucl. Sci. Eng., 73, 242 (1980).
  • F. H. HARLOW and A. A. AMSDEN, “Numerical Calculation of Multiphase Fluid Flow,” LA-UR-74-1028, Los Alamos National Laboratory (1974).
  • J. G. REFLING, A. B. REYNOLDS, P. L. GARNER and S. P. RAO, “Nonequilibrium Evaporation and Condensation in Liquid-Metal Fast Breeder Reactor Fuel Expansion,” Nucl. Technol., 33, 275 (1977).
  • M. AMBLARD, G. BERTHOUD, J. CARRE, A. B. REYNOLDS and R. SIMS, “Expansion and Collapse of Large Two-Phase Bubbles: I. Experiments,” Proc. Advances in Heat and Mass Transfer at Air-Water Interfaces, San Francisco, California, December 1978, S. SENGUPTA, Ed., p. 31, American Society of Mechanical Engineers.
  • A. B. REYNOLDS and D. R. BRADLEY, “Axial Motion of Large Two-Phase Bubbles,” Proc. Int. Mtg. Fast Reactor Safety Technology, Seattle, Washington, August 19–23, 1979, Vol. 4, p. 1838, American Nuclear Society (1979).
  • D. R. BRADLEY and A. B. REYNOLDS, “Analysis of the GAST Underwater Experiments Using UVABUBL,” Trans. Am. Nucl. Soc., 39, 653 (1981).
  • A. B. REYNOLDS and T. S. KRESS, “Aerosol Source Considerations for LMFBR Core Disruptive Accidents,” ORNL/NUREG/TM-404, Oak Ridge National Laboratory (1980).
  • W. O. SCHIKARSKI and W. P. SCHUETZ, “Nuclear Aerosols and LMFBR Source Term Analysis,” Proc. Int. Topl. Mtg. LMFBR Safety and Related Design and Operational Aspects, Lyons, France, July 19–23, 1982, Vol. 3, p. 347.
  • R. W. SCHRAGE, A Theoretical Study of Interface Mass Transfer, Columbia University Press, New York (1958).
  • R. C. MECREDY and L. J. HAMILTON, “The Effect of Nonequilibrium Heat, Mass and Momentum Transfer of Two-Phase Sound Speed,” Int. J. Heat Mass Transfer, 15, 61 (1972).
  • A. PADILLA, Jr., “High Temperature Thermodynamic Properties of Sodium,” ANL-8095, Argonne National Laboratory (1974).
  • G. I. TAYLOR, “The Vertical Motion of a Spherical Bubble and the Pressure Surrounding It,” The Scientific Papers of G. I. Taylor, Vol. 3, p. 320, G. K. BATCHELOR, Ed., Cambridge University Press (1963).
  • A. H. SHAPIRO, The Dynamics and Thermodynamics of Compressible Fluid Flow, The Ronald Press Company, New York (1953).
  • R. H. COLE, Underwater Explosions, Princeton University Press, New Jersey (1948).
  • C. R. BELL and J. E. BOUDREAU, “Application of SIMMER-I to the Postdisassembly Fluid Dynamic Behavior Within an LMFBR Reactor Vessel,” LA-NUREG-6467-MS, Los Alamos National Laboratory (1978).
  • M. H. MOORE and S. H. SIEVERDING, Two-Phase Steam Flow in Turbines and Separators, Hemisphere Publishing Corporation, New York (1976).
  • S. H. CHAN and D. H. CHO, “A Preliminary Assessment of the Attenuation of HCDA Radiological Consequences by Thermal Radiation,” Trans. Am. Nucl. Soc., 24, 253 (1976).
  • K. F. WYLIE and C. E. DRYDEN, “Transport Phenomena at Liquid Metal-Vapor-Interfaces Using Radioactive Tracers,” Nucl. Appl., 5, 263 (1968).
  • J. G. COLLIER, Convective Boiling and Condensations, Chap. 10, McGraw-Hill Book Company (1972).
  • M. H. FONTANA, T. S. KRESS, R. E. ADAMS, L. F. PARSLEY and G. W. PARKER, “LMFBR Aerosol Release and Transport Program–Quarterly Program Report for July-September 1975,” ORNL/NUREG/TM-8, Oak Ridge National Laboratory (1976).
  • M. EPSTEIN and D. H. CHO, “Fuel Vaporization and Quenching by Cold Sodium; Interpretation of TREAT Test S 11,” Proc. Fast Reactor Safety Mtg., Beverly Hills, California, April 2–4, 1974, CONF-740401-P1, National Technical Information Service (1974).
  • J. J. BORGHUSEN and S. M. ZIVI, “Test Sll and SI2,” Reactor Development Program Progress Report, ANL-RDP-21, Argonne National Laboratory (1973).
  • D. R. ARMSTRONG, F. G. TESTA and D. RARIDON, Jr., “Molten UO2-Sodium Dropping Experiments,” Trans. Am. Nucl. Soc., 13, 660 (1970).
  • G. KOCAMUSTAFAOGULLARI, “Thermo-Fluid Dynamic of Separated Two-Phase Flow,” PhD Thesis, Georgia Institute of Technology (1971).
  • M. ISHII, Thermo-Fluid Dynamic Theory of Two-Phase Flow, Eyrolless, Paris (1979).
  • T. R. GOODMAN, “Transient Heat-Balance Integral and Its Application to Problems Involving a Change of Phase,” Trans. ASME, 80, 335 (1958).
  • A. I. VEINIK, “Approximate Calculation of Heat Conduction Processes,” Gos. Energetich. Izdat. (1959).
  • T. R. GOODMAN, “Application of Integral Methods to Transient Nonlinear Heat Transfer,” Advances in Heat Transfer, Vol. 1, p. 51, F. F. IRVINE and J. P. HARTNETH, Eds., Academic Press, New York (1964).
  • W. J. BORNHORST and G. N. HATSOPOULOS, “Bubble-Growth Without Neglect of Interfacial Discontinuities,” J. Appl. Mech., 34, 840 (1967).
  • T. G. THEOFANUS, L. BIASI, H. S. ISBIN and H. K. FAUSKE, “Theoretical Study on Bubble Growth in Constant and Time Dependent Pressure Fields,” Chem. Eng. Sci., 24, 885 (1969).
  • F. M. SPARROW, “The Melting of Finite Slabs,” J. Appl. Mech., 27, 598 (1960).
  • T. J. LARDNER and F. V. POHLE, “Application of the Heat Balance Integral to Problems of Cylindrical Geometry,” J. Appl. Mech., 28, 310 (1961).

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.