49
Views
4
CrossRef citations to date
0
Altmetric
Technical Paper

Two-Phase Void Drift Phenomena in a 2 × 3 Rod Bundle: Flow Redistribution Data and Their Analysis

, , &
Pages 23-37 | Published online: 10 Apr 2017

References

  • K. F. RUDZINSKI, K. SINGH, and C.C. ST. PIERRE, “Turbulent Mixing for Air-Water Two-Phase Flows in Simulated Rod Bundle Geometries,” Can. J. Chem. Eng., 50, 297 (1972).
  • A. TAPUCU, M. GECKINLI, N. TROCHE, and R. GIRARD, “Experimental Investigation of Mass Exchanges Between Two Laterally interconnected Two-Phase Flow,” Nucl. Eng. Des., 105, 295 (1988).
  • M. SADATOMI, A. KAWAHARA, and Y. SATO, “Flow Redistribution Due to Void Drift in Two-Phase Flow in a Multiple Channel Consisting of Two Subchannels,” Nucl. Eng. Des., 148, 2 & 3, 463 (1994).
  • M. SADATOMI, A. KAWAHARA, and Y. SATO, “Turbulent Mixing of Both Gas and Liquid Phases Between Subchannels in Two-Phase Hydrodynamic Equilibrium Flows,” Proc. Int. Symp. Two-Phase Flow Modelling and Experimentation 1995, Rome, Italy, October 9–11, 1995, Vol. 1, p. 403, G.P. CELETA and R.K. SHAH, Eds. (1995).
  • M. SADATOMI, A. KAWAHARA, and Y. SATO, “Axial Variation of Void Fraction in a Hydraulically Non-Equilibrium Two-Phase Flow in a Vertical Multiple Channel,” Proc. 3rd KSME-JSME Thermal Engineering Conf., Kyongju, Korea, October 20–23, 1996, Vol. 1, p. I–339 (1996).
  • M. SADATOMI, A. KAWAHARA, and Y. SATO, “Treatment of Two-Phase Turbulent Mixing, Void Drift and Diversion Cross-Flow in Hydraulically Non-Equilibrium Subchannel Flow,” Proc. 4th Int. Seminar on Subchannel Analysis, Tokyo, Japan, September 25–26, 1997, p. 87 (1997).
  • A. KAWAHARA, M. SADATOMI, and K. IWAMOTO, “Calculation of Two-Phase Flow Redistribution Due to Void Drift in Two-Interconnected Subchannels by a Two-Fluid Model,” Proc. Second Japan-Korea Symp. Nuclear Thermal Hydraulics and Safety NTHAS2, Fukuoka, Japan, October 15-18, 2000, p. 719 (2000).
  • A. KAWAHARA, Y. SATO, and M. SADATOMI, “The Turbulent Mixing Rate and the Fluctuations of Static Pressure Difference Between Adjacent Subchannels in a Two-Phase Subchannel Flow,” Nucl. Eng. Des., 175, 97 (1997).
  • A. KAWAHARA, M. SADATOMI, T. TOMINO, and Y. SATO, “Prediction of Turbulent Mixing Rates of Both Gas and Liquid Phases Between Adjacent Subchannels in a Two-Phase Slug-Churn Flow,” Nucl. Eng. Des., 202, 27 (2000).
  • A. KAWAHARA and M. SADATOMI, “Modeling of Void Diffusion Coefficient in a Two-Phase Subchannel Flow,” Proc. 4th JSME-KSME Thermal Engineering Conf., Kobe, Japan, October 1–6, 2000, Vol. 2, p. 611 (2000).
  • M. SADATOMI, A. KAWAHARA, K. KANO, and Y. SUMI, “Single-and Two-Phase Turbulent Mixing Rate Between Adjacent Subchannels in a Vertical 2 × 3 Rod Array Channel,” Int. J. Multiphase Flow, 30, 481 (2004).
  • M. SADATOMI, A. KAWAHARA, K. KANO, and S. TANOUE, “Flow Characteristics in Hydraulically Equilibrium Two-Phase Flows in a Vertical 2 × 3 Rod Bundle Channel,” Int. J. Multiphase Flow, 30, 1093 (2004).
  • R. T. LAHEYJr., and F.J. MOODY, The Thermal-Hydraulics of a Boiling Water Nuclear Reactor, 2nd ed., American Nuclear Society, La Grange Park, Illinois (1993).
  • Y. TAITEL, D. BARNEA, and A. E. DUKLER, “Modeling Flow Pattern Transitions for Steady Upward Gas-Liquid Flow in Vertical Tubes,” AICh E J., 26, 3, 345 (1980).
  • K. MISHIMA and M. ISHII, “Flow Regime Transition Criteria for Upward Two-Phase Flow in Vertical Tubes,” Int. J. Heat Mass Transfer, 27, 5, 723 (1984).
  • L. P. GOLAN and A. H. STENNING, “Two-Phase Vertical Flow Maps,” Proc. Symp. Fluid Mechanics and Measurements in Two-Phase Flow Systems, Leeds University, Paper No. 14, p. 24 (1969).
  • D. CHISHOLM, “Void Fraction During Two-Phase Flow,” J. Mech. Eng. Sci., 15, 3, 235 (1973).
  • Y. SATO, M. SADATOMI, and A. KAWAHARA, “A Proposal for Treatment of Turbulent Mixing in a Two-Phase Subchannel Flow,” Chem. Eng. Comm., 141 & 142, 399 (1996).
  • A. TAPUCU, A. TEYSSEDOU, P. TYE, and N. TROCHE, “The Effect of Turbulent Mixing Models on the Predictions of Subchannels Codes,” Nucl. Eng. Des., 149, 221 (1994).
  • H. NINOKATA, M. ARITOMI, T. ANEGAWA, Y. SATO, M. SADATOMI, K. MISHIMA, K. NISHIDA, Y. YAMAMOTO, S. MOROOKA, Y. YABUSHITA, A. SOU, H. KAMO, and S. KUSUNO, “Development of the NASCA Code for Prediction of Transient BT and Post BT Phenomena in BWR Rod Bundles,” Proc. 4th Int. Seminar on Subchannel Analysis, Tokyo, Japan, September 25–26, 1997, p. 231 (1997).
  • D. R. LIES, J. W. SPORE, T. D. KNIGHT, R. A. NELSON, M. W. CAPPIELLO, K. O. PASAMEHMETOGLU, J. H. MAHAFFY, L. A. GUFFEE, H. J. STUMPF, P. J. DOTOSON, R. G. STEINKE, P. R. SHIRE, S. E. GREINER, and K. B. SHERWOOD, “TRAC-PF1/MOD1 Correlations and Models,” NUREG/GR-5069, LA-11208-MS, Los Alamos National Laboratory (1988).
  • K. E. CARLSON, R. A. RIEMKE, S. Z. ROUHANI, R. W. SHUMWAY, and W. L. WEAVER, “RELAP5/MOD3 Code Manual Volume IV: Models and Correlations,” NUREG/CR-5533, EGG-2596 (1990).
  • G. L. CHIERICI, G. M. CIUCCI, and G. SCLOCCHI, “Two-Phase Vertical Flow in Oil Wells—Prediction of Pressure Drop,” J. Pet. Technol., 26, 8, 927 (1974).
  • M. I. ALI, M. SADATOMI, and M. KAWAJI, “Two-Phase Flow in Narrow Channels Between Two Flat Plates,” Can. J. Chem. Eng., 71, 657 (1993).
  • W. H. McADAMS, W.K. WOOD, and R.L. BRYAN, “Vapourisation Inside Horizontal Tubes, 2: Benzene-Oil Mixtures,” Trans. ASME, 64, 193, American Society of Mechanical Engineers (1942).
  • D. R. H. BEATTIE and P. B. WHALLEY, “A Simple Two-Phase Frictional Pressure Drop Calculation Method,” Int. J. Multiphase Flow, 8, 1, 83 (1982).
  • R. W. LOCKHART and R. C. MARTINELLI, “Proposed Correlation of Data for Isothermal Two-Phase, Two-Component Flow in Pipes,” Chem. Eng. Prog., 45, 1, 39 (1949).
  • T. KATSUHARA, “Influence of Roughness of Inner Surface of Pipe upon Pressure Drop due to Friction in Two-Phase Flow,” Trans. JSME (Part II), 24, 148, 1050, Japan Society of Mechanical Engineers (1958) (in Japanese).
  • G. B. WALLIS, One-Dimensional Two-Phase Flow, McGraw-Hill Book Co. Inc., New York (1969).
  • A. TOMIYAMA, H. MINAGAWA, and T. SAKAGUCHI, “Derivation of Constitutive Equations for Interfacial Momentum Transfer Required for the Analyses of Gas-Liquid-Solid Three-Phase Flow with a One-Dimensional Three-Fluid Model,” Trans. JSME (Part B), 57, 536, 1239, Japan Society of Mechanical Engineers (1991) (in Japanese).
  • A. TOMIYAMA, N. FURUTANI, and T. SAKAGUCHI, “Numerical Stability of the One-Pressure Steady Two-Fluid Model,” Trans. JSME (Part B), 59, 560, 1071, Japan Society of Mechanical Engineers (1993) (in Japanese).
  • T. FUKANO and T. FURUKAWA, “Prediction of the Effects of Liquid Viscosity on Interfacial Shear Stress and Frictional Pressure Drop in Vertical Upward Gas-Liquid Annular Flow,” Int. J. Multiphase Flow, 24, 4, 587 (1998).
  • W. H. HENSTOCK and T. J. HANRATTY, “The Interfacial Drag and the Height of the Wall Layer in Annular Flows,” AICh E J., 26, 1, 990 (1976).
  • E. O. MOECK and J. W. STACHIEWITZ, “A Droplet Interchange Model for Annular-Dispersed Two-Phase Flow,” Int. J. Heat Mass Transfer, 15, 637 (1970).
  • B. I. NIGMATULIN et al., “Experimental Investigation of the Hydrodynamics of Equilibrium Dispersed-Annular Steam-Water Flow,” Teplofiz. Vys. Temp., 16, 1258 (1978).
  • G. B. WALLIS, “Annular Two-Phase Flow Part 1: A Simple Theory,” Trans. ASME, J. Basic Engineering, 82, 59, American Society of Mechanical Engineers (1970).
  • M. SADATOMI, A. KAWAHARA, and Y. SATO, “Prediction of the Single-Phase Turbulent Mixing Rate Between Two Parallel Subchannels Using a Subchannel Geometry Factor,” Nucl. Eng. Des., 162, 245 (1996).
  • G. B. WALLIS, “Interfacial Friction Modelling,” Multiphase Science and Technology, Vol. 3, p. 63, G.F. HEWITT et al., Eds., Hemisphere Publishing Co., Washington, D.C. (1987).
  • K. MISHIMA and M. ISHII, “Droplet Entrainment Correlation in Annular Two-Phase Flow,” Int. J. Heat Mass Transfer, 32, 10, 1835 (1989).

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.