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Article

Upward air–water bubbly flow characteristics in a vertical square duct

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Pages 267-281 | Received 17 Aug 2013, Accepted 30 Oct 2013, Published online: 29 Nov 2013

References

  • Serizawa A, Kataoka I, Michiyoshi I. Turbulence structure of air–water bubbly flow – I. Measuring techniques. Int J Multiphase Flow. 1975;2(3):221–233.
  • Serizawa A, Kataoka I, Michiyoshi I. Turbulence structure of air–water bubbly flow – II. Local properties. Int J Multiphase Flow. 1975;2(3):235–246.
  • Wang S, Lee S, Jones O, Lahey R. 3-D turbulence structure and phase distribution measurements in bubbly two-phase flows. Int J Multiphase Flow. 1987;13(3):327–343.
  • Liu TJ, Bankoff SG. Structure of air-water bubbly flow in a vertical pipe – I. Liquid mean velocity and turbulence measurements. Int J Heat Mass Transfer. 1993;36(4):1049–1060.
  • Liu TJ, Bankoff SG. Structure of air-water bubbly flow in a vertical pipe – II. Void fraction, bubble velocity and bubble size distribution. Int J Heat Mass Transfer. 1993;36(4):1061–1072.
  • Sato Y, Sadatomi M, Sekoguchi K. Momentum and heat transfer in two-phase bubble flow – I. Theory. Int J Multiphase Flow. 1981;7:167–177.
  • Kataoka I, Serizawa A. Bubble dispersion coefficient and turbulent diffusivity in bubbly two-phase flow, turbulent modification in multiphase flows. ASME Publ. FED. 1991;110:59–66.
  • Lopez de Bertodano M, Lahey R, Jones O. Development of a k-ϵ model for bubbly two-phase flow. J Fluids Eng. 1994;116:128–134.
  • Kataoka I, Ishii M. Drift flux model for large diameter pipe and new correlation for pool void fraction. Int J Heat Mass Transfer. 1987;30(9):1927–1939.
  • Hoagland LC. Fully-developed turbulent flow in straight rectangular ducts – secondary flow, its cause and effect on the primary flow [dissertation]. Cambridge (MA): Massachusetts Institute of Technology; 1960.
  • Brundrett E. The production and diffusion of vorticity in channel flow [dissertation]. Toronto: University of Toronto; 1963.
  • Brundrett E. The production and diffusion of vorticity in duct flow. J Fluid Mech. 1964;19:375–394.
  • Gessner FB. Turbulence and mean-flow characteristics of fully-developed flow in rectangular channels [dissertation]. West Lafayette (IN): Purdue University; 1964.
  • Ohba K, Ogasawara M, Uemura T, Satoh J. Study on vertical bubbly flows using laser doppler measurements: 1st report, simultaneous measurement of local liquid velocity and void fraction. Trans Jpn Soc Mech Eng. 1976;42(363):3560–3570. Japanese.
  • Ohba K, Yuhara T. Study on vertical bubbly flows using laser doppler measurements: 2nd report, turbulence structure in square duct flow. Trans Jpn Soc Mech Eng. 1982;48(425):78–87. Japanese.
  • Ohba K, Yuhara T, Matsuyama H. Study on vertical bubbly flows using laser doppler measurements: 3rd report, simultaneous measurement of bubble and liquid. Trans Jpn Soc Mech Eng. 1985;B51(472):4194–4200. Japanese.
  • Zun I. The mechanism of bubble non-homogeneous distribution in two-phase shear flow. Nucl Eng Des. 1990;118:155–162.
  • Zun I, Kljenak I, Moze S. Space-time evolution of the nonhomogeneous bubble distribution in upward flow. Int J Multiphase Flow. 1993;19(1):151–172.
  • Hosokawa S, Suzuki T, Tomiyama A. Effect of bubbles on turbulence properties in a dust flow. Paper presented at: Proceedings of the 5th European-Japanese Two-Phase Flow Group Meeting; 2009 Sep 20–25; Spoleto, Italy.
  • Sadatomi M, Sato Y, Saruwatari S. Two-phase flow in vertical noncircular channels. Int J Multiphase Flow. 1982;8:641–655.
  • Lopez de Bertodano M. Turbulent bubbly two-phase flow in a triangular duct [dissertation]. New York (NY): Rensselaer Polytechnic Institute; 1992.
  • Matos AD, Rosa ES, Franca FA. The phase distribution of upward co-current bubbly flows in a vertical square channel. J Braz Soc Mech Sci Eng. 2004;26(3):308–316.
  • Ohnuki A, Akimoto H. Experimental study on transition of flow pattern and phase distribution in upward air–water two-phase flow along a large vertical pipe. Int J Multiphase Flow. 2000;26:367–386.
  • Sun X, Smith TR, Kim S, Ishii M, Uhle J. Interfacial area of bubbly flow in a relatively large diameter pipe. Exp Thermal Fluid Sci. 2002;27:97–109.
  • Shawkat ME, Ching CY, Shoukri M. Bubble and liquid turbulence characteristics of bubbly flow in a large diameter vertical pipe. Int J Multiphase Flow. 2008;34:767–785.
  • Shen X, Mishima K, Nakamura H. Two-phase phase distribution in a vertical large diameter pipe. Int J Heat Mass Transfer. 2005;48:211–225.
  • Shen X, Matsui R, Mishima K, Nakamura H. Distribution parameter and drift velocity for two-phase flow in a large diameter pipe. Nucl Eng Des. 2010;240:3991–4000.
  • Shen X, Hibiki T, Nakamura H. Developing structure of two-phase flow in a large diameter pipe at low liquid flow rate. Int J Heat Fluid Flow. 2012;34:70–84.
  • Okawa T, Yoneda K, Yoshioka Y. New interfacial drag force model including effect of bubble wake, (I) model development for steam-water bubbly flow in large-diameter pipes.J Nucl Sci Tech. 1998;35(12):895–904.
  • Okawa T, Yoneda K, Zhou S, Tabata H. New interfacial drag force model including effect of bubble wake (II). J Nucl Sci Tech. 1999;36(11):1030–1040.
  • Smith TR, Schlegel JP, Hibiki T, Ishii M. Two-phase flow structure in large diameter pipes. Int J Heat Fluid Flow. 2012;33:156–167.
  • Omebere-Iyari NK, Azzopardi BJ, Lucas D, Beyer M, Prasser H-M. The characteristics of gas/liquid flow in large risers at high pressures. Int J Multiphase Flow. 2008;34:461–476.
  • Shen X, Saito Y, Mishima K, Nakamura H. Methodological improvement of an intrusive four-sensor probe for the multi-dimensional two-phase flow measurement. Int J Multiphase Flow. 2005;31:593–617.
  • Shen X, Mishima K, Nakamura H. Error reduction, evaluation and correction for the intrusive optical four-sensor probe measurement in multi-dimensional two-phase flow. Int J Heat Mass Transfer. 2008;51:882–895.
  • Uga T. Determination of bubble-size distribution in a BWR. Nucl Eng Des. 1972;22:252–261.
  • Chisholm D, Laird ADK. Two-phase flow in rough tubes. Trans ASME. 1958; 80:276–286.
  • Zun I. The transverse migration of bubbles influenced by walls in vertical bubbly flow. Int J Multiphase Flow. 1980;6:583–588.
  • Drew D, Lahey R. The virtual mass and lift force on a sphere in rotating and straining inviscid flow. Int J Multiphase Flow. 1987;13(1):113–121.
  • Tomiyama A, Tamai H, Zun I, Hosokawa S. Transverse migration of single bubbles in simple shear flows. Chem Eng Sci. 2002;57:1849–1858.
  • Liu T. Bubble size and entrance length effects on void development in a vertical channel. Int J Multiphase Flow. 1993;19:99–113.
  • Serizawa A, Kataoka I. Phase distribution in two-phase flow. In: Proceedings of the ICHMT International Seminar; 1987 May 24–30; Dubrovnik, Croatia. New York (NY): Hemisphere; 1988. p. 179–224.

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