References

[ALM09]

R. Adoua, D. Legendre, and J. Magnaudet. Reversal of the lift force on an oblate bubble in a weakly viscous linear shear flow. J. Fluid Mech., 628:23–41, 2009.

[And19]

H. Ando. Nature of axial vector (in japanese). Tenkyugi, 112(4):255–259, 2019.

[AHHT16]

S. Aoyama, K. Hayashi, S. Hosokawa, and A. Tomiyama. Shapes of ellipsoidal bubbles in infinite stagnant liquids. Int. J. Multiphase Flow, 79:23–30, 2016.

[Ari90]

R. Aris. Vectors, Tensors and the Basic Equations of Fluid Mechanics. Dover, 1990.

[Aut87]

T. R. Auton. The lift force on a spherical body in a rotational flow. J. Fluid Mech., 183:199–218, 1987.

[Bat00]

G. K. Batchelor. Introduction to Fluid Dynamics. Cambridge University Press, 2000.

[Bre61]

F. P. Bretherton. The motion of long bubbles in tubes. J. Fluid Mech., 10(02):166, 1961.

[CF95]

C.-H. Chang and E. I. Franses. Adsorption dynamics of surfactants at the air/water interface: a critical review of mathematical models, data, and mechanisms. Colloids Surf. A Physicochem. Eng. Asp., 100:1–45, 1995.

[Chi67]

D. Chisholm. A theoretical basis for the lockhart-martinelli correlation for two-phase flow. Int. J. Heat Mass Transf., 10(12):1767–1778, 1967.

[Chi83]

D. Chisholm. Two-Phase Flow in Pipelines and Heat Exchangers. G. Godwin, 1983.

[CGW78]

R. Clift, J. R. Grace, and M. E. Weber. Bubbles, Drops and Particles. Academic Press, 1978.

[Dar53]

C. Darwin. Note on hydrodynamics. Math. Proc. Cambridge Philos. Soc., 49(2):342–354, 1953.

[DT50]

R. M. Davies and G. I. Taylor. The mechanics of large bubbles rising through extended liquids and through liquids in tubes. Proc. R. Soc. Lond. A Math. Phys. Sci., 200(1062):375–390, 1950.

[dR02]

A. de Ryck. The effect of weak inertia on the emptying of a tube. Phys. Fluids, 14(7):2102–2108, 2002.

[DP99]

D. A. Drew and S. L. Passman. Theory of Multicomponent Fluids. Springer, 1999.

[FT90]

L.-S. Fan and K. Tsuchiya. Bubble wake dynamics in liquids and liquid-solid suspensions. Butterworth-Heinemann, 1990.

[FJMY05]

T. Funada, D. D. Joseph, T. Maehara, and S. Yamashita. Ellipsoidal model of the rise of a taylor bubble in a round tube. Int. J. Multiphase Flow, 31(4):473–491, 2005.

[FVKH+18]

H. Funahashi, K. Vierow Kirkland, K. Hayashi, S. Hosokawa, and A. Tomiyama. Interfacial and wall friction factors of swirling annular flow in a vertical pipe. Nucl. Eng. Des., 330:97–105, 2018.

[GHVK+18]

R. Goda, K. Hayashi, K. Vierow Kirkland, M. Murase, and A. Tomiyama. Semi-empirical correlation for counter-current flow limitation at the upper or lower end of sharp-edged vertical pipes. Nucl. Eng. Des., 328:182–187, 2018.

[GM62]

H. L. Goldsmith and S. G. Mason. The movement of single large bubbles in closed vertical tubes. J. Fluid Mech., 14(1):42–58, 1962.

[Had11]

J. S. Hadamard. Mouvement permanent lent d'une sphere liquid et visqueuse dans un liquide visqueux. C. R. Hebd. Seances Acad. Sci. Paris, 152:1735–1738, 1911.

[HHL+21]

K. Hayashi, H. Hessenkemper, D. Lucas, D. Legendre, and A. Tomiyama. Scaling of lift reversal of deformed bubbles in air-water systems. Int. J. Multiphase Flow, 142:103653, 2021.

[HKYT20]

K. Hayashi, J. Kazi, N. Yoshida, and A. Tomiyama. Pressure drops of air-water two-phase flows in horizontal U-bends. Int. J. Multiphase Flow, 131:103403, 2020.

[HKT11]

K. Hayashi, R. Kurimoto, and A. Tomiyama. Terminal velocity of a taylor drop in a vertical pipe. Int. J. Multiphase Flow, 37(3):241–251, 2011.

[HLT20]

K. Hayashi, D. Legendre, and A. Tomiyama. Lift coefficients of clean ellipsoidal bubbles in linear shear flows. Int. J. Multiphase Flow, 129:103350, 2020.

[HLLT21]

K. Hayashi, D. Lucas, D. Legendre, and A. Tomiyama. Critical diameter for lift reversal of bubbles in linear shear flows. Multiph. Sci. Tech., 33(2):69–85, 2021.

[HZR+21]

H. Hessenkemper, T. Ziegenhein, R. Rzehak, D. Lucas, and A. Tomiyama. Lift force coefficient of ellipsoidal single bubbles in water. Int. J. Multiphase Flow, 138:103587, 2021.

[HHH+19]

Y. Hori, Y. Hirota, K. Hayashi, S. Hosokawa, and A. Tomiyama. Combined effects of alcohol and electrolyte on mass transfer from single carbon-dioxide bubbles in vertical pipes. Int. J. Heat Mass Transf., 136:521–530, 2019.

[IC79]

M. Ishii and T. C. Chawla. Local drag laws in dispersed two-phase flow. Technical Report ANL-79-105, Argonne National Laboratry, 1979.

[IHLH25]

Y. Iwai, S. Hosokawa, D. Legendre, and K. Hayashi. Single deformed bubbles rising through stagnant water of surfactant concentrations beyond CMC. Int. J. Multiph. Flow, 194:105440, 2025.

[Lam45]

H. Lamb. Hydrodynamics. Dover, 6th edition, 1945.

[LL87]

L. D. Landau and E. M. Lifshitz. Fluid Mechanics: Course of Theoretical Physics, Volume 6. Pergamon, 1987.

[LL20]

W. Lee and J.-Y. Lee. Experiment and modeling of lift force acting on single high reynolds number bubbles rising in linear shear flow. Exp. Therm. Fluid Sci., 115:110085, 2020.

[Leg07]

D. Legendre. On the relation between the drag and the vorticity produced on a clean bubble. Phys. Fluids, 19(1):018102, 2007.

[LM97]

D. Legendre and J. Magnaudet. A note on the lift force on a spherical bubble or drop in a low-reynolds-number shear flow. Phys. Fluids, 9(11):3572–3574, 1997.

[LM98]

D. Legendre and J. Magnaudet. The lift force on a spherical bubble in a viscous linear shear flow. J. Fluid Mech., 368:81–126, 1998.

[LZ25]

D. Legendre and R. Zenit. Gas bubble dynamics. Rev. Modern Phys., 97:025001, 2025.

[Lev62]

V. G. Levich. Physicochemical Hydrodynamics. Prentice Hall, 1962.

[Lig56a]

M. J. Lighthill. Drift. J. Fluid Mech., 1(1):31–53, 1956.

[Lig56b]

M. J. Lighthill. The image system of a vortex element in a rigid sphere. Math. Proc. Cambridge Philos. Soc., 52(2):317–321, 1956.

[LM49]

R. W. Lockhart and R.C. Martinelli. Proposed correlation of data for isothermal two-phase, two-component flow in pipes. Chemical Engineering Progress, 45:38–48, 1949.

[MM07]

J. Magnaudet and G. Mougin. Wake instability of a fixed spheroidal bubble. J. Fluid Mech., 572:311–337, 2007.

[MKM+19]

M. Magnini, S. Khodaparast, O. K. Matar, H. A. Stone, and J. R. Thome. Dynamics of long gas bubbles rising in a vertical tube in a cocurrent liquid flow. Phys. Rev. Fluids, 4(2):023601, 2019.

[MKL94]

R. Mei, J. F Klausner, and C. J. Lawrence. A note on the history force on a spherical bubble at finite reynolds number. Phys. Fluids, 6(1):418–420, 1994.

[Men67]

H. D. Mendelson. The prediction of bubble terminal velocities from wave theory. AIChE J., 13(2):250–253, 1967.

[MI84]

K. Mishima and M. Ishii. Flow regime transition criteria for upward two-phase flow in vertical tubes. Int. J. Heat Mass Transf., 27(5):723–737, 1984.

[Moo59]

D. W. Moore. The rise of a gas bubble in a viscous liquid. J. Fluid Mech., 6(1):113–130, 1959.

[Moo65]

D. W. Moore. The velocity of rise of distorted gas bubbles in a liquid of small viscosity. J. Fluid Mech., 23(4):749–766, 1965.

[MUK+17]

M. Murase, Y. Utanohara, T. Kusunoki, Y. Yamamoto, D. Lucas, and A. Tomiyama. Prediction of countercurrent flow limitation and its uncertainty in horizontal and slightly inclined pipes. Nucl. Technol., 197(2):140–157, 2017.

[oME06]

The Japanese Society of Mechanical Engineers. Handbook of Gas-Liquid Two-Phase Flow Technology. CORONA Publishing, second edition, 2006.

[OTKM03]

T. Okawa, T. Tanaka, I. Kataoka, and M. Mori. Temperature effect on single bubble rise characteristics in stagnant distilled water. Int. J. Heat Mass Transf., 46(5):903–913, 2003.

[Par92]

C.-W. Park. Influence of soluble surfactants on the motion of a finite bubble in a capillary tube. Physics of Fluids A: Fluid Dynamics, 4(11):2335–2347, 1992.

[Pro79]

A. Prosperetti. Boundary conditions at a liquid-vapor interface. Meccanica, 14(1):34–47, 1979.

[PRS22]

M. Puncochar, M. C. Ruzicka, and M. Simcik. Bubble formation and deformation. Chem. Eng. Sci., 260:117729, 2022.

[RC90]

J Ratulowski and H-C Chang. Marangoni effects of trace impurities on the motion of long gas bubbles in capillaries. J. Fluid Mech., 210:303–328, 1990.

[SaadiyahHKT21]

D. S. Sa'adiyah, K. Hayashi, R. Kurimoto, and Akio Tomiyama. Spatial evolution of CO2-contaminated water bubble flows in a vertical pipe. Chem. Ing. Tech., 93(1-2):247–259, 2021.

[Saf95]

P. G. Saffman. Vortex Dynamics. Cambridge University Press, 1995.

[SUHT17]

S. Sasaki, K. Uchida, K. Hayashi, and A. Tomiyama. Effects of column diameter and liquid height on gas holdup in air-water bubble columns. Exp. Therm. Fluid Sci., 2017.

[SMHT17]

R Sato, T Miyayoshi, K Hayashi, and A Tomiyama. Effects of azimuthal angle of aeration hole on flows inside and outside an air diffuser pipe. Exp. Therm. Fluid Sci., 2017.

[Sto90]

H. A. Stone. A simple derivation of the time‐dependent convective‐diffusion equation for surfactant transport along a deforming interface. Physics of Fluids A: Fluid Dynamics, 2(1):111–112, 1990.

[Sto93]

H. A. Stone. An interpretation of the translation of drops and bubbles at high reynolds numbers in terms of the vorticity field. Phys. Fluids, 5(10):2567–2569, 1993.

[SSSW07]

K. Sugihara, T. Sanada, M. Shirota, and M. Watanabe. Behavior of single rising bubbles in superpurified water (in japanese). Kagaku-Kogaku Ronbunshu, 33:402–408, 2007.

[Sun87]

S. Sunagawa. Electromagnetics (in Japanese). Iwanami, 1987.

[TM61]

T. Tadaki and S. Maeda. On the shape and velocity of single air bubbles rising in various liquids (in japanese). Soc. Chem. Eng. Jpn, 25:254–264, 1961.

[TM11]

Shu Takagi and Yoichiro Matsumoto. Surfactant effects on bubble motion and bubbly flows. Annu. Rev. Fluid Mech., 43(1):615–636, 2011.

[Tom04]

A. Tomiyama. Drag, lift and virtual mass forces acting on a single bubble. In 3rd Int. Symp. on Two-Phase Flow Modeling and Experimentation, 2004. 2004.

[TH18]

A. Tomiyama and K. Hayashi. Fundamentals of multiphase flow modeling based on continuum dynamics. In Encyclopedia of Two-Phase Heat Transfer and Flow III, pages 1–25. WORLD SCIENTIFIC, 2018.

[TKZS98]

A. Tomiyama, I. Kataoka, I. Zun, and T. Sakaguchi. Drag coefficients of single bubbles under normal and micro gravity conditions. JSME Int J. Ser. B, 41(2):472–479, 1998.

[TTZH02]

A. Tomiyama, H. Tamai, I. Zun, and S. Hosokawa. Transverse migration of single bubbles in simple shear flows. Chem. Eng. Sci., 57(11):1849–1858, 2002.

[Wal69]

G. B. Wallis. One-Dimensional Two-Phase Flow. McGraw Hill, 1969.

[Wal70]

G.B. Wallis. Annular two-phase flow part 2: additional effects. Trans. ASME J. Basic Eng., pages 73––82, 1970.

[WAS66]

R. M. Wellek, A. K. Agrawal, and A. H. P. Skelland. Shape of liquid drops moving in liquid media. AIChE J., 12(5):854–862, 1966.

[WB62]

E. T. White and R. H. Beardmore. The velocity of rise of single cylindrical air bubbles through liquids contained in vertical tubes. Chem. Eng. Sci., 17(5):351–361, 1962.

[ZF65]

N. Zuber and .J A. Findlay. Average volumetric concentration in two-phase flow systems. J. Heat Transfer, 87(4):453–468, 1965.