144
G. Biswas and K. C. Sahu
92. Strasser, W., Battaglia, F.: Identification of pulsation mechanism in a transonic three-stream
airblast injector. J. Fluids Eng. 138, 111303 (2016)
93. Strasser, W., Battaglia, F.: The influence of retraction on three-stream injector pulsatile atomization for air-water systems. J. Fluids Eng. 138, 111302 (2016)
94. Kulkarni, V., Sivakumar, D., Oommen, C., Tharakan, T.J.: Liquid sheet breakup in gascentered swirl coaxial atomizers. J. Fluids Eng. 132, 011303 (2010)
95. Pan, Y., Suga, K.: A numerical study on the breakup process of laminar liquid jets into a gas.
Phys. Fluids 18, 052101 (2006)
96. Pan, Y., Suga, K.: Capturing the pinch-off of liquid jets by the level set method. J Fluids Eng.
125, 922 (2003)
97. Lafrance, P.: The breakup length of turbulent liquid jets. J. Fluids Eng. 99, 414 (1977)
98. Borthakur, M.P., Biswas, G., Bandyopadhyay, D., Sahu, K.C.: Dynamics of an arched liquid
jet under the influence of gravity. Eur. J. Mech. B/Fluids 74, 1 (2019)
99. Borthakur, M.P., Biswas, G., Bandyopadhyay, D.: Formation of liquid drops at an orifice and
dynamics of pinch-off in liquid jets. Phys. Rev. E. 96, 013115 (2017)
100. Zhmayev, Y., Divvela, M.J., Ruo, A., Huang, T., Joo, Y.L.: The jetting behavior of viscoelastic
Boger fluids during centrifugal spinning. Phys. Fluids 27, 123101 (2015)
101. Noroozi, S., Alamdari, H., Arne, W., Larson, R.G., Taghavi, S.M.: Regularized string model
for nanofibre formation in centrifugal spinning methods. J. Fluid Mech. 822, 202 (2017)
102. Riahi, D.N.: Modeling and computation of nonlinear rotating polymeric jets during forcespinning process. Int. J. Non Linear Mech. 92, 1 (2017)
103. Uddin, J., Decent, S.P.: Instability of non-Newtonian liquid jets curved by gravity. Prog. Ind.
Math. ECMI 2008, 597 (2010)
104. Suñol, F., González-Cinca, R.: Liquid jet breakup and subsequent droplet dynamics under
normal gravity and in microgravity conditions. Phys. Fluids 27, 77102 (2015)
105. Welch, S.W.J., Wilson, J.: A volume of fluid based method for fluid flows with phase change.
J. Comput. Phys. 160, 662 (2000)
106. Gerlach, D., Tomar, G., Biswas, G., Durst, F.: Comparison of volume-of-fluid methods for
surface tension-dominant two-phase flows. Int. J. Heat Mass Transf. 49, 740 (2006)
107. Welch, S.W.J., Biswas, G.: Direct simulation of film boiling including electrohydrodynamic
forces. Phys. Fluids 19, 012106 (2007)
108. Tomar, G., Biswas, G., Sharma, A., Welch, S.W.J.: Multimode analysis of bubble growth in
saturated film boiling. Phys. Fluids 20, 092101 (2008)
109. Agarwal, D.K., Welch, S.W.J., Biswas, G., Durst, F.: Planar simulation of bubble growth in
film boiling in near-critical water using a variant of the VOF method. J. Heat Transf. 126, 329
(2004)
110. Pandey, V., Biswas, G., Dalal, A.: Effect of superheat and electric field on saturated film
boiling. Phys. Fluids 28, 052102 (2016)
111. Pandey, V., Biswas, G., Dalal, A.: Saturated film boiling at various gravity levels under the
influence of electrohydrodynamic forces. Phys. Fluids 29, 032104 (2017)
112. Tripathi, M.K., Sahu, K.C.: Evaporating falling drop. Procedia IUTAM 15, 201 (2015)
G. Biswas and K. C. Sahu
92. Strasser, W., Battaglia, F.: Identification of pulsation mechanism in a transonic three-stream
airblast injector. J. Fluids Eng. 138, 111303 (2016)
93. Strasser, W., Battaglia, F.: The influence of retraction on three-stream injector pulsatile atomization for air-water systems. J. Fluids Eng. 138, 111302 (2016)
94. Kulkarni, V., Sivakumar, D., Oommen, C., Tharakan, T.J.: Liquid sheet breakup in gascentered swirl coaxial atomizers. J. Fluids Eng. 132, 011303 (2010)
95. Pan, Y., Suga, K.: A numerical study on the breakup process of laminar liquid jets into a gas.
Phys. Fluids 18, 052101 (2006)
96. Pan, Y., Suga, K.: Capturing the pinch-off of liquid jets by the level set method. J Fluids Eng.
125, 922 (2003)
97. Lafrance, P.: The breakup length of turbulent liquid jets. J. Fluids Eng. 99, 414 (1977)
98. Borthakur, M.P., Biswas, G., Bandyopadhyay, D., Sahu, K.C.: Dynamics of an arched liquid
jet under the influence of gravity. Eur. J. Mech. B/Fluids 74, 1 (2019)
99. Borthakur, M.P., Biswas, G., Bandyopadhyay, D.: Formation of liquid drops at an orifice and
dynamics of pinch-off in liquid jets. Phys. Rev. E. 96, 013115 (2017)
100. Zhmayev, Y., Divvela, M.J., Ruo, A., Huang, T., Joo, Y.L.: The jetting behavior of viscoelastic
Boger fluids during centrifugal spinning. Phys. Fluids 27, 123101 (2015)
101. Noroozi, S., Alamdari, H., Arne, W., Larson, R.G., Taghavi, S.M.: Regularized string model
for nanofibre formation in centrifugal spinning methods. J. Fluid Mech. 822, 202 (2017)
102. Riahi, D.N.: Modeling and computation of nonlinear rotating polymeric jets during forcespinning process. Int. J. Non Linear Mech. 92, 1 (2017)
103. Uddin, J., Decent, S.P.: Instability of non-Newtonian liquid jets curved by gravity. Prog. Ind.
Math. ECMI 2008, 597 (2010)
104. Suñol, F., González-Cinca, R.: Liquid jet breakup and subsequent droplet dynamics under
normal gravity and in microgravity conditions. Phys. Fluids 27, 77102 (2015)
105. Welch, S.W.J., Wilson, J.: A volume of fluid based method for fluid flows with phase change.
J. Comput. Phys. 160, 662 (2000)
106. Gerlach, D., Tomar, G., Biswas, G., Durst, F.: Comparison of volume-of-fluid methods for
surface tension-dominant two-phase flows. Int. J. Heat Mass Transf. 49, 740 (2006)
107. Welch, S.W.J., Biswas, G.: Direct simulation of film boiling including electrohydrodynamic
forces. Phys. Fluids 19, 012106 (2007)
108. Tomar, G., Biswas, G., Sharma, A., Welch, S.W.J.: Multimode analysis of bubble growth in
saturated film boiling. Phys. Fluids 20, 092101 (2008)
109. Agarwal, D.K., Welch, S.W.J., Biswas, G., Durst, F.: Planar simulation of bubble growth in
film boiling in near-critical water using a variant of the VOF method. J. Heat Transf. 126, 329
(2004)
110. Pandey, V., Biswas, G., Dalal, A.: Effect of superheat and electric field on saturated film
boiling. Phys. Fluids 28, 052102 (2016)
111. Pandey, V., Biswas, G., Dalal, A.: Saturated film boiling at various gravity levels under the
influence of electrohydrodynamic forces. Phys. Fluids 29, 032104 (2017)
112. Tripathi, M.K., Sahu, K.C.: Evaporating falling drop. Procedia IUTAM 15, 201 (2015)
