TY - JOUR
T1 - A numerical analysis of the characteristics of interfacial waves on the onset of flooding in an inclined pipe
AU - Zhao, Jingjing
AU - tao, Hanzhong
AU - Cheng, Jianjie
AU - Li, Wei
AU - Fu, Lijun
N1 - Publisher Copyright:
© 2020 Elsevier Ltd
PY - 2020/11
Y1 - 2020/11
N2 - The purpose of the present study is to investigate the characteristics of interfacial waves on flooding phenomena in an inclined pipe. The effects of liquid velocity and contact angle on the waves at the onset of flooding are studied with a two-dimensional computational fluid dynamic model. Flooding in a 30° inclined pipe is observed by using the Volume of Fluid (VOF) method. It is found when the contact angle is equal to 120°, the pipe wall cannot form a uniform liquid film and the gas velocity required on the onset of flooding decreases as the contact angle and liquid velocity increase. For a detailed understanding of the effects of contact angle and liquid velocity, an analytical forces model is proposed on the flooding waves, including gravity Fgw, the pressure of the gas core Fpc, pressure variations in the liquid film Fpl, wall shear force Fws, interfacial shear force Fss and surface tension force Fσ. Through the quantitative calculation of all forces, it is found that the amplitude and length of the flooding wave increase with liquid velocity. As the contact angle increases, the crests become sharper. Further, through analyzing the histogram distribution of the forces, the increase of the contact angle will change the mechanism of flooding from carrying droplets to rising waves. It provides a theoretical basis for the development of mechanistic models to predict the onset of flooding in the future.
AB - The purpose of the present study is to investigate the characteristics of interfacial waves on flooding phenomena in an inclined pipe. The effects of liquid velocity and contact angle on the waves at the onset of flooding are studied with a two-dimensional computational fluid dynamic model. Flooding in a 30° inclined pipe is observed by using the Volume of Fluid (VOF) method. It is found when the contact angle is equal to 120°, the pipe wall cannot form a uniform liquid film and the gas velocity required on the onset of flooding decreases as the contact angle and liquid velocity increase. For a detailed understanding of the effects of contact angle and liquid velocity, an analytical forces model is proposed on the flooding waves, including gravity Fgw, the pressure of the gas core Fpc, pressure variations in the liquid film Fpl, wall shear force Fws, interfacial shear force Fss and surface tension force Fσ. Through the quantitative calculation of all forces, it is found that the amplitude and length of the flooding wave increase with liquid velocity. As the contact angle increases, the crests become sharper. Further, through analyzing the histogram distribution of the forces, the increase of the contact angle will change the mechanism of flooding from carrying droplets to rising waves. It provides a theoretical basis for the development of mechanistic models to predict the onset of flooding in the future.
KW - Forces modeling on interfacial waves
KW - Inclined pipe
KW - The contact angle
KW - The mechanism of flooding
KW - Volume of fluid method
UR - http://www.scopus.com/inward/record.url?scp=85089681305&partnerID=8YFLogxK
U2 - 10.1016/j.ijmultiphaseflow.2020.103400
DO - 10.1016/j.ijmultiphaseflow.2020.103400
M3 - 文章
AN - SCOPUS:85089681305
SN - 0301-9322
VL - 132
JO - International Journal of Multiphase Flow
JF - International Journal of Multiphase Flow
M1 - 103400
ER -