Two-Phase Annular Flow in Vertical Pipes: A Critical Review of Current Research Techniques and Progress
Abstract
:1. Introduction
2. Investigation Methodologies
2.1. Visualization and Photography
2.2. Laser-Induced Fluorescence (LIF)
2.3. Particle Image Velocimetry (PIV)
2.4. Laser Focus Displacement Meter (LFD)
2.5. Ultrasonic Flow Meter and Near-Infrared Sensor
2.6. Conductance Sensor
2.7. Capacitance Sensor
2.8. Wire-Mesh Sensor (WMS)
2.9. Radiative Imaging
2.10. Film Extraction
2.11. Shadow Photography and Laser Diffraction
2.12. Laser Doppler Anemometry (LDA)
2.13. Other Mechanical Methods
2.14. Numerical Simulation
2.15. Challenges of Current Experimental Techniques
3. The Wavy Liquid Film
3.1. Fundamental Understanding of the Liquid Film
3.2. Disturbance Wave Characteristics
3.3. Correlations of the Film Thickness
3.4. The Void Fraction of Annular Two-Phase Flow
4. The Entrained Droplets in the Central Gas Core
4.1. Droplet Behaviour
4.2. Correlation of Droplet Entrainment
5. Conclusions and Recommendations
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
Abbreviations
Nomenclature List | |||
Symbols | Greek Characters | ||
a | Void fraction | δ | Film thickness |
C | Friction factor | Time-averaged film thickness | |
d | Diameter of the drop | ε | Entrainment rate |
D | Diameter of the pipe | λ | Wavelength |
E | Entrainment fraction | μ | Dynamic viscosity |
f | Friction factor | ν | Kinematic viscosity |
Fr | Froude number | ρ | Density |
g | acceleration of gravity | σ | Surface tension coefficient |
h | Disturbance wave height | τ | Shear stress |
j | Superficial velocity | Subscripts | |
k | Wave number | * | Friction |
Ka | Kapitza number | 32 | Sauter diameter |
L | Length | base | The base of the disturbance wave |
Mass flow rate | c | Gas core | |
Nu | Viscosity number | DW | Disturbance wave |
Nuf | Non-dimensional viscosity number | e | Entrained |
Δp | Pressure difference | m | Modified |
Re | Reynolds number | max | Maximum condition |
St | Strouhal number | G | Gas |
u | Velocity | Gc | Critical gas state |
V | Volume | L | Liquid |
We | Weber number | La | Laplace length |
x | Vaper quality | lf | Liquid film |
Xtt | Lockhart-Martinelli parameter | lfc | Critical film flow |
Pressure gradient due to friction loss | L, ref | Liquid at reference condition (at 20 °C) | |
i | Interfacial | ||
v | Volume mean | ||
w | Wall |
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Xue, Y.; Stewart, C.; Kelly, D.; Campbell, D.; Gormley, M. Two-Phase Annular Flow in Vertical Pipes: A Critical Review of Current Research Techniques and Progress. Water 2022, 14, 3496. https://doi.org/10.3390/w14213496
Xue Y, Stewart C, Kelly D, Campbell D, Gormley M. Two-Phase Annular Flow in Vertical Pipes: A Critical Review of Current Research Techniques and Progress. Water. 2022; 14(21):3496. https://doi.org/10.3390/w14213496
Chicago/Turabian StyleXue, Yunpeng, Colin Stewart, David Kelly, David Campbell, and Michael Gormley. 2022. "Two-Phase Annular Flow in Vertical Pipes: A Critical Review of Current Research Techniques and Progress" Water 14, no. 21: 3496. https://doi.org/10.3390/w14213496
APA StyleXue, Y., Stewart, C., Kelly, D., Campbell, D., & Gormley, M. (2022). Two-Phase Annular Flow in Vertical Pipes: A Critical Review of Current Research Techniques and Progress. Water, 14(21), 3496. https://doi.org/10.3390/w14213496