TY - JOUR
T1 - Bubble dynamics in microchannel
T2 - An overview of the state-of-the-art
AU - Kadam, Sambhaji T.
AU - Hassan, Ibrahim
AU - Kumar, Ritunesh
AU - Rahman, Mohammad Azizur
N1 - Publisher Copyright:
© 2021, Springer Nature B.V.
PY - 2021/3
Y1 - 2021/3
N2 - The inception of the boiling, in a pool or flow boiling, is the formation of the vapor bubble at an active nucleation site that plays a crucial role in the boiling process and it becomes critical and unfolds many facets when channel size reduces to submicron. The detailed knowledge of the bubble dynamics is helpful in establishing the thermal and hydraulic flow behavior in the microchannel. In the current paper, bubble dynamics that include bubble nucleation at the nucleation site, its growth, departure, and motion along the flow in a microchannel(s) are discussed in detail. Different models developed for critical cavity radius favorable for bubble nucleation are compiled and observe that models exhibit large deviation. The bubble growth models are compiled and concluded that the development of a more generalize bubble growth model is necessary that would be capable of accounting for inertia controlled and thermal diffusion controlled regions. Bubbles at nucleation sites in a microchannel grow under the influence of various forces such as surface tension, inertia, shear, gravitational and evaporation momentum. Parametric analysis of these forces reckoned that the threshold between macro- to microchannel could be identify through critical analysis of such forces. Eventually, the possible impact of the various factors such as operating conditions, geometrical parameters, thermophysical properties of fluid on bubble dynamics in microchannel has been reported.
AB - The inception of the boiling, in a pool or flow boiling, is the formation of the vapor bubble at an active nucleation site that plays a crucial role in the boiling process and it becomes critical and unfolds many facets when channel size reduces to submicron. The detailed knowledge of the bubble dynamics is helpful in establishing the thermal and hydraulic flow behavior in the microchannel. In the current paper, bubble dynamics that include bubble nucleation at the nucleation site, its growth, departure, and motion along the flow in a microchannel(s) are discussed in detail. Different models developed for critical cavity radius favorable for bubble nucleation are compiled and observe that models exhibit large deviation. The bubble growth models are compiled and concluded that the development of a more generalize bubble growth model is necessary that would be capable of accounting for inertia controlled and thermal diffusion controlled regions. Bubbles at nucleation sites in a microchannel grow under the influence of various forces such as surface tension, inertia, shear, gravitational and evaporation momentum. Parametric analysis of these forces reckoned that the threshold between macro- to microchannel could be identify through critical analysis of such forces. Eventually, the possible impact of the various factors such as operating conditions, geometrical parameters, thermophysical properties of fluid on bubble dynamics in microchannel has been reported.
KW - Bubble growth
KW - Confined bubble
KW - Elongated bubble
KW - Flow boiling
KW - Forces
KW - Microchannel
KW - Thermophysical properties
UR - http://www.scopus.com/inward/record.url?scp=85100884581&partnerID=8YFLogxK
U2 - 10.1007/s11012-020-01300-4
DO - 10.1007/s11012-020-01300-4
M3 - Article
AN - SCOPUS:85100884581
SN - 0025-6455
VL - 56
SP - 481
EP - 513
JO - Meccanica
JF - Meccanica
IS - 3
ER -