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research article

A parametric study on pool boiling heat transfer and critical heat flux on structured surfaces with artificial cavities

Benam, Behnam Parizad
•
Ahmadi, Vahid Ebrahimpour
•
Motezakker, Ahmad Reza
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December 20, 2022
Applied Thermal Engineering

Emerging applications in new generation electronic devices require effective heat removal and thermal man-agement. In this regard, boiling is a phase change phenomenon capable of dissipating a large amount of heat compared to the sensible heat. In this study, comprehensive series of pool boiling experiments were carried out on surfaces having microchannels with different spacings and holes by using deionized (DI) water as the working fluid to investigate the mutual effect of surface structure and artificial cavity on the heat transfer performance and critical heat flux (CHF). For this, surfaces with different microchannel spacings and number of circular artificial cavities were fabricated on silicon surfaces. A high-speed camera was used to visualize bubble dynamics for better understand heat transfer and CHF mechanisms. While microchannel configurations had no significant effect at low heat fluxes, further increase in heat flux revealed the effect of surface structure on BHT and bubble dynamics. For samples with artificial cavities, the largest spacing between microchannels exhibited the best performance at high heat fluxes. It was found that the interaction between generated bubbles from artificial cavities and microchannel spacing on structured surfaces with lowest spacing value (20 mu m) resulted in BHT and CHF deterioration. The visualization results revealed different CHF mechanisms for structured surfaces without artificial cavities (hydrodynamic instability) and those with artificial cavities (microlayer dryout).

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Type
research article
DOI
10.1016/j.applthermaleng.2022.119841
Web of Science ID

WOS:000912541300001

Author(s)
Benam, Behnam Parizad
•
Ahmadi, Vahid Ebrahimpour
•
Motezakker, Ahmad Reza
•
Saeidiharzand, Shaghayegh
•
Villanueva, Luis Guillermo  
•
Park, Hyun Sun
•
Sadaghiani, Abdolali K.
•
Kosar, Ali
Date Issued

2022-12-20

Publisher

PERGAMON-ELSEVIER SCIENCE LTD

Published in
Applied Thermal Engineering
Volume

221

Article Number

119841

Subjects

Thermodynamics

•

Energy & Fuels

•

Engineering, Mechanical

•

Mechanics

•

Engineering

•

structured surfaces

•

artificial cavities

•

pool boiling

•

heat transfer enhancement

•

critical heat flux

•

microchannel spacing

•

transfer enhancement

•

rough surfaces

•

copper foam

•

smooth

•

microchannel

•

performance

•

mechanisms

•

nucleation

•

geometry

•

chf

Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
NEMS  
Available on Infoscience
February 13, 2023
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/194786
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