Effect of Functional Surfaces with Gradient Mixed Wettability on Flow Boiling in a High Aspect Ratio Microchannel
Flow boiling is one of the most effective phase-change heat transfer mechanisms and is strongly dependent on surface properties. The surface wettability is a crucial parameter, which has a considerable effect on the heat transfer performance, particularly in flow boiling. The contact angle determine...
Main Authors: | , , , , |
---|---|
Format: | Article |
Language: | English |
Published: |
MDPI AG
2020-12-01
|
Series: | Fluids |
Subjects: | |
Online Access: | https://www.mdpi.com/2311-5521/5/4/239 |
id |
doaj-0dae005af621437080d257489c92a3b3 |
---|---|
record_format |
Article |
spelling |
doaj-0dae005af621437080d257489c92a3b32020-12-11T00:02:00ZengMDPI AGFluids2311-55212020-12-01523923910.3390/fluids5040239Effect of Functional Surfaces with Gradient Mixed Wettability on Flow Boiling in a High Aspect Ratio MicrochannelVahid Ebrahimpour Ahmadi0Akam Aboubakri1Abdolali Khalili Sadaghiani2Khellil Sefiane3Ali Koşar4Faculty of Engineering and Natural Science, Sabanci University, 34956 Istanbul, TurkeyFaculty of Engineering and Natural Science, Sabanci University, 34956 Istanbul, TurkeyFaculty of Engineering and Natural Science, Sabanci University, 34956 Istanbul, TurkeySchool of Engineering, University of Edinburgh, Edinburgh EH8 9YL, UKFaculty of Engineering and Natural Science, Sabanci University, 34956 Istanbul, TurkeyFlow boiling is one of the most effective phase-change heat transfer mechanisms and is strongly dependent on surface properties. The surface wettability is a crucial parameter, which has a considerable effect on the heat transfer performance, particularly in flow boiling. The contact angle determines the number of nucleation sites as well as bubble dynamics and flow patterns. This study introduces three new generation mixed wettability surfaces and compares them with a wholly hydrophobic surface reference sample, in flow boiling in a high aspect ratio microchannel. The mixed wettability substrates have five regions as fully Al<sub>2</sub>O<sub>3</sub>, (hydrophobic zone) region, three different patterned configurations with various A* values, and fully SiO<sub>2</sub> (hydrophilic zone) region, where A* is defined as A <sub>Al2O3</sub>/A <sub>total</sub> (hydrophobicity ratio). Boiling heat transfer results were obtained for each surface at various wall heat fluxes and three different mass fluxes. According to the obtained results, significant enhancements in heat transfer (by up to 56.7%) could be obtained with biphilic surfaces compared to the reference sample (hydrophobic surface). Performed flow visualization proves that the tested biphilic surfaces enhance heat transfer by reducing the bubbly flow regime and extending the slug regime.https://www.mdpi.com/2311-5521/5/4/239flow boilingmixed wettabilityboiling heat transfer coefficientflow regime |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Vahid Ebrahimpour Ahmadi Akam Aboubakri Abdolali Khalili Sadaghiani Khellil Sefiane Ali Koşar |
spellingShingle |
Vahid Ebrahimpour Ahmadi Akam Aboubakri Abdolali Khalili Sadaghiani Khellil Sefiane Ali Koşar Effect of Functional Surfaces with Gradient Mixed Wettability on Flow Boiling in a High Aspect Ratio Microchannel Fluids flow boiling mixed wettability boiling heat transfer coefficient flow regime |
author_facet |
Vahid Ebrahimpour Ahmadi Akam Aboubakri Abdolali Khalili Sadaghiani Khellil Sefiane Ali Koşar |
author_sort |
Vahid Ebrahimpour Ahmadi |
title |
Effect of Functional Surfaces with Gradient Mixed Wettability on Flow Boiling in a High Aspect Ratio Microchannel |
title_short |
Effect of Functional Surfaces with Gradient Mixed Wettability on Flow Boiling in a High Aspect Ratio Microchannel |
title_full |
Effect of Functional Surfaces with Gradient Mixed Wettability on Flow Boiling in a High Aspect Ratio Microchannel |
title_fullStr |
Effect of Functional Surfaces with Gradient Mixed Wettability on Flow Boiling in a High Aspect Ratio Microchannel |
title_full_unstemmed |
Effect of Functional Surfaces with Gradient Mixed Wettability on Flow Boiling in a High Aspect Ratio Microchannel |
title_sort |
effect of functional surfaces with gradient mixed wettability on flow boiling in a high aspect ratio microchannel |
publisher |
MDPI AG |
series |
Fluids |
issn |
2311-5521 |
publishDate |
2020-12-01 |
description |
Flow boiling is one of the most effective phase-change heat transfer mechanisms and is strongly dependent on surface properties. The surface wettability is a crucial parameter, which has a considerable effect on the heat transfer performance, particularly in flow boiling. The contact angle determines the number of nucleation sites as well as bubble dynamics and flow patterns. This study introduces three new generation mixed wettability surfaces and compares them with a wholly hydrophobic surface reference sample, in flow boiling in a high aspect ratio microchannel. The mixed wettability substrates have five regions as fully Al<sub>2</sub>O<sub>3</sub>, (hydrophobic zone) region, three different patterned configurations with various A* values, and fully SiO<sub>2</sub> (hydrophilic zone) region, where A* is defined as A <sub>Al2O3</sub>/A <sub>total</sub> (hydrophobicity ratio). Boiling heat transfer results were obtained for each surface at various wall heat fluxes and three different mass fluxes. According to the obtained results, significant enhancements in heat transfer (by up to 56.7%) could be obtained with biphilic surfaces compared to the reference sample (hydrophobic surface). Performed flow visualization proves that the tested biphilic surfaces enhance heat transfer by reducing the bubbly flow regime and extending the slug regime. |
topic |
flow boiling mixed wettability boiling heat transfer coefficient flow regime |
url |
https://www.mdpi.com/2311-5521/5/4/239 |
work_keys_str_mv |
AT vahidebrahimpourahmadi effectoffunctionalsurfaceswithgradientmixedwettabilityonflowboilinginahighaspectratiomicrochannel AT akamaboubakri effectoffunctionalsurfaceswithgradientmixedwettabilityonflowboilinginahighaspectratiomicrochannel AT abdolalikhalilisadaghiani effectoffunctionalsurfaceswithgradientmixedwettabilityonflowboilinginahighaspectratiomicrochannel AT khellilsefiane effectoffunctionalsurfaceswithgradientmixedwettabilityonflowboilinginahighaspectratiomicrochannel AT alikosar effectoffunctionalsurfaceswithgradientmixedwettabilityonflowboilinginahighaspectratiomicrochannel |
_version_ |
1724387096281481216 |