Experimental Investigation of Condensation Heat Transfer on Vertical Hydrophilic-Hydrophobic Aluminium Surfaces

Condensation is an important heat transfer regime, with vast applications in industries such as power generation and cooling systems. In the present study, the changes in the coating thickness and geometry of hydrophobic areas were investigated on hydrophobic-hydrophilic plates and totally hydrophob...

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Main Authors: Pouyan Mohseni Behbahani, GhanbarAli Sheikhzadeh
Format: Article
Language:English
Published: Semnan University 2022-05-01
Series:Journal of Heat and Mass Transfer Research
Subjects:
Online Access:https://jhmtr.semnan.ac.ir/article_6603_a4e2ef8b68f7260df2ce1bb659edbbf8.pdf
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author Pouyan Mohseni Behbahani
GhanbarAli Sheikhzadeh
author_facet Pouyan Mohseni Behbahani
GhanbarAli Sheikhzadeh
author_sort Pouyan Mohseni Behbahani
collection DOAJ
description Condensation is an important heat transfer regime, with vast applications in industries such as power generation and cooling systems. In the present study, the changes in the coating thickness and geometry of hydrophobic areas were investigated on hydrophobic-hydrophilic plates and totally hydrophobic ones, and a no-coating plate was also studied experimentally for the condensation phenomenon. Considering the use of aluminium as the base material, tests such as lithography with positive photoresist was conducted to study the photoresist adhesion to the aluminium surface and its impact on heat transfer, as well as testing the lift-off process to remove the remaining photoresist at the final stage of producing the plates, to improve their surfaces and optimize the major parameters in the production stage. For this study, one type of totally hydrophobic surface and two types of hybrid hydrophobic-hydrophilic surfaces with different widths of hydrophobic and hydrophilic areas were produced, each type in three thicknesses of 200, 450 and 900 nm. Considering the different values of coating thicknesses, the width of the hydrophobic and hydrophilic areas, the heat transfer coefficient and heat flux were calculated for each plate, and the optimal conditions for each plate were determined. Compared to the uncoated plates, the heat transfer coefficient and heat flux for each plate with hybrid hydrophobic-hydrophilic surfaces (width of 860 μm for hydrophilic area and 970 μm for the hydrophobic, and thickness of 450 nm) registered increase by 1.44-2.01 and 1.43-1.81 times, respectively, which were the highest among the plates in the present study.
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spelling doaj.art-8c12802d1c6e454c9cc50bcd33b6819b2024-03-17T08:04:29ZengSemnan UniversityJournal of Heat and Mass Transfer Research2345-508X2383-30682022-05-0191395210.22075/jhmtr.2022.25698.13696603Experimental Investigation of Condensation Heat Transfer on Vertical Hydrophilic-Hydrophobic Aluminium SurfacesPouyan Mohseni Behbahani0GhanbarAli Sheikhzadeh1Department of Thermofluids, Faculty of Mechanical Engineering, University of Kashan, IranDepartment of Thermofluids, Faculty of Mechanical Engineering, University of Kashan, Iran. Energy Research Institute, University of Kashan, Iran.Condensation is an important heat transfer regime, with vast applications in industries such as power generation and cooling systems. In the present study, the changes in the coating thickness and geometry of hydrophobic areas were investigated on hydrophobic-hydrophilic plates and totally hydrophobic ones, and a no-coating plate was also studied experimentally for the condensation phenomenon. Considering the use of aluminium as the base material, tests such as lithography with positive photoresist was conducted to study the photoresist adhesion to the aluminium surface and its impact on heat transfer, as well as testing the lift-off process to remove the remaining photoresist at the final stage of producing the plates, to improve their surfaces and optimize the major parameters in the production stage. For this study, one type of totally hydrophobic surface and two types of hybrid hydrophobic-hydrophilic surfaces with different widths of hydrophobic and hydrophilic areas were produced, each type in three thicknesses of 200, 450 and 900 nm. Considering the different values of coating thicknesses, the width of the hydrophobic and hydrophilic areas, the heat transfer coefficient and heat flux were calculated for each plate, and the optimal conditions for each plate were determined. Compared to the uncoated plates, the heat transfer coefficient and heat flux for each plate with hybrid hydrophobic-hydrophilic surfaces (width of 860 μm for hydrophilic area and 970 μm for the hydrophobic, and thickness of 450 nm) registered increase by 1.44-2.01 and 1.43-1.81 times, respectively, which were the highest among the plates in the present study.https://jhmtr.semnan.ac.ir/article_6603_a4e2ef8b68f7260df2ce1bb659edbbf8.pdfdropwise condensationfilmwise condensationcondensation heat transfer coefficientheat fluxhybrid hydrophobic-hydrophilic surface
spellingShingle Pouyan Mohseni Behbahani
GhanbarAli Sheikhzadeh
Experimental Investigation of Condensation Heat Transfer on Vertical Hydrophilic-Hydrophobic Aluminium Surfaces
Journal of Heat and Mass Transfer Research
dropwise condensation
filmwise condensation
condensation heat transfer coefficient
heat flux
hybrid hydrophobic-hydrophilic surface
title Experimental Investigation of Condensation Heat Transfer on Vertical Hydrophilic-Hydrophobic Aluminium Surfaces
title_full Experimental Investigation of Condensation Heat Transfer on Vertical Hydrophilic-Hydrophobic Aluminium Surfaces
title_fullStr Experimental Investigation of Condensation Heat Transfer on Vertical Hydrophilic-Hydrophobic Aluminium Surfaces
title_full_unstemmed Experimental Investigation of Condensation Heat Transfer on Vertical Hydrophilic-Hydrophobic Aluminium Surfaces
title_short Experimental Investigation of Condensation Heat Transfer on Vertical Hydrophilic-Hydrophobic Aluminium Surfaces
title_sort experimental investigation of condensation heat transfer on vertical hydrophilic hydrophobic aluminium surfaces
topic dropwise condensation
filmwise condensation
condensation heat transfer coefficient
heat flux
hybrid hydrophobic-hydrophilic surface
url https://jhmtr.semnan.ac.ir/article_6603_a4e2ef8b68f7260df2ce1bb659edbbf8.pdf
work_keys_str_mv AT pouyanmohsenibehbahani experimentalinvestigationofcondensationheattransferonverticalhydrophilichydrophobicaluminiumsurfaces
AT ghanbaralisheikhzadeh experimentalinvestigationofcondensationheattransferonverticalhydrophilichydrophobicaluminiumsurfaces