Nanosecond Laser-Textured Copper Surfaces Hydrophobized with Self-Assembled Monolayers for Enhanced Pool Boiling Heat Transfer
Медьсодержащие поверхности, текстурированные наносекундным лазером и гидрофобизированные самоорганизующимися монослоями, для интенсификации теплообмена при кипении в большом объёме
2022-11-16
SCID: 54.1/c7r66a3w
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critical heat fluxhydrophobic copper surfacesnanosecond laser texturingpool boiling heat transferself-assembled monolayers
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Abstract (AI)
Increased cooling requirements of many compact systems involving high heat fluxes demand the development of high-performance cooling techniques including immersion cooling utilizing pool boiling. This study presents the functionalization of copper surfaces to create interfaces for enhanced pool boiling heat transfer. Three types of surface structures including a crosshatch pattern, shallow channels and deep channels were developed using nanosecond laser texturing to modify the surface micro- and nanomorphology. Each type of surface structure was tested in the as-prepared superhydrophilic state and superhydrophobic state following hydrophobization, achieved through the application of a nanoscale self-assembled monolayer of a fluorinated silane. Boiling performance evaluation was conducted through three consecutive runs under saturated conditions at atmospheric pressure utilizing water as the coolant. All functionalized surfaces exhibited enhanced boiling heat transfer performance in comparison with an untreated reference. The highest critical heat flux of 1697 kW m−2 was achieved on the hydrophobized surface with shallow channels. The highest heat transfer coefficient of 291.4 kW m−2 K−1 was recorded on the hydrophobized surface with deep channels at CHF incipience, which represents a 775% enhancement over the highest values recorded on the untreated reference. Surface microstructure was identified as the key reason for enhanced heat transfer parameters. Despite large differences in surface wettability, hydrophobized surfaces exhibited comparable (or even higher) CHF values in comparison with their hydrophilic counterparts, which are traditionally considered as more favorable for achieving high CHF values. A significant reduction in bubble departure diameter was observed on the hydrophobized surface with deep channels and is attributed to effective vapor entrapment, which is pointed out as a major contributing reason behind the observed extreme boiling heat transfer performance.
Key Findings
1
All laser-textured surfaces, both superhydrophilic and fluorinated-silane hydrophobized, outperformed the untreated copper reference in pool boiling heat transfer.
2
Despite substantial wettability differences, hydrophobized surfaces achieved comparable or higher critical heat fluxes than hydrophilic counterparts; vapor entrapment and reduced bubble departure diameter contributed to enhanced performance.
3
Nanosecond laser texturing produced crosshatch, shallow-channel, and deep-channel copper surfaces with modified micro- and nanomorphology for pool boiling enhancement.
4
The hydrophobized deep-channel surface reached a heat transfer coefficient of 291.4 kW m−2 K−1 at CHF incipience, representing a 775% enhancement over the untreated reference.
5
The hydrophobized shallow-channel surface achieved the highest critical heat flux, reaching 1697 kW m−2.
Research Object
Nanosecond laser-textured copper surfaces with crosshatch patterns, shallow channels, or deep channels, tested in superhydrophilic and fluorinated-silane-hydrophobized states during saturated pool boiling of water
Research Subject
The effects of surface micro- and nanomorphology and wettability on pool-boiling heat-transfer performance, including critical heat flux, heat-transfer coefficient, and bubble departure diameter
Publication Details
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2022-11-16
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