Experimental Investigation on Flow Boiling Heat Transfer Characteristics of Water Inside Micro/Nanostructured-Coated Minichannel

被引:0
作者
Sanjay Kumar Gupta
Rahul Dev Misra
机构
[1] GMR Institute of Technology,Mechanical Engineering Department
[2] National Institute of Technology,Mechanical Engineering Department
来源
International Journal of Thermophysics | 2023年 / 44卷
关键词
Critical heat flux; Flow boiling; Heat transfer augmentation; Minichannel; Nanocoating;
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摘要
There are several industrial applications where boiling is used, for example boilers, refrigeration systems, nuclear reactor cooling, and microelectronic chip cooling. Experimental research has been carried out to determine the flow boiling heat transfer capabilities of copper-alumina-coated surfaces for application in heat transfer equipment. De-ionized (DI) water is used as the coolant for experimentations in a minichannel with dimensions 10 × 1.5 × 10 mm. Copper surfaces coated with thin copper-alumina nanocomposite films are created using the electrodeposition process. The coated layer created using an electrochemical technique offers strong adhesiveness with the base copper and is therefore anticipated to be suitable for real-world heat transfer appliances as part of the ongoing scientific development in subcooled flow boiling. The electrochemical technique offers easier control over its various parameters, such as current density, duration and electrolyte composition, making it possible to easily achieve a variety of surface characteristics, such as crystallinity, wettability and porosity. as required in the coated surfaces. Additionally, the copper-alumina is a hydrothermally stable oxide material that is well suited for use in boiling heat transfer devices. The boiling (subcooled flow) heat transfer tests are carried out at various mass flows. The improvement in the two-phase heat transfer coefficient (HTC) and critical heat flux (CHF) can reach up to 90 % and 93 %, respectively. The coated surfaces have improved CHF and HTC because of improved wettability, increased surface roughness, and the existence of active nucleate sites in high-density.
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[11]  
Ölçeroglu E(2005)Microscale-modulated porous coatings: fabrication and pool-boiling heat transfer performance Int. Comm. Heat Mass Transf. 32 27-4038
[12]  
McCarthy M(2023)Pool boiling of saturated FC-72 on nano-porous surface Appl. Therm. Eng. 226 120228-5
[13]  
Kandlikar SG(2012)Enhanced pool boiling heat transfer by adding metalized diamond in copper porous materials Appl. Phys. Lett. 101 054104-121
[14]  
Majumder B(2010)Effect of liquid uptake on critical heat flux utilizing a three dimensional, interconnected alumina nano porous surfaces Int. J. Heat Mass Transf. 53 1773-561
[15]  
Pingale AD(2014)Nucleate boiling heat transfer enhancement for water and FC-72 on TiO2 and SiO2 surfaces Arab. J. Sci. Eng. 39 7385-3365
[16]  
Katarkar AS(2011)Enhancement of nucleate pool boiling heat transfer on titanium oxide thin film surface Int. J. Heat Mass Transf. 54 5359-150
[17]  
Katarkar AS(2015)Critical heat flux of pool boiling on Si nanowire array-coated surfaces Appl. Therm. Eng. 75 115-2818
[18]  
Pingale AD(2006)Pool boiling heat transfer enhancement with copper nanowire arrays J. Heat Transf. 128 1335-95
[19]  
Belgamwar SU(2007)Pool boiling experiments on multi walled carbon nanotube forests Int. J. Heat Mass Transf. 50 4023-3076
[20]  
Liter SG(2014)Effects of carbon nanotube arrays on nucleate pool boiling Sci. Rep. 4 06817-567