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비등점의 가열 표면에서 나노유체 액적의 증발 특성Characteristics for Nanofluid Droplet Evaporation on Heated Surface at Boiling Temperature of Base Liquid

Other Titles
Characteristics for Nanofluid Droplet Evaporation on Heated Surface at Boiling Temperature of Base Liquid
Authors
김대윤정정열이성혁
Issue Date
31-12월-2015
Publisher
한국액체미립화학회
Keywords
Nanofluid; Droplet; Evaporation; Heated surface; Boiling temperature
Citation
한국액체미립화학회지, v.20, no.4, pp 236 - 240
Pages
5
Journal Title
한국액체미립화학회지
Volume
20
Number
4
Start Page
236
End Page
240
URI
https://www.kriso.re.kr/sciwatch/handle/2021.sw.kriso/8066
DOI
10.15435/JILASSKR.2015.20.4.236
Abstract
This study aims to investigate evaporation characteristics of nanofluid droplet on heated surface at boiling temperature of DI-water. At the initial stage of evaporation process, dynamic contact angle (DCA) of nanofluid droplet with 0.01 vol.% on the textured surface rapidly increased over its ECA by generated large bubble inside the droplet due to lower wettability. However, contact angle of nanofluid droplet with higher concentration on textured surface decreased with the surface tension. After that, DCA gradually decreased until dried out, and total evaporation time was significantly delayed in the case of textured surface. In addition, the evaporation rate of droplet was estimated by using droplet contact angle and diameter through image processing. The evaporation characteristics were highly affected by the nanofluid concentration and surface wettability.l.% on the textured surface rapidly increased over its ECA by generated large bubble inside the droplet due to lower wettability. However, contact angle of nanofluid droplet with higher concentration on textured surface decreased with the surface tension. After that, DCA gradually decreased until dried out, and total evaporation time was significantly delayed in the case of textured surface. In addition, the evaporation rate of droplet was estimated by using droplet contact angle and diameter through image processing. The evaporation characteristics were highly affected by the nanofluid concentration and surface wettability.
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해양공공디지털연구본부 (해사안전·환경연구센터)
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