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산질화 표면에서 액적의 증발열전달 특성Evaporative Heat Transfer Characteristics of Droplet on Oxi-nitriding Surface

Authors
김대윤이성혁
Issue Date
2016
Publisher
한국액체미립화학회
Keywords
Droplet; Evaporation; Heat transfer; Oxi-nitriding; 액적; 증발; 열전달; 산질화
Citation
한국액체미립화 학회지, v.21, no.1, pp 52 - 57
Pages
6
Journal Title
한국액체미립화 학회지
Volume
21
Number
1
Start Page
52
End Page
57
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/8402
ISSN
1226-2277
Abstract
The present study aims to experimentally investigate the evaporative heat transfer characteristics of Oxi-nitriding SPCC surface. Moreover, the heat transfer coefficient was examined with respect to surface temperature during droplet evaporation. In fact, the nitriding surface showed significant enhancement for anticorrosion performance compared to bare SPCC surface but the thermal resistance also increased due to the formation of compound layer. From the experimental results, the evaporative behavior of sessile droplet on nitriding surface showed similar tendency with the bare surface. Total evaporation time of sessile droplet on the nitriding surface was delayed less than 5%. The difference in heat transfer coefficient increased with the surface temperature, and the maximum difference was estimated to be around 11% at 80oC surface. Thus, this nitriding surface treatment method could be useful for seawater heat exchanger industries.
The present study aims to experimentally investigate the evaporative heat transfer characteristics of Oxi-nitriding SPCC surface. Moreover, the heat transfer coefficient was examined with respect to surface temperature during droplet evaporation. In fact, the nitriding surface showed significant enhancement for anticorrosion performance compared to bare SPCC surface but the thermal resistance also increased due to the formation of compound layer. From the experimental results, the evaporative behavior of sessile droplet on nitriding surface showed similar tendency with the bare surface. Total evaporation time of sessile droplet on the nitriding surface was delayed less than 5%. The difference in heat transfer coefficient increased with the surface temperature, and the maximum difference was estimated to be around 11% at 80oC surface. Thus, this nitriding surface treatment method could be useful for seawater heat exchanger industries.
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