Investigation on drag performance of anti-fouling painted flat plates in a cavitation tunnel
- Authors
- Paik, Bu-Geun; Kim, Kyung-Youl; Cho, Sung-Rak; Ahn, Jong-Woo; Cho, Sang-Rae
- Issue Date
- 6월-2015
- Publisher
- PERGAMON-ELSEVIER SCIENCE LTD
- Keywords
- Anti-fouling paint; Local skin friction; Turbulent boundary layer; Proper Orthogonal Decomposition (POD); Laser Doppler Velocimetry (LDV); Particle Image Velocimetry(PIV)
- Citation
- OCEAN ENGINEERING, v.101, pp 264 - 274
- Pages
- 11
- Journal Title
- OCEAN ENGINEERING
- Volume
- 101
- Start Page
- 264
- End Page
- 274
- URI
- https://www.kriso.re.kr/sciwatch/handle/2021.sw.kriso/772
- DOI
- 10.1016/j.oceaneng.2015.04.026
- ISSN
- 0029-8018
- Abstract
- The flat plate coated with silicone-type Tin-free self-polishing co-polymer (SPC) or the conventional metal-type Tin-free SPC is prepared to investigate the drag performance of the anti-fouling SPC. The local skin friction of anti-fouling paints is evaluated by a flat plate model test method in the cavitation tunnel. The properties of the boundary layer and the drag performance are investigated by flow and force measurement techniques. The silicone-type SPC paint shows better drag performance than the metal-type paint in the high speed regime. The silicone-type SPC paints also show decreasing roughness function (Delta U+) with the increase of displacement thickness Reynolds number (Re-delta*) and roughness Reynolds number (k(s)(+)). Even in the same silicone-type SPC paints with similar roughness function, drag performance appears differently. The different drag performance in the silicone-type SPC painted surfaces is considered to be affected by different turbulent vortical structures caused by the surface roughness. Y-directional peak position of streamwise turbulence intensity is utilized to estimate the existence of vortical structure. To investigate the reason of the different drag performance in the silicone-type SPC painted surfaces, the POD analysis, extracting the most energetic flow fields, is adopted to find the effects of cross-flow velocity component caused by the turbulent vortical structure. (C) 2015 Elsevier Ltd. All rights reserved.
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