Reduction of the fuel oil consumption and corresponding greenhouse gas exhausted from ships is an important issue for today’s ship design and shipping. Several concepts and devices on the superstructure of a container ship were suggested and tested in the wind tunnel to estimate the air drag reduction. As a preliminary performance evaluation, air drag contributions of each part of the superstructure and containers were estimated based on RANS simulation respectively. Air drag reduction efficiency of shape modification and add-on devices on the superstructure and containers was also estimated. Gap-protectors between containers and a visor in front of upper deck were found to be most effective for drag reduction. Wind tunnel tests had been carried out to confirm the drag reduction performance between the baseline(without any modification) configuration and two modified superstructure configurations which were designed and chosen based on the computation results. The test results with the modified configurations show considerable aerodynamic drag reduction, especially the gap-protectors between containers show the largest reduction for the wide range of heading angles. RANS computations for three configurations were performed and compared with the wind tunnel tests. Computation result shows the similar drag reduction trend with experiment for small heading angles. However, the computation result becomes less accurate as heading angle is increasing where the massively separated flow is spread over the leeward side.
[1]
E. C. Maskell,et al.
A Theory of the Blockage Effects on Bluff Bodies and Stalled Wings in a Closed Wind Tunnel
,
1963
.
[2]
William H. Rae,et al.
Low-Speed Wind Tunnel Testing
,
1966
.
[3]
K. J. Rawson,et al.
Basic Ship Theory
,
1968
.
[4]
Richard G. J. Flay,et al.
A twisted flow wind tunnel for testing yacht sails
,
1996
.
[5]
Yoshiho Ikeda,et al.
Cruising Performance of a Large Passenger Ship in Heavy Sea
,
2006
.
[6]
Toshifumi Fujiwara,et al.
Experimental Investigation and Estimation on Wind Forces for a Container Ship
,
2009
.
[7]
Kevin R. Cooper,et al.
Summary of Full-Scale Wind Tunnel Tests of Aerodynamic Drag-Reducing Devices for Tractor-Trailers
,
2009
.
[8]
Ingrid Marie Vincent Andersen,et al.
Wind loads on post-panamax container ship
,
2013
.
[9]
Hyungmin Park,et al.
Aerodynamics of Heavy Vehicles
,
2014
.
[10]
신종계,et al.
곡판 가공방법 적용을 위한 곡률면적 분석
,
2015
.
[11]
신상훈.
선박의 직진과 선회 시의 프로펠러 하중이 프로펠러 축 베어링에 미치는 영향
,
2015
.