Experimental Study of Air Layer Drag Reduction with Bottom Cavity for A Bulk Carrier Ship Model

被引:0
|
作者
WU Hao [1 ,2 ]
OU Yong-peng [3 ]
机构
[1] Key Laboratory of High Performance Ship Technology Wuhan University of Technology, Ministry of Education
[2] School of Transportation, Wuhan University of Technology
[3] College of Naval Architecture and Ocean Engineering, Naval University of Engineering
关键词
air layer drag reduction; bulk carrier; model test; depth of cavity; air layer shape;
D O I
暂无
中图分类号
U674.134 [];
学科分类号
082401 ;
摘要
Air lubrication by means of a bottom cavity is a promising method for ship drag reduction. The characteristics of the bottom cavity are sensitive to the flow field around the ship hull and the effect of drag reduction, especially the depth of the bottom cavity. In this study, a ship model experiment of a bulk carrier is conducted in a towing tank using the method of air layer drag reduction(ALDR) with different bottom cavity depths. The shape of the air layer is observed, and the changes in resistance are measured. The model experiments produce results of approximately 20%for the total drag reduction at the ship design speed for a 25-mm cavity continuously supplied with air at Cq = 0.224 in calm water, and the air layer covers the whole cavity when the air flow rate is suitable. In a regular head wave, the air layer is easily broken and reduces the drag reduction rate in short waves, particularly when λ/Lw1 is close to one;however, it still has a good drag reduction effect in the long waves.
引用
收藏
页码:554 / 562
页数:9
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