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Mechanism and performance of a hydrofoil bubble generator utilized for bubbly drag reduction ships

机译:用于吸入船舶的水翼泡沫发生器的机制和性能

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Following the success of bubbly drag reduction for marine vessels by hydrofoil bubble generators (Kumagai et al., 2015), we conducted two kinds of experiments to specify and improve its working principle. Firstly, PIV measurement was carried out to elucidate the flow structure around a hydrofoil running beneath a free surface. Froude number dependence of the anti-stall characteristics and cancellation of vertical pressure gradient above the hydrofoil were confirmed, which entrain the atmospheric air into water flow. Secondly, we mounted the hydrofoil to a model ship that runs in a 100-m-towing facility and found three different two-phase flow patterns in realizing bubble generation. Volume flow rate of generated bubbles increased with the ship speed to the power of greater than two, thus wall-occupation fraction of bubbles also increases with the ship speed. Furthermore, hydrofoil drag during bubble generation was measured and used to estimate net power-saving, having proved advantage of the hydrofoil bubble generator for long ships at high speed conditions.
机译:通过水翼泡沫发电机对海洋船舶减少的起伏阻力(Kumagai等,2015),我们进行了两种实验,以指定和改善其工作原理。首先,进行PIV测量以阐明在自由表面下方的水膜周围的流动结构。确认了抗失速特性和垂直压力梯度取消的FRoude数量依赖性,其纳入水流量。其次,我们将水翼安装到一个模型船上,在100米牵引设施中运行,发现了三种不同的两相流动模式在实现泡泡生成中。产生的气泡的体积流量随着船舶速度而增加到大于两个的功率,因此壁垒的气泡速度也随着船舶速度而增加。此外,测量泡沫生成期间的水力拖曳,并用于估计净功率,证明了在高速条件下的长船舶的水翼气泡发生器的优点。

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