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Use of Multibeam and Dual-Beam Sonar Systems to Observe Cavitating Flow Produced by Ferryboats : In a Marine Renewable Energy Perspective

机译:使用多光束和双光束声纳系统观察轮船产生的空化流:海洋可再生能源的观点

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摘要

With the prospect to deploy hydrokinetic energy converters in areas with heavy boat traffic, a study was conducted to observe and assess the depth range of cavitating flow produced by ferryboats in narrow channels. This study was conducted in the vicinity of Finnhamn Island in Stockholm Archipelago. The objectives of the survey were to assess whether the sonar systems were able to observe and measure the depth of what can be cavitating flow (in a form of convected cloud cavitation) produced by one specific type of ferryboats frequently operating in that route, as well as investigate if the cavitating flow within the wake would propagate deep enough to disturb the water column underneath the surface. A multibeam and a dual-beam sonar systems were used as measurement instruments. The hypothesis was that strong and deep wake can disturb the optimal operation of a hydrokinetic energy converter, therefore causing damages to its rotors and hydrofoils. The results showed that both sonar system could detect cavitating flows including its strength, part of the geometrical shape and propagation depth. Moreover, the boat with a propeller thruster produced cavitating flow with an intense core reaching 4 m of depth while lasting approximately 90 s. The ferry with waterjet thruster produced a less intense cavitating flow; the core reached depths of approximately 6 m, and lasted about 90 s. From this study, it was concluded that multibeam and dual-beam sonar systems with operating frequencies higher than 200 kHz were able to detect cavitating flows in real conditions, as long as they are properly deployed and the data properly analyzed.
机译:为了在船流量较大的地区部署动能换能器,进行了一项研究,以观察和评估渡船在狭窄通道中产生的空化流的深度范围。这项研究是在斯德哥尔摩群岛Finnhamn岛附近进行的。这项调查的目的是评估声纳系统是否能够观察和测量经常在该路线上航行的一种特定类型的渡船产生的空化流(以对流云空化的形式)的深度。研究尾流中的空化流是否传播得足够深,以至于扰乱了地表以下的水柱。多波束和双波束声纳系统用作测量仪器。假设是,强而深的尾流会干扰流体动力换能器的最佳运行,因此会损坏其转子和水翼。结果表明,两种声纳系统都能检测到空化流,包括其强度,部分几何形状和传播深度。此外,带有螺旋桨推进器的船产生了空化流,其强芯达到了4 m的深度,持续了大约90 s。带有水射流推进器的渡轮产生的空化强度较小。岩心到达约6 m的深度,并持续约90 s。从这项研究得出的结论是,工作频率高于200 kHz的多波束和双波束声纳系统只要能够正确部署并正确分析数据,就能够检测出真实条件下的空化流。

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