首页> 外文会议>ASME international conference on ocean, offshore and arctic engineering >EXPERIMENTAL INVESTIGATION OF THE EFFECT OF WAVES, VENTILATION AND CAVITATION IN BOLLARD PULL CONDITIONS
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EXPERIMENTAL INVESTIGATION OF THE EFFECT OF WAVES, VENTILATION AND CAVITATION IN BOLLARD PULL CONDITIONS

机译:柱式拉力条件下波浪,通风和空化效果的实验研究

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Ventilation is a feared working condition of ship propulsors, especially in Dynamic Positioning operation, since it leads to the lost of thrust of the propeller resulting into an uncontrollable ship. Experience showed that the risk oj ventilating propellers was negligently underestimated in traditional towing tank experiments but better predicted in depressurised towing tanks, where the ambient pressure is scaled down according to Froude similarity. In 2012 MARIN's Depressurized Wave Basin (DWB) has taken into service. This unique facility is the only one in the world that is able to generate waves in a large depressurized towing tank. This ensures correct representation of the pressure inside the enclosed ventilation bubbles and vortices, resulting into a correct physic behaviour. The EU-funded Streamline project was the first project for which ventilation inception measurements were carried out in the DWB. Tests were carried out with a fully instrumented podded ship model, sailing and in bollard pull condition, in waves and depressurised conditions. In order to acquire detailed load measurements, MARIN used their in house developed 6 component and 5 component transducers. The 6 component transducer was used for measuring the omnidirectional propeller loads, while the 5 component transducer was used for measuring 2 blade forces and 3 blade moments. At the same time synchronised high speed video recordings were made to acquire insight in the occurring phenomena. In the present paper a description of the test set up will be presented briefly, followed by a discussion of the recordings and the observations that were made for bollard pull condition in waves.
机译:通风是船舶推进器担心的工作状态,尤其是在动态定位操作中,因为通风会导致螺旋桨推力损失,从而导致船舶无法控制。经验表明,在传统的拖船实验中通风螺旋桨的风险被低估了,但是在减压拖船中的预测更好,在降压拖船中,环境压力根据Froude相似性进行了缩减。 MARIN的减压海盆(DWB)于2012年投入使用。这种独特的设施是世界上唯一能够在大型减压拖船舱中产生波浪的设施。这样可以确保正确表示封闭的通气气泡和漩涡内部的压力,从而形成正确的物理行为。欧盟资助的Streamline项目是第一个在DWB中进行通风初始测量的项目。测试是使用装备齐全的吊舱船模型进行的,在航行和系船柱拉动条件下,在波浪和减压条件下进行。为了获得详细的负载测量值,MARIN使用了他们内部开发的6分量和5分量传感器。 6分量传感器用于测量全向螺旋桨负载,而5分量传感器用于测量2个叶片力和3个叶片力矩。同时,还进行了同步的高速视频记录,以了解发生的现象。在本文中,将简要介绍测试装置,然后讨论记录和对波浪中系船柱拉动条件所作的观察。

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