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Control of propeller cavitation in operational conditions

机译:在运行条件下控制螺旋桨气蚀

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Off-design conditions can have a severe impact on ship propulsion system behaviour Resistance increase, for instance, leads to higher engine loading, and can also easily lead to a decrease of cavitation inception speed with respect to calm water conditions. Wakefield variations due to ship motions, waves and manoeuvres also have an effect on engine loading and on propeller cavitation. This paper discusses the model-based development of a propulsion control system aiming at increased cavitation free time in operational conditions, while preventing engine overloading and keeping manoeuvring characteristics acceptable. The developed propulsion control system was tested extensively in a simulation environment before full-scale trials took place in February 2008, onboard a Royal Netherlands Navy frigate. Results in terms of full-scale propulsion system behaviour are presented, including photos showing the propeller cavitation behaviour in operational conditions.
机译:偏离设计条件会严重影响船舶推进系统的性能,例如,阻力增加(例如导致更高的发动机负载),并且相对于平静的水况,还很容易导致气蚀起始速度降低。由于船舶运动,波浪和操纵而引起的韦克菲尔德变化也会对发动机负载和螺旋桨空化产生影响。本文讨论了一种基于模型的推进控制系统的开发,该系统的目的是在工作条件下增加空化时间,同时防止发动机过载并保持操纵特性可接受。在2008年2月荷兰皇家海军护卫舰上进行全面试验之前,已在模拟环境中对开发的推进控制系统进行了广泛测试。提出了关于全尺寸推进系统行为的结果,包括显示运行条件下螺旋桨气蚀行为的照片。

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