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Rudderpropellers for Tugs - developing the state of the art

机译:拖船用螺旋桨推进器-最新技术发展

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Rudderpropellers are widely accepted as the state of the art in tug propulsion. This does not mean however, that the technology of these successful propulsion devices and the way they are selected and customised is not undergoing continuous development. The development of new rudderpropeller models makes use of the most advanced design tools available to engineers today. Computational Fluid Dynamics and model tests help to optimise the hydrodynamics. Finite Element Analysis is the tool of choice to design mechanical rigidity with minimum weight. Detailed strength and life time calculation are performed for each bearing and gear. But not all problems can be solved on the basis of theory. It takes an experienced design team to finally get homogeneous engineering solution for such a complex system. Major steps in the design of a typical tug propulsor are shown. In a separate section of the presentation a description of Schottel's efforts to meet the demand for ever increasing bollard pull is given. Systematic protracted work led to a new highly efficient nozzle system ready for introduction into the market. The last part deals briefly with the torsional vibration analysis for the power transmission line, which is performed for each project.
机译:舵桨已被广泛认为是拖船推进中的最新技术。然而,这并不意味着这些成功的推进装置的技术以及它们的选择和定制方式并未得到持续发展。新的舵桨模型的开发利用了当今工程师可用的最先进的设计工具。计算流体动力学和模型测试有助于优化流体力学。有限元分析是用最小的重量设计机械刚度的首选工具。对每个轴承和齿轮进行详细的强度和使用寿命计算。但是,并非所有问题都可以在理论基础上解决。最终,需要一支经验丰富的设计团队才能为此类复杂系统获得同类工程解决方案。显示了典型拖船推进器设计的主要步骤。在演示的单独部分中,描述了肖特尔为满足对不断增长的系缆牵引力的需求所做的努力。系统的长期工作导致了新的高效喷嘴系统准备投入市场。最后一部分简要介绍了输电线路的扭转振动分析,该分析针对每个项目进行。

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