首页> 外文会议>International Conference on Ocean, Offshore and Arctic Engineering >DEVELOPMENT OF A SIMULATION ENVIRONMENT FOR HYBRID PROPULSION DRIVE TRAINS: UTILIZATION OF A HOLISTIC APPROACH TO PREDICT THE DYNAMIC BEHAVIOR IN THE EARLY DESIGN STAGE
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DEVELOPMENT OF A SIMULATION ENVIRONMENT FOR HYBRID PROPULSION DRIVE TRAINS: UTILIZATION OF A HOLISTIC APPROACH TO PREDICT THE DYNAMIC BEHAVIOR IN THE EARLY DESIGN STAGE

机译:开发混合推进驱动列车的仿真环境:利用整体方法来预测早期设计阶段的动态行为

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This paper covers the generic procedure for the creation and usage of a complete system simulation for propulsion systems of ships with focus on complex hybrid systems. Due to the large number of available components and challenging operational profiles, there is no longer a single best solution, especially in specialized shipbuilding. On top of that even minor changes in the propulsion system can have a substantial impact on plant performance and vessel behavior. Thus, the early design stage is crucial. The design procedure usually incorporates the selection and dimensioning of available components and concepts. Once this has been done, the dynamic behavior can be analyzed using the developed system simulation environment. With the knowledge gained the needed alterations in the concept can be identified and implemented in the subsequent design iteration circle. Based on the example of an offshore anchor handling vessel, the integration potential of a hybrid propulsion system is examined and evaluated according to the aforementioned procedure. The applied tool is a system simulation environment developed in the Department of Marine Engineering, consisting of a distributed co-simulation of the existing ship design environment E4 and Matlab®Simulink®.
机译:本文涵盖了为船舶推进系统创建和使用具有专注于复杂的混合系统的完整系统仿真的通用程序。由于大量可用的组件和具有挑战性的操作概况,不再有一个最佳解决方案,尤其是专门的造船。最重要的是,推进系统的甚至轻微的变化都可以对植物性能和血管行为产生重大影响。因此,早期设计阶段至关重要。设计过程通常包含可用组件和概念的选择和尺寸。完成后,可以使用开发的系统仿真环境分析动态行为。随着知识所获得的,可以在随后的设计迭代圈中识别和实现概念所需的更改。基于离上锚定处理容器的示例,根据上述步骤检查和评估混合动力推进系统的积分电位。应用工具是在海洋工程系中开发的系统仿真环境,包括现有船舶设计环境E4和MATLAB®Simulink®的分布式共同仿真。

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