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Analysis of Energy Storage Implementation on Dynamically Positioned Vessels

机译:动态定位血管储能实现分析

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摘要

Blackout prevention on dynamically positioned vessels during closed bus bar operation, which allows more efficient and eco-friendly operation of main diesel generators, is the subject of numerous studies. Developed solutions rely mostly on the ability of propulsion frequency converters to limit the power flow from the grid to propulsion motors almost instantly, which reduces available torque until the power system is fully restored after failure. In this paper, a different approach is presented where large scale energy storage is used to take part of the load during the time interval from failure of one of the generators until the synchronization and loading of a stand-by generator. In order to analyze power system behavior during the worst case fault scenario and peak power situations, and to determine the required parameters of the energy storage system, a dynamic simulation model of a ship electrical power system is used. It is concluded that implementation of large scale energy storage can increase the stability and reliability of a vessel’s electrical power system without the need for the reduction of propulsion power during a fault. Based on parameters obtained from simulations, existing energy storage systems were evaluated, and the possibility of their implementation in the maritime transportation sector was considered. Finally, an evaluation model of energy storage implementation cost-effectiveness was presented.
机译:在闭合母线操作期间动态定位的船舶上的停电预防,这允许更高效且环保的主要柴油发电机的操作,是众多研究的主题。开发的解决方案主要依赖推进频率转换器的能力,以限制电网几乎立即从电网到推进电机,这减少了可用扭矩,直到电源系统在故障后完全恢复。在本文中,介绍了一种不同的方法,其中使用大规模能量存储在时间间隔期间从一个发电机失败的时间间隔内接收的负载,直到待机发电机的同步和加载。为了在最坏情况下的故障场景和峰值功率情况下分析电力系统行为,并确定能量存储系统所需的参数,使用船舶电力系统的动态仿真模型。得出结论,大规模能量存储的实施可以提高船舶电力系统的稳定性和可靠性,而无需在故障期间减少推进力。基于从仿真获得的参数,评估了现有的能量存储系统,并考虑了他们在海上运输部门实施的可能性。最后,提出了能量存储实施成本效益的评估模型。

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