A comprehensive theoretical approach for analysing manoeuvring effects on ships by integrating hydrodynamics and power system

IF 1.9 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Saman Nasiri, Saeed Peyghami, Mostafa Parniani, Frede Blaabjerg
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引用次数: 3

Abstract

Ship motions affect the propulsion system, which causes fluctuations in the power system. Mutually, the power system variations impact the ship velocity by generating speed changes in the propeller. Therefore, interconnecting the ship hydrodynamic and power system has paramount importance in designing and analysing an all-electric ship (AES). The lack of an integrated model that can be evaluated in various operating conditions, such as manoeuvring, is evident. This paper explores the required perceptions for the power system and hydrodynamic analysis of an AES. Then, an integrated theoretical model comprising both the ship motion and power system is proposed. In addition to providing an accurate model for the ship in varying situations, this study demonstrates that the ship speed estimation during a ship route change differs from when the interconnections are overlooked. In the light of this determination, a straightforward enhancement for the ship speed control system is proposed. The effects of this modification on the ship power system are explored using the proposed model. The developed model is examined in different scenarios, and its advantages are discussed. It is shown that this model is suitable for employing in the model-based design of AESs.

Abstract Image

综合流体力学和动力系统分析船舶操纵影响的综合理论方法
船舶运动影响推进系统,从而引起动力系统的波动。相互之间,动力系统的变化通过在螺旋桨中产生速度变化来影响船舶速度。因此,在全电动船舶的设计和分析中,实现船舶水动力系统和动力系统的互联是至关重要的。显然,缺乏一个可以在各种操作条件下(如机动)进行评估的综合模型。本文探讨了AES的动力系统和水动力分析所需的感知。在此基础上,提出了一个包含船舶运动和动力系统的综合理论模型。除了为船舶在不同情况下提供准确的模型外,本研究还表明,船舶航路变化期间的航速估计与忽略互连时的航速估计不同。在此基础上,提出了船舶航速控制系统的改进方案。利用所建立的模型,探讨了这种改进对船舶动力系统的影响。在不同的场景下对所建立的模型进行了检验,并讨论了其优点。结果表明,该模型适用于基于模型的AESs设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
5.80
自引率
4.30%
发文量
18
审稿时长
29 weeks
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