考虑螺旋桨在波浪中沉没的全电动船舶动力系统的水内外冲击建模

Saman Nasiri, S. Peyghami, M. Parniani, F. Blaabjerg
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引用次数: 2

摘要

尽管全电动船舶采用电力推进系统具有诸多优点,但在船舶动力系统中也出现了额外的功率波动源。由于螺旋桨是AES的主要电力消耗者,这些波动可能会显著影响其动力系统的电能质量。因此,为了实现船舶动力系统的最佳性能,需要在船舶设计层面对这些波动进行严格的研究。波浪碰撞是螺旋桨向船舶动力系统注入动力波动的关键条件之一。因此,要在设计层面全面分析螺旋桨在水和离水对船舶动力系统的影响,就必须建立一个全面的模型。本文提出了一种基于模型的方法来确定螺旋桨在与不同波浪类碰撞时的浸没深度变化。根据该方法,可以识别出由进水和出水效应引起的螺旋桨推力损失因子。然后将该方法应用于一个集成的AES模型。该模型将船舶运动和动力系统动力学联系起来。利用所提出的模型,可以在船舶的模型设计中精确地探讨船舶动力系统在水内和水外的影响。最后,将所提出的方法与互连模型结合,对一艘概念船舶进行了波浪碰撞工况的仿真。仿真结果表明,该方法可以准确地反映出船舶波遭遇条件对AES电力系统的频率、电压以及总体电能质量的实质性影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling In-and-Out-of-Water Impact on All-Electric Ship Power System Considering Propeller Submergence in Waves
Despite the advantages of employing an electric propulsion system in All-Electric Ships (AES), additional power fluctuation sources have emerged in the ship power system as a result. Since the propellers are the primary power consumers in the AES, these fluctuations may significantly affect its power system power quality. Thus, for optimal performance of the ship power system, these fluctuations need to be rigorously investigated at the design level of vessels. Waves collision is one of the critical conditions where propellers inject power fluctuations into the ship power system. Therefore, a comprehensive model is essential to analyze the propellers in-and-out-of-water effect on the ship power system thoroughly at the design level. This paper proposes a model-based approach for determining propeller immersion depth variations in collisions with different wave classes. According to this approach, the propellers thrust loss factor caused by the in-and-out-of-water effect can be identified. The proposed method is then applied in an integrated AES model. This model interconnects the ship motion and power system dynamics. The in-and-out-of-water impact on the ship power system can be explored precisely in the model-based design of the vessels by utilizing the proposed model. In the end, the proposed method and the interconnected model have been used to simulate a notional ship in a wave collision condition. Simulations demonstrate that the proposed approach can accurately map the substantial impacts of the vessel-wave encountering conditions on the frequency, voltage, and generally on the power quality of the AES power system.
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