Decentralized Power Sharing with Frequency Decoupling for a Fuel Cell-Battery DC Shipboard Power System

Timon Kopka, Foivos Mylonopoulos, Andrea Coraddu, Henk Polinde
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Abstract

The maritime industry is under increasing pressure to reduce its carbon footprint by adopting new energy generation and storage technologies in shipboard power systems (SPS). Fuel cells (FCs) show great potential as primary power sources when hybridized with energy storage systems (ESS). Integrating different technologies in future SPS requires the coordination of power generation and storage modules, which can be facilitated by DC technology with power electronics interfaces. However, studies on FC integration have primarily focused on small-scale applications with centralized control architectures. There has been little research on the modular control of multiple FC and battery modules in SPS. This study proposes a decentralized droop-based power sharing approach with load frequency decoupling to efficiently utilize power system modules based on their dynamic capabilities. The proposed strategy further incorporates decentralized voltage regulation and state-of-charge (SoC) management functions. The methodology was applied to a short-sea cargo vessel with an FC-battery DC power system. The results indicate that the mission load profile can be satisfied while limiting fluctuations in the FC output power. Moreover, the proposed strategy achieves the same voltage regulation performance as a centralized proportional-integral (PI) controller and can be easily tuned to achieve load frequency decoupling with the desired time constant. Finally, a comparative analysis shows how the trade-off between the dynamic operation of the FC and the discharge depth of the ESS is affected by the choice of time constant.
燃料电池-电池直流舰载供电系统的分散式功率共享与频率去耦
海运业正面临着越来越大的压力,需要在船上动力系统(SPS)中采用新的发电和储能技术来减少碳足迹。燃料电池 (FC) 与储能系统 (ESS) 混合使用时,显示出作为主要动力源的巨大潜力。在未来的 SPS 中集成不同的技术需要发电和储能模块的协调,而带有电力电子接口的直流技术可以促进这种协调。然而,有关 FC 集成的研究主要集中在采用集中控制架构的小规模应用上。有关 SPS 中多个 FC 和电池模块的模块化控制的研究很少。本研究提出了一种基于负载频率解耦的分散式下垂功率共享方法,可根据电力系统模块的动态能力有效利用这些模块。提议的策略进一步纳入了分散式电压调节和充电状态(SoC)管理功能。该方法被应用于一艘配备 FC 电池直流电源系统的短途海上货船。结果表明,在限制 FC 输出功率波动的同时,还能满足任务负载曲线的要求。此外,所提出的策略还能实现与集中式比例积分(PI)控制器相同的电压调节性能,并能轻松进行调整,从而以所需的时间常数实现负载频率解耦。最后,对比分析表明了时间常数的选择如何影响 FC 动态运行与 ESS 放电深度之间的权衡。
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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