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Zero-emission casting-off and docking maneuvers for series hybrid excursion ships

机译:串联混合动力游览船的零排放抛放和对接演习

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Ecological areas visits require appropriate management of key ecological features. In protected reserves innovative systems should be developed to facing problems of pollution, exhaust fumes and noise. These underlying conditions lead to special challenges for excursions ships. The switching to a cleaner, safer and quieter transport system seems to be a sustainable long-term solution for the problems of ecological areas, where more electric ship can be an important part of the solution and principally for the last mile. This paper presents a design approach of a hybrid Energy Storage Systems (ESS) for new generation of series hybrid excursion ship devoted to ecological areas to avoid any emission during the casting-off and the docking maneuvers. The main purpose of the paper is to show that, even if the hybrid ESS plus series-hybrid propulsion were already used to other vehicles, the gain for a ship with no regenerative capability is not evident. The proposed hybridization is built upon a fully-active parallel topology with battery and supercapacitors. The sizing methodology and the configuration of the ESS are detailed. For a real mission profile in Alster Lake (Hamburg, Germany) it is shown that a small battery pack of 2 kWh with a supercapacitor bank of 0.54 kWh are necessary to have zero-emission maneuvers. The graphical formalism Energetic Macroscopic Representation (EMR) is used to describe the model and to establish an energy analysis tool. An inversion-based control scheme is then deduced from the EMR and simulation results are provided to validate the proposed methodology. The usage of hybrid ESS avoids 1.39 kg of CO2 during the casting-off and docking maneuvers despite increasing consumption of 0.2 l (+8%). However, the plug-in capability can be introduced and a recharge of the battery when the ship is docked could reduce the global consumption and emissions by 20% in comparison to the original ship.
机译:生态区访问需要对关键生态特征进行适当管理。在受保护的保护区中,应开发创新系统以应对污染,废气和噪音问题。这些潜在条件给短途旅行船带来了特殊挑战。转向更清洁,更安全,更安静的运输系统似乎是解决生态区域问题的可持续的长期解决方案,在该领域中,更多的电船可能是解决方案的重要组成部分,并且主要是在最后一英里。本文提出了一种混合储能系统(ESS)的设计方法,该系统用于新一代系列混合游览船,专门用于生态区域,以避免在抛弃和对接演习中产生任何排放。该论文的主要目的是表明,即使混合动力ESS加串联混合动力已经用于其他车辆,没有再生能力的船舶的收益也不明显。拟议的混合动力建立在具有电池和超级电容器的全主动并行拓扑基础上。详细介绍了大小调整方法和ESS的配置。对于阿尔斯特湖(德国汉堡)的真实任务概况,要实现零排放操作,需要一个2 kWh的小型电池组和一个0.54 kWh的超级电容器组。图形形式主义的高能宏观表示(EMR)用于描述模型并建立能量分析工具。然后从EMR推导了基于反转的控制方案,并提供了仿真结果以验证所提出的方法。尽管增加了0.2升(+ 8%)的消耗,但混合动力ESS的使用在抛弃和对接过程中避免了1.39千克的二氧化碳。但是,可以引入插入功能,并且在船舶停靠时为电池充电可以使全球消耗量和排放量比原始船舶减少20%。

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