Zero-emission Fueling Infrastructure for IWT: Optimizing the Connection between Upstream Energy Supply and Downstream Energy Demand

M. Pourbeirami Hir, A. Kirichek, N. Pourmohammadzia, M. Jiang, M. Van Koningsveld
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引用次数: 1

Abstract

A key challenge in the energy transition for Inland Water Transport is the functional design of bunker networks and first-order dimensioning of individual bunker stations. A fundamental ingredient for this is an improved understanding of how upstream energy supply (‘well-to-bunker-station’) and downstream demand (‘bunker-station-to-tank’) may interconnect. In this paper we discuss an approach to the design of bunkering networks that takes logistic modelling to estimate network scale energy demand as a starting point. Depending on the vessels that use the network and the anticipated fuel mix for the overall fleet, logistical modelling may be used to estimate the magnitude of the energy demand along the network. Estimates of the operational range of vessels per energy carrier help to estimate maximum bunker station inter-distances. Insight into the potential supply chains that connect the source of each energy carrier to a physical bunker facility is needed to close the loop. Energy carriers may be needed on board in a gaseous or liquid form, or in the form of electrons. Transfer may take place in the form of loading (e.g., filling the fuel tank, charging the battery pack) or swapping (e.g., exchanging fuel containers, exchanging battery containers). Depending on the energy carrier, transfer method(s) and demand quantities, functional designs of bunker stations (in terms of required system elements and their order-of-magnitude dimensions) can be made. Depending on service level requirements both the dimensions of individual bunker stations and their spread over the network may be optimized. Key contribution of this work is a thorough overview of aspects that play a role in the design of bunker infrastructure for the decarbonisation of inland shipping. Based on this overview steps for further research are recommended.
用于 IWT 的零排放燃料基础设施:优化上游能源供应与下游能源需求之间的联系
内河水运能源转型的一个关键挑战是燃料舱网络的功能设计和单个燃料舱站的一阶尺寸设计。其中的一个基本要素是更好地理解上游能源供应("油井到加油站")和下游需求("加油站到油罐")如何相互连接。在本文中,我们讨论了一种加油网络设计方法,该方法以物流建模为起点,估算网络规模的能源需求。根据使用该网络的船舶和整个船队的预期燃料组合,可以使用物流建模来估算网络沿线的能源需求规模。对每艘能源运输船的运营范围进行估算,有助于估算加油站之间的最大距离。需要深入了解将每艘能源运输船的源头与实际加油设施连接起来的潜在供应链,以形成闭环。船上所需的能量载体可能是气态或液态的,也可能是电子形式的。转移的形式可以是装载(例如给油箱加油、给电池组充电)或交换(例如交换燃料容器、交换电池容器)。根据能源载体、传输方式和需求数量,可以对加油站进行功能设计(按所需系统元件及其数量级尺寸)。根据服务水平的要求,可以优化单个加油站的尺寸及其在网络中的分布。这项工作的主要贡献在于全面概述了在内河航运去碳化过程中加油站基础设施设计中发挥作用的各个方面。在此基础上,我们提出了进一步研究的建议。
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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