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Design and optimization of a hydrogen supply chain using a centralized storage model

机译:使用集中存储模型设计和优化氢气供应链

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This study involves the construction of a hydrogen supply chain optimization model using a centralized storage model that combines and consolidates flows of hydrogen from different production sites into integrated bulk storage. To supply hydrogen to a fuel cell electric vehicle station, various hydrogen supply pathways and storage configurations for different types of production technologies and transportation modes are considered. In terms of the topological structure, the centralized storage model requires fewer storage areas than the decentralized storage model. The results show that a hydrogen supply chain with a centralized storage structure advances the phase transition of central hydrogen production plants and reduces the total annual cost of the entire supply chain. The optimal hydrogen pathway is on-site steam methane reforming production in the early markets for fuel-cell electric vehicles. However, in matured markets, hydrogen is liquefied in central production plants and stored in bulk storages equipped with vaporizers. Then, the hydrogen is distributed from the central storage areas to local refueling stations via pipelines. The role of central storage areas is predicted to become important as market shares of fuel cell electric vehicle reach 15-30%; in other words, 0.28-0.56 million tonne/year of hydrogen will be demanded in 20 cities of South Korea.
机译:这项研究涉及使用集中存储模型构建氢气供应链优化模型,该模型将来自不同生产地点的氢气流合并并整合到集成的大容量存储中。为了向燃料电池电动车辆站供应氢气,考虑了针对不同类型的生产技术和运输方式的各种氢气供应路径和存储配置。在拓扑结构方面,集中存储模型比分散存储模型需要更少的存储区域。结果表明,具有集中式存储结构的氢气供应链可促进中央制氢厂的相变,并降低整个供应链的年度总成本。最佳的氢途径是在燃料电池电动汽车的早期市场中进行现场甲烷重整生产。但是,在成熟的市场中,氢气在中央生产厂中被液化并存储在配备有蒸发器的大容量存储装置中。然后,氢气通过管道从中央存储区分配到本地加油站。随着燃料电池电动汽车的市场份额达到15-30%,预计中央存储区的作用将变得越来越重要。换句话说,韩国20个城市每年将需要0.28-56万吨氢。

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